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	<id>https://en.longevitywiki.org/wiki/Small_ncRNAs_influencing_ageing_and_lifespan/history?feed=atom</id>
	<title>Small ncRNAs influencing ageing and lifespan - Revision history</title>
	<link rel="self" type="application/atom+xml" href="https://en.longevitywiki.org/wiki/Small_ncRNAs_influencing_ageing_and_lifespan/history?feed=atom"/>
	<link rel="alternate" type="text/html" href="https://en.longevitywiki.org/wiki/Small_ncRNAs_influencing_ageing_and_lifespan/history"/>
	<updated>2026-04-25T22:11:36Z</updated>
	<subtitle>Revision history for this page on the wiki</subtitle>
	<generator>MediaWiki 1.41.0</generator>
	<entry>
		<id>https://en.longevitywiki.org/index.php?title=Small_ncRNAs_influencing_ageing_and_lifespan&amp;diff=3357&amp;oldid=prev</id>
		<title>Dmitry Dzhagarov: /* miR-130b-5p */</title>
		<link rel="alternate" type="text/html" href="https://en.longevitywiki.org/index.php?title=Small_ncRNAs_influencing_ageing_and_lifespan&amp;diff=3357&amp;oldid=prev"/>
		<updated>2024-08-13T16:46:40Z</updated>

		<summary type="html">&lt;p&gt;&lt;span dir=&quot;auto&quot;&gt;&lt;span class=&quot;autocomment&quot;&gt;miR-130b-5p&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
&lt;table style=&quot;background-color: #fff; color: #202122;&quot; data-mw=&quot;interface&quot;&gt;
				&lt;col class=&quot;diff-marker&quot; /&gt;
				&lt;col class=&quot;diff-content&quot; /&gt;
				&lt;col class=&quot;diff-marker&quot; /&gt;
				&lt;col class=&quot;diff-content&quot; /&gt;
				&lt;tr class=&quot;diff-title&quot; lang=&quot;en-GB&quot;&gt;
				&lt;td colspan=&quot;2&quot; style=&quot;background-color: #fff; color: #202122; text-align: center;&quot;&gt;← Older revision&lt;/td&gt;
				&lt;td colspan=&quot;2&quot; style=&quot;background-color: #fff; color: #202122; text-align: center;&quot;&gt;Revision as of 16:46, 13 August 2024&lt;/td&gt;
				&lt;/tr&gt;&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-lineno&quot; id=&quot;mw-diff-left-l43&quot;&gt;Line 43:&lt;/td&gt;
&lt;td colspan=&quot;2&quot; class=&quot;diff-lineno&quot;&gt;Line 43:&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;Human miR-130b-5p exhibited an impact upon the mRNA levels of a &amp;#039;&amp;#039;&amp;#039;negative modulator of aging, Sprr1a&amp;#039;&amp;#039;&amp;#039; when expressed in human primary dermal&lt;/div&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;Human miR-130b-5p exhibited an impact upon the mRNA levels of a &amp;#039;&amp;#039;&amp;#039;negative modulator of aging, Sprr1a&amp;#039;&amp;#039;&amp;#039; when expressed in human primary dermal&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;fibroblasts (HDFs), and induced cellular senescence.&amp;lt;ref&amp;gt;Hong, J. Y., Nam, H. J., Ji, H., Kim, Y. Y., Hyun, M., Park, H. J., ... &amp;amp; McCrea, P. D. (2023). Sprr1 and miR-130b contribute to the senescence-like phenotype in aging. bioRxiv, 2023-10. PMID: 37961492 [https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10634805/ PMC10634805] DOI: 10.1101/2023.10.25.563779&amp;lt;/ref&amp;gt;&lt;/div&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;fibroblasts (HDFs), and induced cellular senescence.&amp;lt;ref&amp;gt;Hong, J. Y., Nam, H. J., Ji, H., Kim, Y. Y., Hyun, M., Park, H. J., ... &amp;amp; McCrea, P. D. (2023). Sprr1 and miR-130b contribute to the senescence-like phenotype in aging. bioRxiv, 2023-10. PMID: 37961492 [https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10634805/ PMC10634805] DOI: 10.1101/2023.10.25.563779&amp;lt;/ref&amp;gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-side-deleted&quot;&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;+&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #a3d3ff; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;&lt;ins style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;&lt;/ins&gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-side-deleted&quot;&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;+&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #a3d3ff; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;&lt;ins style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;=== miR-200c-3p ===&lt;/ins&gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-side-deleted&quot;&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;+&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #a3d3ff; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;&lt;ins style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;Some studies have shown that the expression levels of &#039;&#039;&#039;miR-31-5p, miR-141-3p,&#039;&#039;&#039; and &#039;&#039;&#039;miR-200c-3p&#039;&#039;&#039; are elevated with age.&amp;lt;ref&amp;gt;Capri, M., Olivieri, F., Lanzarini, C., Remondini, D., Borelli, V., Lazzarini, R., ... &amp;amp; Grazi, G. L. (2017). Identification of miR‐31‐5p, miR‐141‐3p, miR‐200c‐3p, and GLT 1 as human liver aging markers sensitive to donor–recipient age‐mismatch in transplants. Aging cell, 16(2), 262-272. PMID: 27995756 [https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5334540/ PMC5334540] DOI: 10.1111/acel.12549&amp;lt;/ref&amp;gt; It was discovered that miR-200c-3p promoted the proliferation of adipose-derived MSCs and delayed cellular senescence.&amp;lt;ref&amp;gt;Anastasiadou, E., Ceccarelli, S., Messina, E., Gerini, G., Megiorni, F., Pontecorvi, P., ... &amp;amp; Marchese, C. (2021). MiR-200c-3p maintains stemness and proliferative potential in adipose-derived stem cells by counteracting senescence mechanisms. PLoS One, 16(9), e0257070. PMID: 34534238 [https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8448302/ PMC8448302] DOI: 10.1371/journal.pone.0257070&amp;lt;/ref&amp;gt;&lt;/ins&gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-side-deleted&quot;&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;+&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #a3d3ff; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;&lt;ins style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;miR-200c-3p can target and negatively regulate stearoyl-CoA desaturase 2 (SCD2) by binding to the 3′-UTR of SCD2 mRNA to restrain lipid synthesis in MSCs and thus reverse the inhibitory effect of SCD2 over-expression on MSC senescence.&amp;lt;ref&amp;gt;Yu, X., Zhang, C., Ma, Q., Gao, X., Sun, H., Sun, Y., ... &amp;amp; He, X. (2024). SCD2 Regulation Targeted by miR-200c-3p on Lipogenesis Alleviates Mesenchymal Stromal Cell Senescence. International Journal of Molecular Sciences, 25(15), 8538.  PMID: 39126105 [https://www.ncbi.nlm.nih.gov/pmc/articles/PMC11313047/ PMC11313047] DOI: 10.3390/ijms25158538&amp;lt;/ref&amp;gt;&lt;/ins&gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;br&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;br&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;== Small nuclear RNAs ==&lt;/div&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;== Small nuclear RNAs ==&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;/table&gt;</summary>
		<author><name>Dmitry Dzhagarov</name></author>
	</entry>
	<entry>
		<id>https://en.longevitywiki.org/index.php?title=Small_ncRNAs_influencing_ageing_and_lifespan&amp;diff=3186&amp;oldid=prev</id>
		<title>Dmitry Dzhagarov: /* MicroRNA-141-3p */</title>
		<link rel="alternate" type="text/html" href="https://en.longevitywiki.org/index.php?title=Small_ncRNAs_influencing_ageing_and_lifespan&amp;diff=3186&amp;oldid=prev"/>
		<updated>2024-03-13T18:39:09Z</updated>

		<summary type="html">&lt;p&gt;&lt;span dir=&quot;auto&quot;&gt;&lt;span class=&quot;autocomment&quot;&gt;MicroRNA-141-3p&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
&lt;table style=&quot;background-color: #fff; color: #202122;&quot; data-mw=&quot;interface&quot;&gt;
				&lt;col class=&quot;diff-marker&quot; /&gt;
				&lt;col class=&quot;diff-content&quot; /&gt;
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				&lt;tr class=&quot;diff-title&quot; lang=&quot;en-GB&quot;&gt;
				&lt;td colspan=&quot;2&quot; style=&quot;background-color: #fff; color: #202122; text-align: center;&quot;&gt;← Older revision&lt;/td&gt;
				&lt;td colspan=&quot;2&quot; style=&quot;background-color: #fff; color: #202122; text-align: center;&quot;&gt;Revision as of 18:39, 13 March 2024&lt;/td&gt;
				&lt;/tr&gt;&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-lineno&quot; id=&quot;mw-diff-left-l22&quot;&gt;Line 22:&lt;/td&gt;
&lt;td colspan=&quot;2&quot; class=&quot;diff-lineno&quot;&gt;Line 22:&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;Inhibiting miR-141-3p for three months with twice-weekly subcutaneous injections of &amp;#039;&amp;#039;&amp;#039;Anti-miR-141-3p&amp;#039;&amp;#039;&amp;#039; treatment improves musculoskeletal health with improving bone microstructure and muscle fiber size in aged mice. Molecular analysis revealed that miR-141-3p regulates the expression of AU-rich RNA-binding factor 1 (AUF1) and promotes the expression of the known muscle wasting transcription factor FOXO-1 (Forkhead transcription factor 1). It also promotes&lt;/div&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;Inhibiting miR-141-3p for three months with twice-weekly subcutaneous injections of &amp;#039;&amp;#039;&amp;#039;Anti-miR-141-3p&amp;#039;&amp;#039;&amp;#039; treatment improves musculoskeletal health with improving bone microstructure and muscle fiber size in aged mice. Molecular analysis revealed that miR-141-3p regulates the expression of AU-rich RNA-binding factor 1 (AUF1) and promotes the expression of the known muscle wasting transcription factor FOXO-1 (Forkhead transcription factor 1). It also promotes&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;senescence (p21, p16) and pro-inflammatory (TNF-α, IL-1β, IFN-γ) environment whereas inhibiting miR-141-3p prevents these effects.&amp;lt;ref&amp;gt;Sagar Vyavahare , Sandeep Kumar , Kathryn Smith , Bharati Mendhe , Roger Zhong , Marion A. Cooley , Babak Baban , Carlos M. Isales , Mark Hamrick , William D Hill , Sadanand Fulzele. (2023). Inhibiting MicroRNA-141-3p Improves Musculoskeletal Health in Aged Mice. Aging and disease. 2023 https://doi.org/10.14336/AD.2023.0310-1&amp;lt;/ref&amp;gt;&lt;/div&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;senescence (p21, p16) and pro-inflammatory (TNF-α, IL-1β, IFN-γ) environment whereas inhibiting miR-141-3p prevents these effects.&amp;lt;ref&amp;gt;Sagar Vyavahare , Sandeep Kumar , Kathryn Smith , Bharati Mendhe , Roger Zhong , Marion A. Cooley , Babak Baban , Carlos M. Isales , Mark Hamrick , William D Hill , Sadanand Fulzele. (2023). Inhibiting MicroRNA-141-3p Improves Musculoskeletal Health in Aged Mice. Aging and disease. 2023 https://doi.org/10.14336/AD.2023.0310-1&amp;lt;/ref&amp;gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-side-deleted&quot;&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;+&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #a3d3ff; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;&lt;ins style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;&lt;/ins&gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-side-deleted&quot;&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;+&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #a3d3ff; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;&lt;ins style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;=== miR-214-3p ===&lt;/ins&gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-side-deleted&quot;&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;+&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #a3d3ff; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;&lt;ins style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;miR-214-3p was downregulated in aged adipose stem cells (ASC)s, and its overexpression rejuvenated aged adipose stem cell (ASC).&amp;lt;ref name=&quot;RASSF5&quot; &amp;gt;Ren, S., Li, C., Xiong, H., Wu, Q., Wu, X., Xiong, Z., ... &amp;amp; Chen, J. (2024). The Rejuvenation and Functional Restoration of Aged Adipose Stem Cells by DUXAP10 Knockdown via the Regulation of the miR-214-3p/RASSF5 Axis. Stem Cells Translational Medicine, szae015.&amp;lt;/ref&amp;gt;&lt;/ins&gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-side-deleted&quot;&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;+&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #a3d3ff; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;&lt;ins style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;A [[Long non-coding RNAs in aging and aging-associated diseases|long non-coding RNA]] named double homeobox A pseudogene 10 (&#039;&#039;&#039;DUXAP10&#039;&#039;&#039;) located in the cytoplasm and functioned as a &#039;&#039;&#039;decoy for miR-214-3p&#039;&#039;&#039; is significantly accumulated in aged ASCs.&amp;lt;ref name=&quot;RASSF5&quot; /&amp;gt; Knocking down DUXAP10 promoted stem cell proliferation and migration and halted cell senescence and the secretion of proinflammatory cytokines. Ras Association Domain Family Member 5 (&#039;&#039;&#039;RASSF5&#039;&#039;&#039;) was the target of miR-214-3p and was upregulated in aged ASCs. Overexpressing DUXAP10 and inhibiting miR-214-3p both enhanced RASSF5 content in ASCs, while DUXAP10 knockdown promoted the therapeutic ability of aged ASCs for skin wound healing.&amp;lt;ref name=&quot;RASSF5&quot; /&amp;gt;&lt;/ins&gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;br&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;br&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;=== miRNA-34a ===&lt;/div&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;=== miRNA-34a ===&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;/table&gt;</summary>
