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Redox-mediated regulation of aging and healthspan by an evolutionarily conserved transcription factor HLH-2/Tcf3/E2A

Physiological aging is a complex process, influenced by a plethora of genetic and environmental factors. While being far from fully understood, a number of common aging hallmarks have been elucidated in recent years. Among these, transcriptomic alterations are hypothesized to represent a crucial ear...

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Autores principales: Rozanov, Leonid, Ravichandran, Meenakshi, Grigolon, Giovanna, Zanellati, Maria Clara, Mansfeld, Johannes, Zarse, Kim, Barzilai, Nir, Atzmon, Gil, Fischer, Fabian, Ristow, Michael
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7096751/
https://www.ncbi.nlm.nih.gov/pubmed/32203922
http://dx.doi.org/10.1016/j.redox.2020.101448
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author Rozanov, Leonid
Ravichandran, Meenakshi
Grigolon, Giovanna
Zanellati, Maria Clara
Mansfeld, Johannes
Zarse, Kim
Barzilai, Nir
Atzmon, Gil
Fischer, Fabian
Ristow, Michael
author_facet Rozanov, Leonid
Ravichandran, Meenakshi
Grigolon, Giovanna
Zanellati, Maria Clara
Mansfeld, Johannes
Zarse, Kim
Barzilai, Nir
Atzmon, Gil
Fischer, Fabian
Ristow, Michael
author_sort Rozanov, Leonid
collection PubMed
description Physiological aging is a complex process, influenced by a plethora of genetic and environmental factors. While being far from fully understood, a number of common aging hallmarks have been elucidated in recent years. Among these, transcriptomic alterations are hypothesized to represent a crucial early manifestation of aging. Accordingly, several transcription factors (TFs) have previously been identified as important modulators of lifespan in evolutionarily distant model organisms. Based on a set of TFs conserved between nematodes, zebrafish, mice, and humans, we here perform a RNA interference (RNAi) screen in C. elegans to discover evolutionarily conserved TFs impacting aging. We identify a basic helix-loop-helix TF, named HLH-2 in nematodes (Tcf3/E2A in mammals), to exert a pronounced lifespan-extending effect in C. elegans upon impairment. We further show that its impairment impacts cellular energy metabolism, increases parameters of healthy aging, and extends nematodal lifespan in a ROS-dependent manner. We then identify arginine kinases, orthologues of mammalian creatine kinases, as a target of HLH-2 transcriptional regulation, serving to mediate the healthspan-promoting effects observed upon impairment of hlh-2 expression. Consistently, HLH-2 is shown to epistatically interact with core components of known lifespan-regulating pathways, i.e. AAK-2/AMPK and LET-363/mTOR, as well as the aging-related TFs SKN-1/Nrf2 and HSF-1. Lastly, single-nucelotide polymorphisms (SNPs) in Tcf3/E2A are associated with exceptional longevity in humans. Together, these findings demonstrate that HLH-2 regulates energy metabolism via arginine kinases and thereby affects the aging phenotype dependent on ROS-signaling and established canonical effectors.
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spelling pubmed-70967512020-03-31 Redox-mediated regulation of aging and healthspan by an evolutionarily conserved transcription factor HLH-2/Tcf3/E2A Rozanov, Leonid Ravichandran, Meenakshi Grigolon, Giovanna Zanellati, Maria Clara Mansfeld, Johannes Zarse, Kim Barzilai, Nir Atzmon, Gil Fischer, Fabian Ristow, Michael Redox Biol Research Paper Physiological aging is a complex process, influenced by a plethora of genetic and environmental factors. While being far from fully understood, a number of common aging hallmarks have been elucidated in recent years. Among these, transcriptomic alterations are hypothesized to represent a crucial early manifestation of aging. Accordingly, several transcription factors (TFs) have previously been identified as important modulators of lifespan in evolutionarily distant model organisms. Based on a set of TFs conserved between nematodes, zebrafish, mice, and humans, we here perform a RNA interference (RNAi) screen in C. elegans to discover evolutionarily conserved TFs impacting aging. We identify a basic helix-loop-helix TF, named HLH-2 in nematodes (Tcf3/E2A in mammals), to exert a pronounced lifespan-extending effect in C. elegans upon impairment. We further show that its impairment impacts cellular energy metabolism, increases parameters of healthy aging, and extends nematodal lifespan in a ROS-dependent manner. We then identify arginine kinases, orthologues of mammalian creatine kinases, as a target of HLH-2 transcriptional regulation, serving to mediate the healthspan-promoting effects observed upon impairment of hlh-2 expression. Consistently, HLH-2 is shown to epistatically interact with core components of known lifespan-regulating pathways, i.e. AAK-2/AMPK and LET-363/mTOR, as well as the aging-related TFs SKN-1/Nrf2 and HSF-1. Lastly, single-nucelotide polymorphisms (SNPs) in Tcf3/E2A are associated with exceptional longevity in humans. Together, these findings demonstrate that HLH-2 regulates energy metabolism via arginine kinases and thereby affects the aging phenotype dependent on ROS-signaling and established canonical effectors. Elsevier 2020-02-04 /pmc/articles/PMC7096751/ /pubmed/32203922 http://dx.doi.org/10.1016/j.redox.2020.101448 Text en © 2020 The Authors http://creativecommons.org/licenses/by-nc-nd/4.0/ This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Research Paper
Rozanov, Leonid
Ravichandran, Meenakshi
Grigolon, Giovanna
Zanellati, Maria Clara
Mansfeld, Johannes
Zarse, Kim
Barzilai, Nir
Atzmon, Gil
Fischer, Fabian
Ristow, Michael
Redox-mediated regulation of aging and healthspan by an evolutionarily conserved transcription factor HLH-2/Tcf3/E2A
title Redox-mediated regulation of aging and healthspan by an evolutionarily conserved transcription factor HLH-2/Tcf3/E2A
title_full Redox-mediated regulation of aging and healthspan by an evolutionarily conserved transcription factor HLH-2/Tcf3/E2A
title_fullStr Redox-mediated regulation of aging and healthspan by an evolutionarily conserved transcription factor HLH-2/Tcf3/E2A
title_full_unstemmed Redox-mediated regulation of aging and healthspan by an evolutionarily conserved transcription factor HLH-2/Tcf3/E2A
title_short Redox-mediated regulation of aging and healthspan by an evolutionarily conserved transcription factor HLH-2/Tcf3/E2A
title_sort redox-mediated regulation of aging and healthspan by an evolutionarily conserved transcription factor hlh-2/tcf3/e2a
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7096751/
https://www.ncbi.nlm.nih.gov/pubmed/32203922
http://dx.doi.org/10.1016/j.redox.2020.101448
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