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Chemical genetic screen identifies lithocholic acid as an anti-aging compound that extends yeast chronological life span in a TOR-independent manner, by modulating housekeeping longevity assurance processes

In chronologically aging yeast, longevity can be extended by administering a caloric restriction (CR) diet or some small molecules. These life-extending interventions target the adaptable target of rapamycin (TOR) and cAMP/protein kinase A (cAMP/PKA) signaling pathways that are under the stringent c...

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Autores principales: Goldberg, Alexander A., Richard, Vincent R., Kyryakov, Pavlo, Bourque, Simon D., Beach, Adam, Burstein, Michelle T., Glebov, Anastasia, Koupaki, Olivia, Boukh-Viner, Tatiana, Gregg, Christopher, Juneau, Mylène, English, Ann M., Thomas, David Y., Titorenko, Vladimir I.
Formato: Texto
Lenguaje:English
Publicado: Impact Journals LLC 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2933888/
https://www.ncbi.nlm.nih.gov/pubmed/20622262
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author Goldberg, Alexander A.
Richard, Vincent R.
Kyryakov, Pavlo
Bourque, Simon D.
Beach, Adam
Burstein, Michelle T.
Glebov, Anastasia
Koupaki, Olivia
Boukh-Viner, Tatiana
Gregg, Christopher
Juneau, Mylène
English, Ann M.
Thomas, David Y.
Titorenko, Vladimir I.
author_facet Goldberg, Alexander A.
Richard, Vincent R.
Kyryakov, Pavlo
Bourque, Simon D.
Beach, Adam
Burstein, Michelle T.
Glebov, Anastasia
Koupaki, Olivia
Boukh-Viner, Tatiana
Gregg, Christopher
Juneau, Mylène
English, Ann M.
Thomas, David Y.
Titorenko, Vladimir I.
author_sort Goldberg, Alexander A.
collection PubMed
description In chronologically aging yeast, longevity can be extended by administering a caloric restriction (CR) diet or some small molecules. These life-extending interventions target the adaptable target of rapamycin (TOR) and cAMP/protein kinase A (cAMP/PKA) signaling pathways that are under the stringent control of calorie availability. We designed a chemical genetic screen for small molecules that increase the chronological life span of yeast under CR by targeting lipid metabolism and modulating housekeeping longevity pathways that regulate longevity irrespective of the number of available calories. Our screen identifies lithocholic acid (LCA) as one of such molecules. We reveal two mechanisms underlying the life-extending effect of LCA in chronologically aging yeast. One mechanism operates in a calorie availability-independent fashion and involves the LCA-governed modulation of housekeeping longevity assurance pathways that do not overlap with the adaptable TOR and cAMP/PKA pathways. The other mechanism extends yeast longevity under non-CR conditions and consists in LCA-driven unmasking of the previously unknown anti-aging potential of PKA. We provide evidence that LCA modulates housekeeping longevity assurance pathways by suppressing lipid-induced necrosis, attenuating mitochondrial fragmentation, altering oxidation-reduction processes in mitochondria, enhancing resistance to oxidative and thermal stresses, suppressing mitochondria-controlled apoptosis, and enhancing stability of nuclear and mitochondrial DNA.
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spelling pubmed-29338882010-09-07 Chemical genetic screen identifies lithocholic acid as an anti-aging compound that extends yeast chronological life span in a TOR-independent manner, by modulating housekeeping longevity assurance processes Goldberg, Alexander A. Richard, Vincent R. Kyryakov, Pavlo Bourque, Simon D. Beach, Adam Burstein, Michelle T. Glebov, Anastasia Koupaki, Olivia Boukh-Viner, Tatiana Gregg, Christopher Juneau, Mylène English, Ann M. Thomas, David Y. Titorenko, Vladimir I. Aging (Albany NY) Research Article In chronologically aging yeast, longevity can be extended by administering a caloric restriction (CR) diet or some small molecules. These life-extending interventions target the adaptable target of rapamycin (TOR) and cAMP/protein kinase A (cAMP/PKA) signaling pathways that are under the stringent control of calorie availability. We designed a chemical genetic screen for small molecules that increase the chronological life span of yeast under CR by targeting lipid metabolism and modulating housekeeping longevity pathways that regulate longevity irrespective of the number of available calories. Our screen identifies lithocholic acid (LCA) as one of such molecules. We reveal two mechanisms underlying the life-extending effect of LCA in chronologically aging yeast. One mechanism operates in a calorie availability-independent fashion and involves the LCA-governed modulation of housekeeping longevity assurance pathways that do not overlap with the adaptable TOR and cAMP/PKA pathways. The other mechanism extends yeast longevity under non-CR conditions and consists in LCA-driven unmasking of the previously unknown anti-aging potential of PKA. We provide evidence that LCA modulates housekeeping longevity assurance pathways by suppressing lipid-induced necrosis, attenuating mitochondrial fragmentation, altering oxidation-reduction processes in mitochondria, enhancing resistance to oxidative and thermal stresses, suppressing mitochondria-controlled apoptosis, and enhancing stability of nuclear and mitochondrial DNA. Impact Journals LLC 2010-07-07 /pmc/articles/PMC2933888/ /pubmed/20622262 Text en Copyright: ©2010 Goldberg et al. http://creativecommons.org/licenses/by/2.5/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Goldberg, Alexander A.
Richard, Vincent R.
Kyryakov, Pavlo
Bourque, Simon D.
Beach, Adam
Burstein, Michelle T.
Glebov, Anastasia
Koupaki, Olivia
Boukh-Viner, Tatiana
Gregg, Christopher
Juneau, Mylène
English, Ann M.
Thomas, David Y.
Titorenko, Vladimir I.
Chemical genetic screen identifies lithocholic acid as an anti-aging compound that extends yeast chronological life span in a TOR-independent manner, by modulating housekeeping longevity assurance processes
title Chemical genetic screen identifies lithocholic acid as an anti-aging compound that extends yeast chronological life span in a TOR-independent manner, by modulating housekeeping longevity assurance processes
title_full Chemical genetic screen identifies lithocholic acid as an anti-aging compound that extends yeast chronological life span in a TOR-independent manner, by modulating housekeeping longevity assurance processes
title_fullStr Chemical genetic screen identifies lithocholic acid as an anti-aging compound that extends yeast chronological life span in a TOR-independent manner, by modulating housekeeping longevity assurance processes
title_full_unstemmed Chemical genetic screen identifies lithocholic acid as an anti-aging compound that extends yeast chronological life span in a TOR-independent manner, by modulating housekeeping longevity assurance processes
title_short Chemical genetic screen identifies lithocholic acid as an anti-aging compound that extends yeast chronological life span in a TOR-independent manner, by modulating housekeeping longevity assurance processes
title_sort chemical genetic screen identifies lithocholic acid as an anti-aging compound that extends yeast chronological life span in a tor-independent manner, by modulating housekeeping longevity assurance processes
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2933888/
https://www.ncbi.nlm.nih.gov/pubmed/20622262
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