		<author><name>Dmitry Dzhagarov</name></author>
	</entry>
	<entry>
		<id>https://en.longevitywiki.org/index.php?title=Small_ncRNAs_influencing_ageing_and_lifespan&amp;diff=3125&amp;oldid=prev</id>
		<title>Dmitry Dzhagarov: /* miRNA-34a */</title>
		<link rel="alternate" type="text/html" href="https://en.longevitywiki.org/index.php?title=Small_ncRNAs_influencing_ageing_and_lifespan&amp;diff=3125&amp;oldid=prev"/>
		<updated>2024-01-20T16:33:34Z</updated>

		<summary type="html">&lt;p&gt;&lt;span dir=&quot;auto&quot;&gt;&lt;span class=&quot;autocomment&quot;&gt;miRNA-34a&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
&lt;table style=&quot;background-color: #fff; color: #202122;&quot; data-mw=&quot;interface&quot;&gt;
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				&lt;td colspan=&quot;2&quot; style=&quot;background-color: #fff; color: #202122; text-align: center;&quot;&gt;← Older revision&lt;/td&gt;
				&lt;td colspan=&quot;2&quot; style=&quot;background-color: #fff; color: #202122; text-align: center;&quot;&gt;Revision as of 16:33, 20 January 2024&lt;/td&gt;
				&lt;/tr&gt;&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-lineno&quot; id=&quot;mw-diff-left-l32&quot;&gt;Line 32:&lt;/td&gt;
&lt;td colspan=&quot;2&quot; class=&quot;diff-lineno&quot;&gt;Line 32:&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;br&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;br&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;&amp;lt;ref&amp;gt;Raucci, A., Macrì, F., Castiglione, S., Badi, I., Vinci, M. C., &amp;amp; Zuccolo, E. (2021). MicroRNA-34a: the bad guy in age-related vascular diseases. Cellular and Molecular Life Sciences, 1-24.  PMID: 34698884 PMCID: PMC8629897 DOI: 10.1007/s00018-021-03979-4&amp;lt;/ref&amp;gt;&lt;/div&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;&amp;lt;ref&amp;gt;Raucci, A., Macrì, F., Castiglione, S., Badi, I., Vinci, M. C., &amp;amp; Zuccolo, E. (2021). MicroRNA-34a: the bad guy in age-related vascular diseases. Cellular and Molecular Life Sciences, 1-24.  PMID: 34698884 PMCID: PMC8629897 DOI: 10.1007/s00018-021-03979-4&amp;lt;/ref&amp;gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-side-deleted&quot;&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;+&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #a3d3ff; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;&lt;ins style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;&lt;/ins&gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-side-deleted&quot;&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;+&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #a3d3ff; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;&lt;ins style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;=== miR-130b-5p ===&lt;/ins&gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-side-deleted&quot;&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;+&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #a3d3ff; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;&lt;ins style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;Patients with coronary artery disease (CAD) have high levels of miR-130b-5p in peripheral blood that correlated with severity of coronary artery disease.&amp;lt;ref&amp;gt;Coban, N., Ozuynuk, A. S., Erkan, A. F., Guclu-Geyik, F., &amp;amp; Ekici, B. (2021). Levels of miR-130b-5p in peripheral blood are associated with severity of coronary artery disease. Molecular Biology Reports, 48, 7719-7732.  PMID: 34689283 DOI: 10.1007/s11033-021-06780-5&amp;lt;/ref&amp;gt;&lt;/ins&gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-side-deleted&quot;&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;+&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #a3d3ff; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;&lt;ins style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;Mechanistic studies revealed that miR-130b-5p mainly promoted the cardiomyocyte proliferation through the MAPK-ERK signaling pathway, and the dual-specific phosphatase 6 (Dusp6), a negative regulator of the MAPK-ERK signaling, was the direct target of miR-130b-5p. Moreover, overexpression of miR-130b-5p could promote the proliferation of cardiomyocytes and improve cardiac function in mice after myocardial infarction (MI).&amp;lt;ref&amp;gt;Feng, K., Wu, Y., Li, J., Sun, Q., Ye, Z., Li, X., ... &amp;amp; Kang, J. (2024). Critical Role of miR-130b-5p in Cardiomyocyte Proliferation and Cardiac Repair in Mice After Myocardial Infarction. Stem Cells, 42(1), 29-41. PMID: 37933895 [https://doi.org/10.1093/stmcls/sxad080 DOI: 10.1093/stmcls/sxad080]&amp;lt;/ref&amp;gt;&lt;/ins&gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-side-deleted&quot;&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;+&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #a3d3ff; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;&lt;ins style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;&lt;/ins&gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-side-deleted&quot;&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;+&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #a3d3ff; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;&lt;ins style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;Human miR-130b-5p exhibited an impact upon the mRNA levels of a &#039;&#039;&#039;negative modulator of aging, Sprr1a&#039;&#039;&#039; when expressed in human primary dermal&lt;/ins&gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-side-deleted&quot;&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;+&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #a3d3ff; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;&lt;ins style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;fibroblasts (HDFs), and induced cellular senescence.&amp;lt;ref&amp;gt;Hong, J. Y., Nam, H. J., Ji, H., Kim, Y. Y., Hyun, M., Park, H. J., ... &amp;amp; McCrea, P. D. (2023). Sprr1 and miR-130b contribute to the senescence-like phenotype in aging. bioRxiv, 2023-10. PMID: 37961492 [https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10634805/ PMC10634805] DOI: 10.1101/2023.10.25.563779&amp;lt;/ref&amp;gt;&lt;/ins&gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;br&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;br&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;== Small nuclear RNAs ==&lt;/div&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;== Small nuclear RNAs ==&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;/table&gt;</summary>
		<author><name>Dmitry Dzhagarov</name></author>
	</entry>
	<entry>
		<id>https://en.longevitywiki.org/index.php?title=Small_ncRNAs_influencing_ageing_and_lifespan&amp;diff=3124&amp;oldid=prev</id>
		<title>Dmitry Dzhagarov at 15:34, 20 January 2024</title>
		<link rel="alternate" type="text/html" href="https://en.longevitywiki.org/index.php?title=Small_ncRNAs_influencing_ageing_and_lifespan&amp;diff=3124&amp;oldid=prev"/>
		<updated>2024-01-20T15:34:58Z</updated>

		<summary type="html">&lt;p&gt;&lt;/p&gt;
&lt;table style=&quot;background-color: #fff; color: #202122;&quot; data-mw=&quot;interface&quot;&gt;
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				&lt;col class=&quot;diff-content&quot; /&gt;
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				&lt;td colspan=&quot;2&quot; style=&quot;background-color: #fff; color: #202122; text-align: center;&quot;&gt;← Older revision&lt;/td&gt;
				&lt;td colspan=&quot;2&quot; style=&quot;background-color: #fff; color: #202122; text-align: center;&quot;&gt;Revision as of 15:34, 20 January 2024&lt;/td&gt;
				&lt;/tr&gt;&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-lineno&quot; id=&quot;mw-diff-left-l1&quot;&gt;Line 1:&lt;/td&gt;
&lt;td colspan=&quot;2&quot; class=&quot;diff-lineno&quot;&gt;Line 1:&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;−&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #ffe49c; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;A &#039;&#039;&#039;non-coding RNA (ncRNA)&#039;&#039;&#039; is a functional RNA molecule that is not translated into a protein. Non-coding RNAs are endogenous transcripts that govern gene regulatory networks, thus impacting both physiological and pathological events.  Non-coding RNAs constitute the majority of endogenous transcripts in the cells since human genome consists of only 3% protein-coding genes and most of the genome is transcribed to produce non-coding RNAs. ncRNA comprise numerous RNA species grouped in different classes, based on their different lengths and activities. Among these molecules, microRNAs, [[long non-coding RNAs]], and more recently [[Circular RNAs (CircRNAs)|circular RNAs]] are considered crucial mediators of almost all cellular processes.&amp;lt;ref&amp;gt;Zhang, P., Wu, W., Chen, Q., &amp;amp; Chen, M. (2019). Non-coding RNAs and their integrated networks. Journal of integrative bioinformatics, 16(3). PMID: 31301674 PMCID: PMC6798851 DOI: 10.1515/jib-2019-0027&amp;lt;/ref&amp;gt;&amp;lt;ref&amp;gt;Varghese, L. N., Schwenke, D. O., &amp;amp; Katare, R. (2023). Role of noncoding RNAs in cardiac ageing. Frontiers in Cardiovascular Medicine, 10.  PMID: 37034355 PMCID: PMC10073704 DOI: 10.3389/fcvm.2023.1142575&amp;lt;/ref&amp;gt;&lt;/div&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;+&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #a3d3ff; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;A &#039;&#039;&#039;non-coding RNA (ncRNA)&#039;&#039;&#039; is a functional RNA molecule that is not translated into a protein. Non-coding RNAs are endogenous transcripts that govern gene regulatory networks, thus impacting both physiological and pathological events.  Non-coding RNAs constitute the majority of endogenous transcripts in the cells since human genome consists of only 3% protein-coding genes and most of the genome is transcribed to produce non-coding RNAs. ncRNA comprise numerous RNA species grouped in different classes, based on their different lengths and activities. Among these molecules, microRNAs, [[&lt;ins style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;Long non-coding RNAs in aging and aging-associated diseases|&lt;/ins&gt;long non-coding RNAs]], and more recently [[Circular RNAs (CircRNAs)|circular RNAs]] are considered crucial mediators of almost all cellular processes.&amp;lt;ref&amp;gt;Zhang, P., Wu, W., Chen, Q., &amp;amp; Chen, M. (2019). Non-coding RNAs and their integrated networks. Journal of integrative bioinformatics, 16(3). PMID: 31301674 PMCID: PMC6798851 DOI: 10.1515/jib-2019-0027&amp;lt;/ref&amp;gt;&amp;lt;ref&amp;gt;Varghese, L. N., Schwenke, D. O., &amp;amp; Katare, R. (2023). Role of noncoding RNAs in cardiac ageing. Frontiers in Cardiovascular Medicine, 10.  PMID: 37034355 PMCID: PMC10073704 DOI: 10.3389/fcvm.2023.1142575&amp;lt;/ref&amp;gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;br&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;br&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;== MicroRNAs ==&lt;/div&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;== MicroRNAs ==&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;/table&gt;</summary>
		<author><name>Dmitry Dzhagarov</name></author>
	</entry>
	<entry>
		<id>https://en.longevitywiki.org/index.php?title=Small_ncRNAs_influencing_ageing_and_lifespan&amp;diff=2710&amp;oldid=prev</id>
		<title>Dmitry Dzhagarov: /* MicroRNAs */</title>
		<link rel="alternate" type="text/html" href="https://en.longevitywiki.org/index.php?title=Small_ncRNAs_influencing_ageing_and_lifespan&amp;diff=2710&amp;oldid=prev"/>
		<updated>2023-05-02T18:53:12Z</updated>

		<summary type="html">&lt;p&gt;&lt;span dir=&quot;auto&quot;&gt;&lt;span class=&quot;autocomment&quot;&gt;MicroRNAs&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
&lt;table style=&quot;background-color: #fff; color: #202122;&quot; data-mw=&quot;interface&quot;&gt;
				&lt;col class=&quot;diff-marker&quot; /&gt;
				&lt;col class=&quot;diff-content&quot; /&gt;
				&lt;col class=&quot;diff-marker&quot; /&gt;
				&lt;col class=&quot;diff-content&quot; /&gt;
				&lt;tr class=&quot;diff-title&quot; lang=&quot;en-GB&quot;&gt;
				&lt;td colspan=&quot;2&quot; style=&quot;background-color: #fff; color: #202122; text-align: center;&quot;&gt;← Older revision&lt;/td&gt;
				&lt;td colspan=&quot;2&quot; style=&quot;background-color: #fff; color: #202122; text-align: center;&quot;&gt;Revision as of 18:53, 2 May 2023&lt;/td&gt;
				&lt;/tr&gt;&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-lineno&quot; id=&quot;mw-diff-left-l2&quot;&gt;Line 2:&lt;/td&gt;
&lt;td colspan=&quot;2&quot; class=&quot;diff-lineno&quot;&gt;Line 2:&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;br&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;br&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;== MicroRNAs ==&lt;/div&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;== MicroRNAs ==&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-side-deleted&quot;&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;+&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #a3d3ff; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;&lt;ins style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;[[File:Some of the most important microRNA pathways in cellular aging.jpg|thumb|Some of the most important microRNA pathways in cellular aging according to Liangge He et al. 2023&amp;lt;ref&amp;gt;He, L., Li, M., Liu, Z., Padhiar, A. A., &amp;amp; Zhou, G. (2023). Senescence of mesenchymal stem cells: implications in extracellular vesicles, miRNAs and their functional and therapeutic potentials. Aging Pathobiology and Therapeutics, 03-17. DOI: 10.31491/APT.2023.03.107&amp;lt;/ref&amp;gt;]]&lt;/ins&gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;MicroRNAs (miRNAs) are endogenous small (∼22–25 nucleotides long) noncoding RNAs that control the expression of target mRNA by translational repression or mRNA degradation.&amp;lt;ref&amp;gt;Bushati, N., &amp;amp; Cohen, S. M. (2007). microRNA functions. Annu. Rev. Cell Dev. Biol., 23, 175-205. PMID: 17506695 DOI: 10.1146/annurev.cellbio.23.090506.123406&amp;lt;/ref&amp;gt; They are involved in many biological processes such as developmental timing, differentiation, cell death, stem cell proliferation and differentiation, immune response, aging and cancer. That&amp;#039;s why miRNAs are the best characterized small non-coding RNAs influencing ageing and lifespan. Multiple miRNAs, including miRNA-1, miRNA-21, miRNA-22, miRNA-34a, miRNA-17, miRNA-145, miRNA-140, miRNA-106b, and miRNA-449a, are widely considered as critical regulators for cell senescence.&amp;lt;ref&amp;gt;Kinser, H. E., &amp;amp; Pincus, Z. (2020). MicroRNAs as modulators of longevity and the aging process. Human genetics, 139(3), 291-308. PMID: 31297598 PMCID: PMC6954352 DOI: 10.1007/s00439-019-02046-0&amp;lt;/ref&amp;gt;&amp;lt;ref&amp;gt;Zia, A., Farkhondeh, T., Sahebdel, F., Pourbagher-Shahri, A. M., &amp;amp; Samarghandian, S. (2022). Key miRNAs in Modulating Aging and Longevity: A Focus on Signaling Pathways and Cellular Targets. Current Molecular Pharmacology, 15(5), 736-762. PMID: 34533452 DOI: 10.2174/1874467214666210917141541&amp;lt;/ref&amp;gt;&amp;lt;ref&amp;gt;Ma, X., Zheng, Q., Zhao, G., Yuan, W., &amp;amp; Liu, W. (2020). Regulation of cellular senescence by microRNAs. Mechanisms of Ageing and Development, 189, 111264.  PMID: 32450085 DOI: 10.1016/j.mad.2020.111264&amp;lt;/ref&amp;gt;&amp;lt;ref&amp;gt;Azizidoost, S., Nasrolahi, A., Sheykhi-Sabzehpoush, M., Akiash, N., Assareh, A. R., Anbiyaee, O., ... &amp;amp; Kempisty, B. (2023). Potential roles of endothelial cells-related non-coding RNAs in cardiovascular diseases. Pathology-Research and Practice, 154330.   https://doi.org/10.1016/j.prp.2023.154330&amp;lt;/ref&amp;gt;&amp;lt;ref&amp;gt;Ortiz, G. G. R., Mohammadi, Y., Nazari, A., Ataeinaeini, M., Kazemi, P., Yasamineh, S., ... &amp;amp; Gholizadeh, O. (2023). A state-of-the-art review on the MicroRNAs roles in hematopoietic stem cell aging and longevity. Cell Communication and Signaling, 21(1), 1-16.  PMID: 37095512 PMCID: PMC10123996 DOI: 10.1186/s12964-023-01117-0&amp;lt;/ref&amp;gt;&amp;lt;ref&amp;gt;Chen, Z., Li, C., Huang, H., Shi, Y. L., &amp;amp; Wang, X. (2023). Research progress of aging-related microRNAs. Current Stem Cell Research &amp;amp; Therapy.  PMID: 36892029 DOI: 10.2174/1574888X18666230308111043&amp;lt;/ref&amp;gt;&lt;/div&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;MicroRNAs (miRNAs) are endogenous small (∼22–25 nucleotides long) noncoding RNAs that control the expression of target mRNA by translational repression or mRNA degradation.&amp;lt;ref&amp;gt;Bushati, N., &amp;amp; Cohen, S. M. (2007). microRNA functions. Annu. Rev. Cell Dev. Biol., 23, 175-205. PMID: 17506695 DOI: 10.1146/annurev.cellbio.23.090506.123406&amp;lt;/ref&amp;gt; They are involved in many biological processes such as developmental timing, differentiation, cell death, stem cell proliferation and differentiation, immune response, aging and cancer. That&amp;#039;s why miRNAs are the best characterized small non-coding RNAs influencing ageing and lifespan. Multiple miRNAs, including miRNA-1, miRNA-21, miRNA-22, miRNA-34a, miRNA-17, miRNA-145, miRNA-140, miRNA-106b, and miRNA-449a, are widely considered as critical regulators for cell senescence.&amp;lt;ref&amp;gt;Kinser, H. E., &amp;amp; Pincus, Z. (2020). MicroRNAs as modulators of longevity and the aging process. Human genetics, 139(3), 291-308. PMID: 31297598 PMCID: PMC6954352 DOI: 10.1007/s00439-019-02046-0&amp;lt;/ref&amp;gt;&amp;lt;ref&amp;gt;Zia, A., Farkhondeh, T., Sahebdel, F., Pourbagher-Shahri, A. M., &amp;amp; Samarghandian, S. (2022). Key miRNAs in Modulating Aging and Longevity: A Focus on Signaling Pathways and Cellular Targets. Current Molecular Pharmacology, 15(5), 736-762. PMID: 34533452 DOI: 10.2174/1874467214666210917141541&amp;lt;/ref&amp;gt;&amp;lt;ref&amp;gt;Ma, X., Zheng, Q., Zhao, G., Yuan, W., &amp;amp; Liu, W. (2020). Regulation of cellular senescence by microRNAs. Mechanisms of Ageing and Development, 189, 111264.  PMID: 32450085 DOI: 10.1016/j.mad.2020.111264&amp;lt;/ref&amp;gt;&amp;lt;ref&amp;gt;Azizidoost, S., Nasrolahi, A., Sheykhi-Sabzehpoush, M., Akiash, N., Assareh, A. R., Anbiyaee, O., ... &amp;amp; Kempisty, B. (2023). Potential roles of endothelial cells-related non-coding RNAs in cardiovascular diseases. Pathology-Research and Practice, 154330.   https://doi.org/10.1016/j.prp.2023.154330&amp;lt;/ref&amp;gt;&amp;lt;ref&amp;gt;Ortiz, G. G. R., Mohammadi, Y., Nazari, A., Ataeinaeini, M., Kazemi, P., Yasamineh, S., ... &amp;amp; Gholizadeh, O. (2023). A state-of-the-art review on the MicroRNAs roles in hematopoietic stem cell aging and longevity. Cell Communication and Signaling, 21(1), 1-16.  PMID: 37095512 PMCID: PMC10123996 DOI: 10.1186/s12964-023-01117-0&amp;lt;/ref&amp;gt;&amp;lt;ref&amp;gt;Chen, Z., Li, C., Huang, H., Shi, Y. L., &amp;amp; Wang, X. (2023). Research progress of aging-related microRNAs. Current Stem Cell Research &amp;amp; Therapy.  PMID: 36892029 DOI: 10.2174/1574888X18666230308111043&amp;lt;/ref&amp;gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;br&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;br&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;/table&gt;</summary>
		<author><name>Dmitry Dzhagarov</name></author>
	</entry>
	<entry>
		<id>https://en.longevitywiki.org/index.php?title=Small_ncRNAs_influencing_ageing_and_lifespan&amp;diff=2708&amp;oldid=prev</id>
		<title>Dmitry Dzhagarov: /* miRNA-34a */</title>
		<link rel="alternate" type="text/html" href="https://en.longevitywiki.org/index.php?title=Small_ncRNAs_influencing_ageing_and_lifespan&amp;diff=2708&amp;oldid=prev"/>
		<updated>2023-05-02T18:30:05Z</updated>

		<summary type="html">&lt;p&gt;&lt;span dir=&quot;auto&quot;&gt;&lt;span class=&quot;autocomment&quot;&gt;miRNA-34a&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
&lt;table style=&quot;background-color: #fff; color: #202122;&quot; data-mw=&quot;interface&quot;&gt;
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				&lt;td colspan=&quot;2&quot; style=&quot;background-color: #fff; color: #202122; text-align: center;&quot;&gt;Revision as of 18:30, 2 May 2023&lt;/td&gt;
				&lt;/tr&gt;&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-lineno&quot; id=&quot;mw-diff-left-l23&quot;&gt;Line 23:&lt;/td&gt;
&lt;td colspan=&quot;2&quot; class=&quot;diff-lineno&quot;&gt;Line 23:&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;br&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;br&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;=== miRNA-34a ===&lt;/div&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;=== miRNA-34a ===&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-side-deleted&quot;&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;+&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #a3d3ff; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;&lt;ins style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;miR-34a has been implicated in cardiovascular fibrosis, dysfunction and related cardiovascular disorders as an essential regulator. There is a pivotal link among miR-34a, cardiovascular fibrosis, and Smad4/TGF-β1 signaling. &lt;/ins&gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-side-deleted&quot;&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;+&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #a3d3ff; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;&lt;ins style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;miR-34a plays the critical roles in cardiovascular apoptosis, autophagy, inflammation, senescence and remodeling by modulating multifunctional signaling pathways.&amp;lt;ref&amp;gt;Hua, C. C., Liu, X. M., Liang, L. R., Wang, L. F., &amp;amp; Zhong, J. C. (2022). Targeting the microRNA-34a as a novel therapeutic strategy for cardiovascular diseases. Frontiers in Cardiovascular Medicine, 8, 2243. PMID: 35155600 PMCID: PMC8828972 DOI: 10.3389/fcvm.2021.784044&amp;lt;/ref&amp;gt;&lt;/ins&gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-side-deleted&quot;&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;+&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #a3d3ff; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;&lt;ins style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;MiR-34a accelerated the progression of atherosclerosis by regulating [[FOXO longevity genes|FOXO3]] expression. It was reported that FOXO3 plays a critical role in restraining oxidative damage in ox-LDL-induced endothelial cell injury via the miR-34a/SIRT1/FOXO3 signaling pathway.&amp;lt;ref&amp;gt;Zhang, H., Zhao, Z., Pang, X., Yang, J., Yu, H., Zhang, Y., ... &amp;amp; Zhao, J. (2017). MiR-34a/sirtuin-1/foxo3a is involved in genistein protecting against ox-LDL-induced oxidative damage in HUVECs. Toxicology Letters, 277, 115-122. PMID: 28688900 DOI: 10.1016/j.toxlet.2017.07.216&amp;lt;/ref&amp;gt;&amp;lt;ref&amp;gt;Raucci, A., Macrì, F., Castiglione, S., Badi, I., Vinci, M. C., &amp;amp; Zuccolo, E. (2021). MicroRNA-34a: the bad guy in age-related vascular diseases. Cellular and Molecular Life Sciences, 1-24.  PMID: 34698884 PMCID: PMC8629897 DOI: 10.1007/s00018-021-03979-4&amp;lt;/ref&amp;gt;&lt;/ins&gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-side-deleted&quot;&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;+&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #a3d3ff; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;&lt;ins style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;The expression of miR-34a increased in senescent MSCs cell culture with continuous passage.&amp;lt;ref&amp;gt;Mokhberian, N., Bolandi, Z., Eftekhary, M., Hashemi, S. M., Jajarmi, V., Sharifi, K., &amp;amp; Ghanbarian, H. (2020). Inhibition of miR-34a reduces cellular senescence in human adipose tissue-derived mesenchymal stem cells through the activation of SIRT1. Life Sciences, 257, 118055. PMID: 32634429 DOI: 10.1016/j.lfs.2020.118055&amp;lt;/ref&amp;gt;&amp;lt;ref&amp;gt;Badi, I., Mancinelli, L., Polizzotto, A., Ferri, D., Zeni, F., Burba, I., et al. (2018). miR34a Promotes Vascular Smooth Muscle Cell Calcification by Downregulating SIRT1 (Sirtuin 1) and Axl (AXL Receptor Tyrosine Kinase). Atvb 38 (9), 2079–2090. doi:10.1161/atvbaha.118.311298&amp;lt;/ref&amp;gt; MiR34a significantly reduced [[Sirtuins|SIRT1]] activity, [[NAD+]] content, and NAD&amp;lt;sup&amp;gt;+&amp;lt;/sup&amp;gt;/NADH ratio by targeting nicotinamide phosphoribosyl-transferase ([[NAD+#NAMPT|NAMPT]]).&amp;lt;ref&amp;gt;Pi, C., Ma, C., Wang, H., Sun, H., Yu, X., Gao, X., ... &amp;amp; He, X. (2021). MiR-34a suppression targets Nampt to ameliorate bone marrow mesenchymal stem cell senescence by regulating NAD+-Sirt1 pathway. Stem Cell Research &amp;amp; Therapy, 12(1), 271. PMID: 33957971 PMCID: PMC8101138 DOI: 10.1186/s13287-021-02339-0&amp;lt;/ref&amp;gt;&lt;/ins&gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-side-deleted&quot;&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;+&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #a3d3ff; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;&lt;ins style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;&lt;/ins&gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-side-deleted&quot;&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;+&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #a3d3ff; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;&lt;ins style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;The expression of miR-34a was strongly correlated with HbA1c level, suggesting that increased miR-34a expression is related to high glucose.&amp;lt;ref&amp;gt;Boon, R. A., Iekushi, K., Lechner, S., Seeger, T., Fischer, A., Heydt, S., ... &amp;amp; Dimmeler, S. (2013). MicroRNA-34a regulates cardiac ageing and function. Nature, 495(7439), 107-110. PMID: 23426265 DOI: 10.1038/nature11919&amp;lt;/ref&amp;gt;&amp;lt;ref&amp;gt;Fomison-Nurse, I., Saw, E. E. L., Gandhi, S., Munasinghe, P. E., Van Hout, I., Williams, M. J. A., ... &amp;amp; Katare, R. (2018). Diabetes induces the activation of pro-ageing miR-34a in the heart, but has differential effects on cardiomyocytes and cardiac progenitor cells. Cell Death &amp;amp; Differentiation, 25(7), 1336-1349. PMID: 29302057 PMCID: PMC6030067 DOI: 10.1038/s41418-017-0047-6&amp;lt;/ref&amp;gt; &lt;/ins&gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-side-deleted&quot;&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;+&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #a3d3ff; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;&lt;ins style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;&lt;/ins&gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-side-deleted&quot;&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;+&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #a3d3ff; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;&lt;ins style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;&amp;lt;ref&amp;gt;Raucci, A., Macrì, F., Castiglione, S., Badi, I., Vinci, M. C., &amp;amp; Zuccolo, E. (2021). MicroRNA-34a: the bad guy in age-related vascular diseases. Cellular and Molecular Life Sciences, 1-24.  PMID: 34698884 PMCID: PMC8629897 DOI: 10.1007/s00018-021-03979-4&amp;lt;/ref&amp;gt;&lt;/ins&gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;br&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;br&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;== Small nuclear RNAs ==&lt;/div&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;== Small nuclear RNAs ==&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;/table&gt;</summary>
		<author><name>Dmitry Dzhagarov</name></author>
	</entry>
	<entry>
		<id>https://en.longevitywiki.org/index.php?title=Small_ncRNAs_influencing_ageing_and_lifespan&amp;diff=2706&amp;oldid=prev</id>
		<title>Dmitry Dzhagarov at 15:23, 2 May 2023</title>
		<link rel="alternate" type="text/html" href="https://en.longevitywiki.org/index.php?title=Small_ncRNAs_influencing_ageing_and_lifespan&amp;diff=2706&amp;oldid=prev"/>
		<updated>2023-05-02T15:23:28Z</updated>

		<summary type="html">&lt;p&gt;&lt;/p&gt;
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				&lt;td colspan=&quot;2&quot; style=&quot;background-color: #fff; color: #202122; text-align: center;&quot;&gt;Revision as of 15:23, 2 May 2023&lt;/td&gt;
				&lt;/tr&gt;&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-lineno&quot; id=&quot;mw-diff-left-l2&quot;&gt;Line 2:&lt;/td&gt;
&lt;td colspan=&quot;2&quot; class=&quot;diff-lineno&quot;&gt;Line 2:&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;br&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;br&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;== MicroRNAs ==&lt;/div&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;== MicroRNAs ==&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;−&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #ffe49c; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;MicroRNAs (miRNAs) are endogenous small (∼22–25 nucleotides long) noncoding RNAs that control the expression of target mRNA by translational repression or mRNA degradation.&amp;lt;ref&amp;gt;Bushati, N., &amp;amp; Cohen, S. M. (2007). microRNA functions. Annu. Rev. Cell Dev. Biol., 23, 175-205. PMID: 17506695 DOI: 10.1146/annurev.cellbio.23.090506.123406&amp;lt;/ref&amp;gt; They are involved in many biological processes such as developmental timing, differentiation, cell death, stem cell proliferation and differentiation, immune response, aging and cancer. That&#039;s why miRNAs are the best characterized small non-coding RNAs influencing ageing and lifespan. Multiple miRNAs, including miRNA-1, miRNA-&lt;del style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;145&lt;/del&gt;, miRNA-&lt;del style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;140&lt;/del&gt;, miRNA-34a, miRNA-106b, and miRNA-449a, are widely considered as critical regulators for cell senescence.&amp;lt;ref&amp;gt;Kinser, H. E., &amp;amp; Pincus, Z. (2020). MicroRNAs as modulators of longevity and the aging process. Human genetics, 139(3), 291-308. PMID: 31297598 PMCID: PMC6954352 DOI: 10.1007/s00439-019-02046-0&amp;lt;/ref&amp;gt;&amp;lt;ref&amp;gt;Zia, A., Farkhondeh, T., Sahebdel, F., Pourbagher-Shahri, A. M., &amp;amp; Samarghandian, S. (2022). Key miRNAs in Modulating Aging and Longevity: A Focus on Signaling Pathways and Cellular Targets. Current Molecular Pharmacology, 15(5), 736-762. PMID: 34533452 DOI: 10.2174/1874467214666210917141541&amp;lt;/ref&amp;gt;&amp;lt;ref&amp;gt;Ma, X., Zheng, Q., Zhao, G., Yuan, W., &amp;amp; Liu, W. (2020). Regulation of cellular senescence by microRNAs. Mechanisms of Ageing and Development, 189, 111264.  PMID: 32450085 DOI: 10.1016/j.mad.2020.111264&amp;lt;/ref&amp;gt;&amp;lt;ref&amp;gt;Azizidoost, S., Nasrolahi, A., Sheykhi-Sabzehpoush, M., Akiash, N., Assareh, A. R., Anbiyaee, O., ... &amp;amp; Kempisty, B. (2023). Potential roles of endothelial cells-related non-coding RNAs in cardiovascular diseases. Pathology-Research and Practice, 154330.   https://doi.org/10.1016/j.prp.2023.154330&amp;lt;/ref&amp;gt;&amp;lt;ref&amp;gt;Ortiz, G. G. R., Mohammadi, Y., Nazari, A., Ataeinaeini, M., Kazemi, P., Yasamineh, S., ... &amp;amp; Gholizadeh, O. (2023). A state-of-the-art review on the MicroRNAs roles in hematopoietic stem cell aging and longevity. Cell Communication and Signaling, 21(1), 1-16.  PMID: 37095512 PMCID: PMC10123996 DOI: 10.1186/s12964-023-01117-0&amp;lt;/ref&amp;gt;&amp;lt;ref&amp;gt;Chen, Z., Li, C., Huang, H., Shi, Y. L., &amp;amp; Wang, X. (2023). Research progress of aging-related microRNAs. Current Stem Cell Research &amp;amp; Therapy.  PMID: 36892029 DOI: 10.2174/1574888X18666230308111043&amp;lt;/ref&amp;gt;&lt;/div&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;+&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #a3d3ff; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;MicroRNAs (miRNAs) are endogenous small (∼22–25 nucleotides long) noncoding RNAs that control the expression of target mRNA by translational repression or mRNA degradation.&amp;lt;ref&amp;gt;Bushati, N., &amp;amp; Cohen, S. M. (2007). microRNA functions. Annu. Rev. Cell Dev. Biol., 23, 175-205. PMID: 17506695 DOI: 10.1146/annurev.cellbio.23.090506.123406&amp;lt;/ref&amp;gt; They are involved in many biological processes such as developmental timing, differentiation, cell death, stem cell proliferation and differentiation, immune response, aging and cancer. That&#039;s why miRNAs are the best characterized small non-coding RNAs influencing ageing and lifespan. Multiple miRNAs, including miRNA-1, miRNA-&lt;ins style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;21&lt;/ins&gt;, miRNA-&lt;ins style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;22&lt;/ins&gt;, miRNA-34a&lt;ins style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;, miRNA-17, miRNA-145, miRNA-140&lt;/ins&gt;, miRNA-106b, and miRNA-449a, are widely considered as critical regulators for cell senescence.&amp;lt;ref&amp;gt;Kinser, H. E., &amp;amp; Pincus, Z. (2020). MicroRNAs as modulators of longevity and the aging process. Human genetics, 139(3), 291-308. PMID: 31297598 PMCID: PMC6954352 DOI: 10.1007/s00439-019-02046-0&amp;lt;/ref&amp;gt;&amp;lt;ref&amp;gt;Zia, A., Farkhondeh, T., Sahebdel, F., Pourbagher-Shahri, A. M., &amp;amp; Samarghandian, S. (2022). Key miRNAs in Modulating Aging and Longevity: A Focus on Signaling Pathways and Cellular Targets. Current Molecular Pharmacology, 15(5), 736-762. PMID: 34533452 DOI: 10.2174/1874467214666210917141541&amp;lt;/ref&amp;gt;&amp;lt;ref&amp;gt;Ma, X., Zheng, Q., Zhao, G., Yuan, W., &amp;amp; Liu, W. (2020). Regulation of cellular senescence by microRNAs. Mechanisms of Ageing and Development, 189, 111264.  PMID: 32450085 DOI: 10.1016/j.mad.2020.111264&amp;lt;/ref&amp;gt;&amp;lt;ref&amp;gt;Azizidoost, S., Nasrolahi, A., Sheykhi-Sabzehpoush, M., Akiash, N., Assareh, A. R., Anbiyaee, O., ... &amp;amp; Kempisty, B. (2023). Potential roles of endothelial cells-related non-coding RNAs in cardiovascular diseases. Pathology-Research and Practice, 154330.   https://doi.org/10.1016/j.prp.2023.154330&amp;lt;/ref&amp;gt;&amp;lt;ref&amp;gt;Ortiz, G. G. R., Mohammadi, Y., Nazari, A., Ataeinaeini, M., Kazemi, P., Yasamineh, S., ... &amp;amp; Gholizadeh, O. (2023). A state-of-the-art review on the MicroRNAs roles in hematopoietic stem cell aging and longevity. Cell Communication and Signaling, 21(1), 1-16.  PMID: 37095512 PMCID: PMC10123996 DOI: 10.1186/s12964-023-01117-0&amp;lt;/ref&amp;gt;&amp;lt;ref&amp;gt;Chen, Z., Li, C., Huang, H., Shi, Y. L., &amp;amp; Wang, X. (2023). Research progress of aging-related microRNAs. Current Stem Cell Research &amp;amp; Therapy.  PMID: 36892029 DOI: 10.2174/1574888X18666230308111043&amp;lt;/ref&amp;gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;br&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;br&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;−&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #ffe49c; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;=&lt;del style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;= Small nuclear RNAs ==&lt;/del&gt;&lt;/div&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;+&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #a3d3ff; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;=== Let-7 as a promising target in aging and aging-related diseases &lt;ins style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;=&lt;/ins&gt;==&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;−&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #ffe49c; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt; &lt;/div&gt;&lt;/td&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-side-added&quot;&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;−&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #ffe49c; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;&lt;del style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;== Piwi-interacting RNA ==&lt;/del&gt;&lt;/div&gt;&lt;/td&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-side-added&quot;&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;−&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #ffe49c; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt; &lt;/div&gt;&lt;/td&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-side-added&quot;&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;−&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #ffe49c; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;== Let-7 as a promising target in aging and aging-related diseases ==&lt;/div&gt;&lt;/td&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-side-added&quot;&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;Let-7, one of the first miRNAs discovered, was initially shown to control developmental timing in &amp;#039;&amp;#039;Caenorhabditis elegans&amp;#039;&amp;#039;&amp;lt;ref&amp;gt;Reinhart, B. J., Slack, F. J., Basson, M., Pasquinelli, A. E., Bettinger, J. C., Rougvie, A. E., ... &amp;amp; Ruvkun, G. (2000). The 21-nucleotide let-7 RNA regulates developmental timing in Caenorhabditis elegans. nature, 403(6772), 901-906.  PMID: 10706289 DOI: 10.1038/35002607&amp;lt;/ref&amp;gt; In mice, 12 genes encode members of the Let-7 family, which includes nine slightly different miRNAs [Let-7a, Let-c, Let-7f (all encoded by two genes), and Let-7b, Let-7d, Let-7e, Let-7g, Let-7i, and miR-98 (all encoded by one gene)]. Processing of Let-7 can be inhibited by an RNA-binding protein LIN28, that is highly expressed in embryonic stem cells.&amp;lt;ref&amp;gt;Newman, M. A., &amp;amp; Hammond, S. M. (2010). Lin-28: an early embryonic sentinel that blocks Let-7 biogenesis. The international journal of biochemistry &amp;amp; cell biology, 42(8), 1330-1333. PMID: 20619222 DOI: 10.1016/j.biocel.2009.02.023&amp;lt;/ref&amp;gt; Interestingly, Lin-28 can be used to&lt;/div&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;Let-7, one of the first miRNAs discovered, was initially shown to control developmental timing in &amp;#039;&amp;#039;Caenorhabditis elegans&amp;#039;&amp;#039;&amp;lt;ref&amp;gt;Reinhart, B. J., Slack, F. J., Basson, M., Pasquinelli, A. E., Bettinger, J. C., Rougvie, A. E., ... &amp;amp; Ruvkun, G. (2000). The 21-nucleotide let-7 RNA regulates developmental timing in Caenorhabditis elegans. nature, 403(6772), 901-906.  PMID: 10706289 DOI: 10.1038/35002607&amp;lt;/ref&amp;gt; In mice, 12 genes encode members of the Let-7 family, which includes nine slightly different miRNAs [Let-7a, Let-c, Let-7f (all encoded by two genes), and Let-7b, Let-7d, Let-7e, Let-7g, Let-7i, and miR-98 (all encoded by one gene)]. Processing of Let-7 can be inhibited by an RNA-binding protein LIN28, that is highly expressed in embryonic stem cells.&amp;lt;ref&amp;gt;Newman, M. A., &amp;amp; Hammond, S. M. (2010). Lin-28: an early embryonic sentinel that blocks Let-7 biogenesis. The international journal of biochemistry &amp;amp; cell biology, 42(8), 1330-1333. PMID: 20619222 DOI: 10.1016/j.biocel.2009.02.023&amp;lt;/ref&amp;gt; Interestingly, Lin-28 can be used to&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;achieve [[epigenetic reprogramming]] of human somatic cells into iPSC, even from centenarians fibroblasts.&amp;lt;ref&amp;gt;Lapasset, L., Milhavet, O., Prieur, A., Besnard, E., Babled, A., Aït-Hamou, N., ... &amp;amp; Lemaitre, J. M. (2011). Rejuvenating senescent and centenarian human cells by reprogramming through the pluripotent state. Genes &amp;amp; development, 25(21), 2248-2253. PMID: 22056670 PMCID: PMC3219229 DOI: 10.1101/gad.173922.111&amp;lt;/ref&amp;gt;&lt;/div&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;achieve [[epigenetic reprogramming]] of human somatic cells into iPSC, even from centenarians fibroblasts.&amp;lt;ref&amp;gt;Lapasset, L., Milhavet, O., Prieur, A., Besnard, E., Babled, A., Aït-Hamou, N., ... &amp;amp; Lemaitre, J. M. (2011). Rejuvenating senescent and centenarian human cells by reprogramming through the pluripotent state. Genes &amp;amp; development, 25(21), 2248-2253. PMID: 22056670 PMCID: PMC3219229 DOI: 10.1101/gad.173922.111&amp;lt;/ref&amp;gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-lineno&quot; id=&quot;mw-diff-left-l19&quot;&gt;Line 19:&lt;/td&gt;
&lt;td colspan=&quot;2&quot; class=&quot;diff-lineno&quot;&gt;Line 15:&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;&amp;lt;ref&amp;gt;Wang, Y., Zhao, J., Chen, S., Li, D., Yang, J., Zhao, X., ... &amp;amp; Xu, L. (2022). Let-7 as a promising target in aging and aging-related diseases: a promise or a pledge. Biomolecules, 12(8), 1070. PMID: 36008964 PMCID: PMC9406090 DOI: 10.3390/biom12081070&amp;lt;/ref&amp;gt;&lt;/div&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;&amp;lt;ref&amp;gt;Wang, Y., Zhao, J., Chen, S., Li, D., Yang, J., Zhao, X., ... &amp;amp; Xu, L. (2022). Let-7 as a promising target in aging and aging-related diseases: a promise or a pledge. Biomolecules, 12(8), 1070. PMID: 36008964 PMCID: PMC9406090 DOI: 10.3390/biom12081070&amp;lt;/ref&amp;gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;&amp;lt;ref&amp;gt;Cappelletti, C., Galbardi, B., Bruttini, M., Salerno, F., Canioni, E., Pasanisi, M. B., ... &amp;amp; Mantegazza, R. (2019). Aging‐associated genes and let‐7 microRNAs: a contribution to myogenic program dysregulation in oculopharyngeal muscular dystrophy. The FASEB Journal, 33(6), 7155-7167. PMID: 30860873 DOI: 10.1096/fj.201801577RR&amp;lt;/ref&amp;gt;&lt;/div&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;&amp;lt;ref&amp;gt;Cappelletti, C., Galbardi, B., Bruttini, M., Salerno, F., Canioni, E., Pasanisi, M. B., ... &amp;amp; Mantegazza, R. (2019). Aging‐associated genes and let‐7 microRNAs: a contribution to myogenic program dysregulation in oculopharyngeal muscular dystrophy. The FASEB Journal, 33(6), 7155-7167. PMID: 30860873 DOI: 10.1096/fj.201801577RR&amp;lt;/ref&amp;gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-side-deleted&quot;&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;+&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #a3d3ff; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;&lt;ins style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;&lt;/ins&gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-side-deleted&quot;&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;+&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #a3d3ff; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;&lt;ins style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;=== MicroRNA-141-3p ===&lt;/ins&gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-side-deleted&quot;&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;+&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #a3d3ff; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;&lt;ins style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;Emerging evidence shows that the microRNA-141-3p is involved in various age-related pathologies. The mitochondria-related miR-141-3p might &#039;&#039;&#039;promote the pro-inflammatory cytokine (IL-6) expression&#039;&#039;&#039;, inducing the inflammatory response and contributing to the development of obesity.  miR-141-3p over-expression reduced the tumor suppressor gene PTEN expression and promoted ATP production, oxidative stress, and &#039;&#039;&#039;the reduction of antioxidant capacity&#039;&#039;&#039;.&amp;lt;ref&amp;gt;Ji, J., Qin, Y., Ren, J., Lu, C., Wang, R., Dai, X., ... &amp;amp; Wang, X. (2015). Mitochondria-related miR-141-3p contributes to mitochondrial dysfunction in HFD-induced obesity by inhibiting PTEN. Scientific reports, 5(1), 1-12.  PMID: 26548909 PMCID: PMC4637860 DOI: 10.1038/srep16262&amp;lt;/ref&amp;gt; As a regulator of PPARγ (Peroxisome proliferator- activated receptor gamma), miR-143a-3p play an important role in adipogenesis via regulating MAPK7 (Mitogen-activated protein kinase 7) and fatty acid.&amp;lt;ref&amp;gt;Zhang, P., Du, J., Wang, L., Niu, L., Zhao, Y., Tang, G., ... &amp;amp; Zhu, L. (2018). MicroRNA-143a-3p modulates preadipocyte proliferation and differentiation by targeting MAPK7. Biomedicine &amp;amp; Pharmacotherapy, 108, 531-539.  PMID: 30243086 DOI: 10.1016/j.biopha.2018.09.080&amp;lt;/ref&amp;gt;&lt;/ins&gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-side-deleted&quot;&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;+&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #a3d3ff; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;&lt;ins style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;&lt;/ins&gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-side-deleted&quot;&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;+&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #a3d3ff; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;&lt;ins style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;Inhibiting miR-141-3p for three months with twice-weekly subcutaneous injections of &#039;&#039;&#039;Anti-miR-141-3p&#039;&#039;&#039; treatment improves musculoskeletal health with improving bone microstructure and muscle fiber size in aged mice. Molecular analysis revealed that miR-141-3p regulates the expression of AU-rich RNA-binding factor 1 (AUF1) and promotes the expression of the known muscle wasting transcription factor FOXO-1 (Forkhead transcription factor 1). It also promotes&lt;/ins&gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-side-deleted&quot;&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;+&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #a3d3ff; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;&lt;ins style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;senescence (p21, p16) and pro-inflammatory (TNF-α, IL-1β, IFN-γ) environment whereas inhibiting miR-141-3p prevents these effects.&amp;lt;ref&amp;gt;Sagar Vyavahare , Sandeep Kumar , Kathryn Smith , Bharati Mendhe , Roger Zhong , Marion A. Cooley , Babak Baban , Carlos M. Isales , Mark Hamrick , William D Hill , Sadanand Fulzele. (2023). Inhibiting MicroRNA-141-3p Improves Musculoskeletal Health in Aged Mice. Aging and disease. 2023 https://doi.org/10.14336/AD.2023.0310-1&amp;lt;/ref&amp;gt;&lt;/ins&gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-side-deleted&quot;&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;+&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #a3d3ff; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;&lt;ins style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;&lt;/ins&gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-side-deleted&quot;&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;+&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #a3d3ff; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;&lt;ins style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;=== miRNA-34a ===&lt;/ins&gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-side-deleted&quot;&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;+&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #a3d3ff; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;&lt;ins style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;&lt;/ins&gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-side-deleted&quot;&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;+&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #a3d3ff; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;&lt;ins style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;== Small nuclear RNAs ==&lt;/ins&gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-side-deleted&quot;&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;+&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #a3d3ff; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;&lt;ins style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;&lt;/ins&gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-side-deleted&quot;&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;+&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #a3d3ff; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;&lt;ins style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;== Piwi-interacting RNA ==&lt;/ins&gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;br&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;br&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;== References ==&lt;/div&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;== References ==&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;/table&gt;</summary>
		<author><name>Dmitry Dzhagarov</name></author>
	</entry>
	<entry>
		<id>https://en.longevitywiki.org/index.php?title=Small_ncRNAs_influencing_ageing_and_lifespan&amp;diff=2703&amp;oldid=prev</id>
		<title>Dmitry Dzhagarov: /* Let-7 as a promising target in aging and aging-related diseases */</title>
		<link rel="alternate" type="text/html" href="https://en.longevitywiki.org/index.php?title=Small_ncRNAs_influencing_ageing_and_lifespan&amp;diff=2703&amp;oldid=prev"/>
		<updated>2023-04-29T19:44:57Z</updated>

		<summary type="html">&lt;p&gt;&lt;span dir=&quot;auto&quot;&gt;&lt;span class=&quot;autocomment&quot;&gt;Let-7 as a promising target in aging and aging-related diseases&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
&lt;table style=&quot;background-color: #fff; color: #202122;&quot; data-mw=&quot;interface&quot;&gt;
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				&lt;td colspan=&quot;2&quot; style=&quot;background-color: #fff; color: #202122; text-align: center;&quot;&gt;← Older revision&lt;/td&gt;
				&lt;td colspan=&quot;2&quot; style=&quot;background-color: #fff; color: #202122; text-align: center;&quot;&gt;Revision as of 19:44, 29 April 2023&lt;/td&gt;
				&lt;/tr&gt;&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-lineno&quot; id=&quot;mw-diff-left-l11&quot;&gt;Line 11:&lt;/td&gt;
&lt;td colspan=&quot;2&quot; class=&quot;diff-lineno&quot;&gt;Line 11:&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;Let-7, one of the first miRNAs discovered, was initially shown to control developmental timing in &amp;#039;&amp;#039;Caenorhabditis elegans&amp;#039;&amp;#039;&amp;lt;ref&amp;gt;Reinhart, B. J., Slack, F. J., Basson, M., Pasquinelli, A. E., Bettinger, J. C., Rougvie, A. E., ... &amp;amp; Ruvkun, G. (2000). The 21-nucleotide let-7 RNA regulates developmental timing in Caenorhabditis elegans. nature, 403(6772), 901-906.  PMID: 10706289 DOI: 10.1038/35002607&amp;lt;/ref&amp;gt; In mice, 12 genes encode members of the Let-7 family, which includes nine slightly different miRNAs [Let-7a, Let-c, Let-7f (all encoded by two genes), and Let-7b, Let-7d, Let-7e, Let-7g, Let-7i, and miR-98 (all encoded by one gene)]. Processing of Let-7 can be inhibited by an RNA-binding protein LIN28, that is highly expressed in embryonic stem cells.&amp;lt;ref&amp;gt;Newman, M. A., &amp;amp; Hammond, S. M. (2010). Lin-28: an early embryonic sentinel that blocks Let-7 biogenesis. The international journal of biochemistry &amp;amp; cell biology, 42(8), 1330-1333. PMID: 20619222 DOI: 10.1016/j.biocel.2009.02.023&amp;lt;/ref&amp;gt; Interestingly, Lin-28 can be used to&lt;/div&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;Let-7, one of the first miRNAs discovered, was initially shown to control developmental timing in &amp;#039;&amp;#039;Caenorhabditis elegans&amp;#039;&amp;#039;&amp;lt;ref&amp;gt;Reinhart, B. J., Slack, F. J., Basson, M., Pasquinelli, A. E., Bettinger, J. C., Rougvie, A. E., ... &amp;amp; Ruvkun, G. (2000). The 21-nucleotide let-7 RNA regulates developmental timing in Caenorhabditis elegans. nature, 403(6772), 901-906.  PMID: 10706289 DOI: 10.1038/35002607&amp;lt;/ref&amp;gt; In mice, 12 genes encode members of the Let-7 family, which includes nine slightly different miRNAs [Let-7a, Let-c, Let-7f (all encoded by two genes), and Let-7b, Let-7d, Let-7e, Let-7g, Let-7i, and miR-98 (all encoded by one gene)]. Processing of Let-7 can be inhibited by an RNA-binding protein LIN28, that is highly expressed in embryonic stem cells.&amp;lt;ref&amp;gt;Newman, M. A., &amp;amp; Hammond, S. M. (2010). Lin-28: an early embryonic sentinel that blocks Let-7 biogenesis. The international journal of biochemistry &amp;amp; cell biology, 42(8), 1330-1333. PMID: 20619222 DOI: 10.1016/j.biocel.2009.02.023&amp;lt;/ref&amp;gt; Interestingly, Lin-28 can be used to&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;achieve [[epigenetic reprogramming]] of human somatic cells into iPSC, even from centenarians fibroblasts.&amp;lt;ref&amp;gt;Lapasset, L., Milhavet, O., Prieur, A., Besnard, E., Babled, A., Aït-Hamou, N., ... &amp;amp; Lemaitre, J. M. (2011). Rejuvenating senescent and centenarian human cells by reprogramming through the pluripotent state. Genes &amp;amp; development, 25(21), 2248-2253. PMID: 22056670 PMCID: PMC3219229 DOI: 10.1101/gad.173922.111&amp;lt;/ref&amp;gt;&lt;/div&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;achieve [[epigenetic reprogramming]] of human somatic cells into iPSC, even from centenarians fibroblasts.&amp;lt;ref&amp;gt;Lapasset, L., Milhavet, O., Prieur, A., Besnard, E., Babled, A., Aït-Hamou, N., ... &amp;amp; Lemaitre, J. M. (2011). Rejuvenating senescent and centenarian human cells by reprogramming through the pluripotent state. Genes &amp;amp; development, 25(21), 2248-2253. PMID: 22056670 PMCID: PMC3219229 DOI: 10.1101/gad.173922.111&amp;lt;/ref&amp;gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;−&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #ffe49c; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;Ectopic global LIN28a overexpression in mice was found to result in increased body size and crown–rump length, as well as increased glucose metabolism and [[insulin sensitivity]].&amp;lt;ref&amp;gt;Zhu, H., Shah, S., Shyh-Chang, N., Shinoda, G., Einhorn, W. S., Viswanathan, S. R., ... &amp;amp; Daley, G. Q. (2010). Lin28a transgenic mice manifest size and puberty phenotypes identified in human genetic association studies. Nature genetics, 42(7), 626-630. PMID: 20512147 PMCID: PMC3069638 DOI: 10.1038/ng.593&amp;lt;/ref&amp;gt; LIN28A expression ends after development in most of tissues, and its re-expression in adult transgenic mice has been reported to enhance the regeneration of various somatic tissues by acting on &lt;del style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;SSCs &lt;/del&gt;harbored within those tissues.&amp;lt;ref&amp;gt;Shyh-Chang, N., Zhu, H., De Soysa, T. Y., Shinoda, G., Seligson, M. T., Tsanov, K. M., ... &amp;amp; Daley, G. Q. (2013). Lin28 enhances tissue repair by reprogramming cellular metabolism. Cell, 155(4), 778-792. PMID: 24209617 PMCID: PMC3917449 DOI: 10.1016/j.cell.2013.09.059&amp;lt;/ref&amp;gt;&amp;lt;ref&amp;gt;Pieknell, K., Sulistio, Y. A., Wulansari, N., Darsono, W. H. W., Chang, M. Y., Ko, J. Y., ... &amp;amp; Lee, S. H. (2022). LIN28A enhances regenerative capacity of human somatic tissue stem cells via metabolic and mitochondrial reprogramming. Cell Death &amp;amp; Differentiation, 29(3), 540-555. PMID: 34556809 PMCID: PMC8901931 DOI: 10.1038/s41418-021-00873-1&amp;lt;/ref&amp;gt; Knockout of Let-7 with a locked nucleic acid (LNA)-modified antimiR, that could inhibit Let-7 function in the whole body of mice, can reverse the glucose tolerance of diet-induced obese mice.&amp;lt;ref&amp;gt;Frost, R. J., &amp;amp; Olson, E. N. (2011). Control of glucose homeostasis and insulin sensitivity by the Let-7 family of microRNAs. Proceedings of the National Academy of Sciences, 108(52), 21075-21080. PMID: 22160727 PMCID: PMC3248488 DOI: 10.1073/pnas.1118922109&amp;lt;/ref&amp;gt;&lt;/div&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;+&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #a3d3ff; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;Ectopic global LIN28a overexpression in mice was found to result in increased body size and crown–rump length, as well as increased glucose metabolism and [[insulin sensitivity]].&amp;lt;ref&amp;gt;Zhu, H., Shah, S., Shyh-Chang, N., Shinoda, G., Einhorn, W. S., Viswanathan, S. R., ... &amp;amp; Daley, G. Q. (2010). Lin28a transgenic mice manifest size and puberty phenotypes identified in human genetic association studies. Nature genetics, 42(7), 626-630. PMID: 20512147 PMCID: PMC3069638 DOI: 10.1038/ng.593&amp;lt;/ref&amp;gt; LIN28A expression ends after development in most of tissues, and its re-expression in adult transgenic mice has been reported to enhance the regeneration of various somatic tissues by acting on &lt;ins style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;somatic stem cells &lt;/ins&gt;harbored within those tissues.&amp;lt;ref&amp;gt;Shyh-Chang, N., Zhu, H., De Soysa, T. Y., Shinoda, G., Seligson, M. T., Tsanov, K. M., ... &amp;amp; Daley, G. Q. (2013). Lin28 enhances tissue repair by reprogramming cellular metabolism. Cell, 155(4), 778-792. PMID: 24209617 PMCID: PMC3917449 DOI: 10.1016/j.cell.2013.09.059&amp;lt;/ref&amp;gt;&amp;lt;ref&amp;gt;Pieknell, K., Sulistio, Y. A., Wulansari, N., Darsono, W. H. W., Chang, M. Y., Ko, J. Y., ... &amp;amp; Lee, S. H. (2022). LIN28A enhances regenerative capacity of human somatic tissue stem cells via metabolic and mitochondrial reprogramming. Cell Death &amp;amp; Differentiation, 29(3), 540-555. PMID: 34556809 PMCID: PMC8901931 DOI: 10.1038/s41418-021-00873-1&amp;lt;/ref&amp;gt; Knockout of Let-7 with a locked nucleic acid (LNA)-modified antimiR, that could inhibit Let-7 function in the whole body of mice, can reverse the glucose tolerance of diet-induced obese mice.&amp;lt;ref&amp;gt;Frost, R. J., &amp;amp; Olson, E. N. (2011). Control of glucose homeostasis and insulin sensitivity by the Let-7 family of microRNAs. Proceedings of the National Academy of Sciences, 108(52), 21075-21080. PMID: 22160727 PMCID: PMC3248488 DOI: 10.1073/pnas.1118922109&amp;lt;/ref&amp;gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;br&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;br&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;Preliminary evidence suggests that beneficial effects of [[metformin]] may be due to regulation of let-7 expression, since &amp;quot;metformin no longer has potent antidiabetic actions in a liver-specific let-7 loss-of-function mouse model&amp;quot;.&amp;lt;ref&amp;gt;Xie, D., Chen, F., Zhang, Y., Shi, B., Song, J., Chaudhari, K., ... &amp;amp; Huang, Y. (2022). Let-7 underlies metformin-induced inhibition of hepatic glucose production. Proceedings of the National Academy of Sciences, 119(14), e2122217119. PMID: 35344434 PMCID: PMC9169108 DOI: 10.1073/pnas.2122217119&amp;lt;/ref&amp;gt;&amp;lt;ref&amp;gt;Zhu, H., Jia, Z., Li, Y. R., &amp;amp; Danelisen, I. (2023). Molecular mechanisms of action of metformin: latest advances and therapeutic implications. Clinical and Experimental Medicine, 1-11.  PMID: 37016064 PMCID: PMC10072049 DOI: 10.1007/s10238-023-01051-y&amp;lt;/ref&amp;gt;&lt;/div&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;Preliminary evidence suggests that beneficial effects of [[metformin]] may be due to regulation of let-7 expression, since &amp;quot;metformin no longer has potent antidiabetic actions in a liver-specific let-7 loss-of-function mouse model&amp;quot;.&amp;lt;ref&amp;gt;Xie, D., Chen, F., Zhang, Y., Shi, B., Song, J., Chaudhari, K., ... &amp;amp; Huang, Y. (2022). Let-7 underlies metformin-induced inhibition of hepatic glucose production. Proceedings of the National Academy of Sciences, 119(14), e2122217119. PMID: 35344434 PMCID: PMC9169108 DOI: 10.1073/pnas.2122217119&amp;lt;/ref&amp;gt;&amp;lt;ref&amp;gt;Zhu, H., Jia, Z., Li, Y. R., &amp;amp; Danelisen, I. (2023). Molecular mechanisms of action of metformin: latest advances and therapeutic implications. Clinical and Experimental Medicine, 1-11.  PMID: 37016064 PMCID: PMC10072049 DOI: 10.1007/s10238-023-01051-y&amp;lt;/ref&amp;gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;/table&gt;</summary>
		<author><name>Dmitry Dzhagarov</name></author>
	</entry>
	<entry>
		<id>https://en.longevitywiki.org/index.php?title=Small_ncRNAs_influencing_ageing_and_lifespan&amp;diff=2702&amp;oldid=prev</id>
		<title>Dmitry Dzhagarov: /* Piwi-interacting RNA */</title>
		<link rel="alternate" type="text/html" href="https://en.longevitywiki.org/index.php?title=Small_ncRNAs_influencing_ageing_and_lifespan&amp;diff=2702&amp;oldid=prev"/>
		<updated>2023-04-29T19:35:39Z</updated>

		<summary type="html">&lt;p&gt;&lt;span dir=&quot;auto&quot;&gt;&lt;span class=&quot;autocomment&quot;&gt;Piwi-interacting RNA&lt;/span&gt;&lt;/span&gt;&lt;/p&gt;
&lt;table style=&quot;background-color: #fff; color: #202122;&quot; data-mw=&quot;interface&quot;&gt;
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				&lt;td colspan=&quot;2&quot; style=&quot;background-color: #fff; color: #202122; text-align: center;&quot;&gt;← Older revision&lt;/td&gt;
				&lt;td colspan=&quot;2&quot; style=&quot;background-color: #fff; color: #202122; text-align: center;&quot;&gt;Revision as of 19:35, 29 April 2023&lt;/td&gt;
				&lt;/tr&gt;&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-lineno&quot; id=&quot;mw-diff-left-l8&quot;&gt;Line 8:&lt;/td&gt;
&lt;td colspan=&quot;2&quot; class=&quot;diff-lineno&quot;&gt;Line 8:&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;== Piwi-interacting RNA ==&lt;/div&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;== Piwi-interacting RNA ==&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;br&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;br&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-side-deleted&quot;&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;+&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #a3d3ff; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;&lt;ins style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;== Let-7 as a promising target in aging and aging-related diseases ==&lt;/ins&gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-side-deleted&quot;&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;+&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #a3d3ff; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;&lt;ins style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;Let-7, one of the first miRNAs discovered, was initially shown to control developmental timing in &#039;&#039;Caenorhabditis elegans&#039;&#039;&amp;lt;ref&amp;gt;Reinhart, B. J., Slack, F. J., Basson, M., Pasquinelli, A. E., Bettinger, J. C., Rougvie, A. E., ... &amp;amp; Ruvkun, G. (2000). The 21-nucleotide let-7 RNA regulates developmental timing in Caenorhabditis elegans. nature, 403(6772), 901-906.  PMID: 10706289 DOI: 10.1038/35002607&amp;lt;/ref&amp;gt; In mice, 12 genes encode members of the Let-7 family, which includes nine slightly different miRNAs [Let-7a, Let-c, Let-7f (all encoded by two genes), and Let-7b, Let-7d, Let-7e, Let-7g, Let-7i, and miR-98 (all encoded by one gene)]. Processing of Let-7 can be inhibited by an RNA-binding protein LIN28, that is highly expressed in embryonic stem cells.&amp;lt;ref&amp;gt;Newman, M. A., &amp;amp; Hammond, S. M. (2010). Lin-28: an early embryonic sentinel that blocks Let-7 biogenesis. The international journal of biochemistry &amp;amp; cell biology, 42(8), 1330-1333. PMID: 20619222 DOI: 10.1016/j.biocel.2009.02.023&amp;lt;/ref&amp;gt; Interestingly, Lin-28 can be used to&lt;/ins&gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-side-deleted&quot;&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;+&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #a3d3ff; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;&lt;ins style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;achieve [[epigenetic reprogramming]] of human somatic cells into iPSC, even from centenarians fibroblasts.&amp;lt;ref&amp;gt;Lapasset, L., Milhavet, O., Prieur, A., Besnard, E., Babled, A., Aït-Hamou, N., ... &amp;amp; Lemaitre, J. M. (2011). Rejuvenating senescent and centenarian human cells by reprogramming through the pluripotent state. Genes &amp;amp; development, 25(21), 2248-2253. PMID: 22056670 PMCID: PMC3219229 DOI: 10.1101/gad.173922.111&amp;lt;/ref&amp;gt;&lt;/ins&gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-side-deleted&quot;&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;+&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #a3d3ff; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;&lt;ins style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;Ectopic global LIN28a overexpression in mice was found to result in increased body size and crown–rump length, as well as increased glucose metabolism and [[insulin sensitivity]].&amp;lt;ref&amp;gt;Zhu, H., Shah, S., Shyh-Chang, N., Shinoda, G., Einhorn, W. S., Viswanathan, S. R., ... &amp;amp; Daley, G. Q. (2010). Lin28a transgenic mice manifest size and puberty phenotypes identified in human genetic association studies. Nature genetics, 42(7), 626-630. PMID: 20512147 PMCID: PMC3069638 DOI: 10.1038/ng.593&amp;lt;/ref&amp;gt; LIN28A expression ends after development in most of tissues, and its re-expression in adult transgenic mice has been reported to enhance the regeneration of various somatic tissues by acting on SSCs harbored within those tissues.&amp;lt;ref&amp;gt;Shyh-Chang, N., Zhu, H., De Soysa, T. Y., Shinoda, G., Seligson, M. T., Tsanov, K. M., ... &amp;amp; Daley, G. Q. (2013). Lin28 enhances tissue repair by reprogramming cellular metabolism. Cell, 155(4), 778-792. PMID: 24209617 PMCID: PMC3917449 DOI: 10.1016/j.cell.2013.09.059&amp;lt;/ref&amp;gt;&amp;lt;ref&amp;gt;Pieknell, K., Sulistio, Y. A., Wulansari, N., Darsono, W. H. W., Chang, M. Y., Ko, J. Y., ... &amp;amp; Lee, S. H. (2022). LIN28A enhances regenerative capacity of human somatic tissue stem cells via metabolic and mitochondrial reprogramming. Cell Death &amp;amp; Differentiation, 29(3), 540-555. PMID: 34556809 PMCID: PMC8901931 DOI: 10.1038/s41418-021-00873-1&amp;lt;/ref&amp;gt; Knockout of Let-7 with a locked nucleic acid (LNA)-modified antimiR, that could inhibit Let-7 function in the whole body of mice, can reverse the glucose tolerance of diet-induced obese mice.&amp;lt;ref&amp;gt;Frost, R. J., &amp;amp; Olson, E. N. (2011). Control of glucose homeostasis and insulin sensitivity by the Let-7 family of microRNAs. Proceedings of the National Academy of Sciences, 108(52), 21075-21080. PMID: 22160727 PMCID: PMC3248488 DOI: 10.1073/pnas.1118922109&amp;lt;/ref&amp;gt;&lt;/ins&gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;br&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;br&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-side-deleted&quot;&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;+&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #a3d3ff; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;&lt;ins style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;Preliminary evidence suggests that beneficial effects of [[metformin]] may be due to regulation of let-7 expression, since &quot;metformin no longer has potent antidiabetic actions in a liver-specific let-7 loss-of-function mouse model&quot;.&amp;lt;ref&amp;gt;Xie, D., Chen, F., Zhang, Y., Shi, B., Song, J., Chaudhari, K., ... &amp;amp; Huang, Y. (2022). Let-7 underlies metformin-induced inhibition of hepatic glucose production. Proceedings of the National Academy of Sciences, 119(14), e2122217119. PMID: 35344434 PMCID: PMC9169108 DOI: 10.1073/pnas.2122217119&amp;lt;/ref&amp;gt;&amp;lt;ref&amp;gt;Zhu, H., Jia, Z., Li, Y. R., &amp;amp; Danelisen, I. (2023). Molecular mechanisms of action of metformin: latest advances and therapeutic implications. Clinical and Experimental Medicine, 1-11.  PMID: 37016064 PMCID: PMC10072049 DOI: 10.1007/s10238-023-01051-y&amp;lt;/ref&amp;gt;&lt;/ins&gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-side-deleted&quot;&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;+&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #a3d3ff; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;&lt;ins style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;&lt;/ins&gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-side-deleted&quot;&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;+&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #a3d3ff; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;&lt;ins style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;&amp;lt;ref&amp;gt;Frost, R. J., &amp;amp; Olson, E. N. (2011). Control of glucose homeostasis and insulin sensitivity by the Let-7 family of microRNAs. Proceedings of the National Academy of Sciences, 108(52), 21075-21080.   PMID: 22160727 PMCID: PMC3248488 DOI: 10.1073/pnas.1118922109&amp;lt;/ref&amp;gt;&lt;/ins&gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-side-deleted&quot;&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;+&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #a3d3ff; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;&lt;ins style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;&amp;lt;ref&amp;gt;Thornton, J. E., &amp;amp; Gregory, R. I. (2012). How does Lin28 let-7 control development and disease?. Trends in cell biology, 22(9), 474-482. PMID: 22784697 PMCID: PMC3432650 DOI: 10.1016/j.tcb.2012.06.001&amp;lt;/ref&amp;gt;&lt;/ins&gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-side-deleted&quot;&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;+&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #a3d3ff; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;&lt;ins style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;&amp;lt;ref&amp;gt;Wang, Y., Zhao, J., Chen, S., Li, D., Yang, J., Zhao, X., ... &amp;amp; Xu, L. (2022). Let-7 as a promising target in aging and aging-related diseases: a promise or a pledge. Biomolecules, 12(8), 1070. PMID: 36008964 PMCID: PMC9406090 DOI: 10.3390/biom12081070&amp;lt;/ref&amp;gt;&lt;/ins&gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-side-deleted&quot;&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;+&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #a3d3ff; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;&lt;ins style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;&amp;lt;ref&amp;gt;Cappelletti, C., Galbardi, B., Bruttini, M., Salerno, F., Canioni, E., Pasanisi, M. B., ... &amp;amp; Mantegazza, R. (2019). Aging‐associated genes and let‐7 microRNAs: a contribution to myogenic program dysregulation in oculopharyngeal muscular dystrophy. The FASEB Journal, 33(6), 7155-7167. PMID: 30860873 DOI: 10.1096/fj.201801577RR&amp;lt;/ref&amp;gt;&lt;/ins&gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;br&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;br&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;== References ==&lt;/div&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;== References ==&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;/table&gt;</summary>
		<author><name>Dmitry Dzhagarov</name></author>
	</entry>
	<entry>
		<id>https://en.longevitywiki.org/index.php?title=Small_ncRNAs_influencing_ageing_and_lifespan&amp;diff=2701&amp;oldid=prev</id>
		<title>Dmitry Dzhagarov at 16:35, 29 April 2023</title>
		<link rel="alternate" type="text/html" href="https://en.longevitywiki.org/index.php?title=Small_ncRNAs_influencing_ageing_and_lifespan&amp;diff=2701&amp;oldid=prev"/>
		<updated>2023-04-29T16:35:53Z</updated>

		<summary type="html">&lt;p&gt;&lt;/p&gt;
&lt;table style=&quot;background-color: #fff; color: #202122;&quot; data-mw=&quot;interface&quot;&gt;
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				&lt;td colspan=&quot;2&quot; style=&quot;background-color: #fff; color: #202122; text-align: center;&quot;&gt;← Older revision&lt;/td&gt;
				&lt;td colspan=&quot;2&quot; style=&quot;background-color: #fff; color: #202122; text-align: center;&quot;&gt;Revision as of 16:35, 29 April 2023&lt;/td&gt;
				&lt;/tr&gt;&lt;tr&gt;&lt;td colspan=&quot;2&quot; class=&quot;diff-lineno&quot; id=&quot;mw-diff-left-l1&quot;&gt;Line 1:&lt;/td&gt;
&lt;td colspan=&quot;2&quot; class=&quot;diff-lineno&quot;&gt;Line 1:&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;A &amp;#039;&amp;#039;&amp;#039;non-coding RNA (ncRNA)&amp;#039;&amp;#039;&amp;#039; is a functional RNA molecule that is not translated into a protein. Non-coding RNAs are endogenous transcripts that govern gene regulatory networks, thus impacting both physiological and pathological events.  Non-coding RNAs constitute the majority of endogenous transcripts in the cells since human genome consists of only 3% protein-coding genes and most of the genome is transcribed to produce non-coding RNAs. ncRNA comprise numerous RNA species grouped in different classes, based on their different lengths and activities. Among these molecules, microRNAs, [[long non-coding RNAs]], and more recently [[Circular RNAs (CircRNAs)|circular RNAs]] are considered crucial mediators of almost all cellular processes.&amp;lt;ref&amp;gt;Zhang, P., Wu, W., Chen, Q., &amp;amp; Chen, M. (2019). Non-coding RNAs and their integrated networks. Journal of integrative bioinformatics, 16(3). PMID: 31301674 PMCID: PMC6798851 DOI: 10.1515/jib-2019-0027&amp;lt;/ref&amp;gt;&amp;lt;ref&amp;gt;Varghese, L. N., Schwenke, D. O., &amp;amp; Katare, R. (2023). Role of noncoding RNAs in cardiac ageing. Frontiers in Cardiovascular Medicine, 10.  PMID: 37034355 PMCID: PMC10073704 DOI: 10.3389/fcvm.2023.1142575&amp;lt;/ref&amp;gt;&lt;/div&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;A &amp;#039;&amp;#039;&amp;#039;non-coding RNA (ncRNA)&amp;#039;&amp;#039;&amp;#039; is a functional RNA molecule that is not translated into a protein. Non-coding RNAs are endogenous transcripts that govern gene regulatory networks, thus impacting both physiological and pathological events.  Non-coding RNAs constitute the majority of endogenous transcripts in the cells since human genome consists of only 3% protein-coding genes and most of the genome is transcribed to produce non-coding RNAs. ncRNA comprise numerous RNA species grouped in different classes, based on their different lengths and activities. Among these molecules, microRNAs, [[long non-coding RNAs]], and more recently [[Circular RNAs (CircRNAs)|circular RNAs]] are considered crucial mediators of almost all cellular processes.&amp;lt;ref&amp;gt;Zhang, P., Wu, W., Chen, Q., &amp;amp; Chen, M. (2019). Non-coding RNAs and their integrated networks. Journal of integrative bioinformatics, 16(3). PMID: 31301674 PMCID: PMC6798851 DOI: 10.1515/jib-2019-0027&amp;lt;/ref&amp;gt;&amp;lt;ref&amp;gt;Varghese, L. N., Schwenke, D. O., &amp;amp; Katare, R. (2023). Role of noncoding RNAs in cardiac ageing. Frontiers in Cardiovascular Medicine, 10.  PMID: 37034355 PMCID: PMC10073704 DOI: 10.3389/fcvm.2023.1142575&amp;lt;/ref&amp;gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;br&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;br&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;−&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #ffe49c; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;&lt;del style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;-- miRNAs --&lt;/del&gt;&lt;/div&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;+&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #a3d3ff; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;&lt;ins style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;== MicroRNAs ==&lt;/ins&gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;MicroRNAs (miRNAs) are endogenous small (∼22–25 nucleotides long) noncoding RNAs that control the expression of target mRNA by translational repression or mRNA degradation.&amp;lt;ref&amp;gt;Bushati, N., &amp;amp; Cohen, S. M. (2007). microRNA functions. Annu. Rev. Cell Dev. Biol., 23, 175-205. PMID: 17506695 DOI: 10.1146/annurev.cellbio.23.090506.123406&amp;lt;/ref&amp;gt; They are involved in many biological processes such as developmental timing, differentiation, cell death, stem cell proliferation and differentiation, immune response, aging and cancer. That&amp;#039;s why miRNAs are the best characterized small non-coding RNAs influencing ageing and lifespan. Multiple miRNAs, including miRNA-1, miRNA-145, miRNA-140, miRNA-34a, miRNA-106b, and miRNA-449a, are widely considered as critical regulators for cell senescence.&amp;lt;ref&amp;gt;Kinser, H. E., &amp;amp; Pincus, Z. (2020). MicroRNAs as modulators of longevity and the aging process. Human genetics, 139(3), 291-308. PMID: 31297598 PMCID: PMC6954352 DOI: 10.1007/s00439-019-02046-0&amp;lt;/ref&amp;gt;&amp;lt;ref&amp;gt;Zia, A., Farkhondeh, T., Sahebdel, F., Pourbagher-Shahri, A. M., &amp;amp; Samarghandian, S. (2022). Key miRNAs in Modulating Aging and Longevity: A Focus on Signaling Pathways and Cellular Targets. Current Molecular Pharmacology, 15(5), 736-762. PMID: 34533452 DOI: 10.2174/1874467214666210917141541&amp;lt;/ref&amp;gt;&amp;lt;ref&amp;gt;Ma, X., Zheng, Q., Zhao, G., Yuan, W., &amp;amp; Liu, W. (2020). Regulation of cellular senescence by microRNAs. Mechanisms of Ageing and Development, 189, 111264.  PMID: 32450085 DOI: 10.1016/j.mad.2020.111264&amp;lt;/ref&amp;gt;&amp;lt;ref&amp;gt;Azizidoost, S., Nasrolahi, A., Sheykhi-Sabzehpoush, M., Akiash, N., Assareh, A. R., Anbiyaee, O., ... &amp;amp; Kempisty, B. (2023). Potential roles of endothelial cells-related non-coding RNAs in cardiovascular diseases. Pathology-Research and Practice, 154330.   https://doi.org/10.1016/j.prp.2023.154330&amp;lt;/ref&amp;gt;&amp;lt;ref&amp;gt;Ortiz, G. G. R., Mohammadi, Y., Nazari, A., Ataeinaeini, M., Kazemi, P., Yasamineh, S., ... &amp;amp; Gholizadeh, O. (2023). A state-of-the-art review on the MicroRNAs roles in hematopoietic stem cell aging and longevity. Cell Communication and Signaling, 21(1), 1-16.  PMID: 37095512 PMCID: PMC10123996 DOI: 10.1186/s12964-023-01117-0&amp;lt;/ref&amp;gt;&amp;lt;ref&amp;gt;Chen, Z., Li, C., Huang, H., Shi, Y. L., &amp;amp; Wang, X. (2023). Research progress of aging-related microRNAs. Current Stem Cell Research &amp;amp; Therapy.  PMID: 36892029 DOI: 10.2174/1574888X18666230308111043&amp;lt;/ref&amp;gt;&lt;/div&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;MicroRNAs (miRNAs) are endogenous small (∼22–25 nucleotides long) noncoding RNAs that control the expression of target mRNA by translational repression or mRNA degradation.&amp;lt;ref&amp;gt;Bushati, N., &amp;amp; Cohen, S. M. (2007). microRNA functions. Annu. Rev. Cell Dev. Biol., 23, 175-205. PMID: 17506695 DOI: 10.1146/annurev.cellbio.23.090506.123406&amp;lt;/ref&amp;gt; They are involved in many biological processes such as developmental timing, differentiation, cell death, stem cell proliferation and differentiation, immune response, aging and cancer. That&amp;#039;s why miRNAs are the best characterized small non-coding RNAs influencing ageing and lifespan. Multiple miRNAs, including miRNA-1, miRNA-145, miRNA-140, miRNA-34a, miRNA-106b, and miRNA-449a, are widely considered as critical regulators for cell senescence.&amp;lt;ref&amp;gt;Kinser, H. E., &amp;amp; Pincus, Z. (2020). MicroRNAs as modulators of longevity and the aging process. Human genetics, 139(3), 291-308. PMID: 31297598 PMCID: PMC6954352 DOI: 10.1007/s00439-019-02046-0&amp;lt;/ref&amp;gt;&amp;lt;ref&amp;gt;Zia, A., Farkhondeh, T., Sahebdel, F., Pourbagher-Shahri, A. M., &amp;amp; Samarghandian, S. (2022). Key miRNAs in Modulating Aging and Longevity: A Focus on Signaling Pathways and Cellular Targets. Current Molecular Pharmacology, 15(5), 736-762. PMID: 34533452 DOI: 10.2174/1874467214666210917141541&amp;lt;/ref&amp;gt;&amp;lt;ref&amp;gt;Ma, X., Zheng, Q., Zhao, G., Yuan, W., &amp;amp; Liu, W. (2020). Regulation of cellular senescence by microRNAs. Mechanisms of Ageing and Development, 189, 111264.  PMID: 32450085 DOI: 10.1016/j.mad.2020.111264&amp;lt;/ref&amp;gt;&amp;lt;ref&amp;gt;Azizidoost, S., Nasrolahi, A., Sheykhi-Sabzehpoush, M., Akiash, N., Assareh, A. R., Anbiyaee, O., ... &amp;amp; Kempisty, B. (2023). Potential roles of endothelial cells-related non-coding RNAs in cardiovascular diseases. Pathology-Research and Practice, 154330.   https://doi.org/10.1016/j.prp.2023.154330&amp;lt;/ref&amp;gt;&amp;lt;ref&amp;gt;Ortiz, G. G. R., Mohammadi, Y., Nazari, A., Ataeinaeini, M., Kazemi, P., Yasamineh, S., ... &amp;amp; Gholizadeh, O. (2023). A state-of-the-art review on the MicroRNAs roles in hematopoietic stem cell aging and longevity. Cell Communication and Signaling, 21(1), 1-16.  PMID: 37095512 PMCID: PMC10123996 DOI: 10.1186/s12964-023-01117-0&amp;lt;/ref&amp;gt;&amp;lt;ref&amp;gt;Chen, Z., Li, C., Huang, H., Shi, Y. L., &amp;amp; Wang, X. (2023). Research progress of aging-related microRNAs. Current Stem Cell Research &amp;amp; Therapy.  PMID: 36892029 DOI: 10.2174/1574888X18666230308111043&amp;lt;/ref&amp;gt;&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;br&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;br&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;−&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #ffe49c; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;== &lt;del style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;small &lt;/del&gt;nuclear RNAs ==&lt;/div&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;+&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #a3d3ff; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;== &lt;ins style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;Small &lt;/ins&gt;nuclear RNAs ==&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;br&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;br&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;−&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #ffe49c; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;== &lt;del style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;piwi&lt;/del&gt;-interacting RNA ==&lt;/div&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot; data-marker=&quot;+&quot;&gt;&lt;/td&gt;&lt;td style=&quot;color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #a3d3ff; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;div&gt;== &lt;ins style=&quot;font-weight: bold; text-decoration: none;&quot;&gt;Piwi&lt;/ins&gt;-interacting RNA ==&lt;/div&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;br&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;br&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;tr&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;br&gt;&lt;/td&gt;&lt;td class=&quot;diff-marker&quot;&gt;&lt;/td&gt;&lt;td style=&quot;background-color: #f8f9fa; color: #202122; font-size: 88%; border-style: solid; border-width: 1px 1px 1px 4px; border-radius: 0.33em; border-color: #eaecf0; vertical-align: top; white-space: pre-wrap;&quot;&gt;&lt;br&gt;&lt;/td&gt;&lt;/tr&gt;
&lt;/table&gt;</summary>
		<author><name>Dmitry Dzhagarov</name></author>
	</entry>
</feed>