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Mitochondrial protein Fus1/Tusc2 in premature aging and age-related pathologies: critical roles of calcium and energy homeostasis

Decreased energy production and increased oxidative stress are considered to be major contributors to aging and aging-associated pathologies. The role of mitochondrial calcium homeostasis has also been highlighted as an important factor affecting different pathological conditions. Here, we present e...

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Autores principales: Uzhachenko, Roman, Boyd, Kelli, Olivares-Villagomez, Danyvid, Zhu, Yueming, Goodwin, J. Shawn, Rana, Tanu, Shanker, Anil, Tan, Winston J.T., Bondar, Tanya, Medzhitov, Ruslan, Ivanova, Alla V.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Impact Journals LLC 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5391223/
https://www.ncbi.nlm.nih.gov/pubmed/28351997
http://dx.doi.org/10.18632/aging.101213
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author Uzhachenko, Roman
Boyd, Kelli
Olivares-Villagomez, Danyvid
Zhu, Yueming
Goodwin, J. Shawn
Rana, Tanu
Shanker, Anil
Tan, Winston J.T.
Bondar, Tanya
Medzhitov, Ruslan
Ivanova, Alla V.
author_facet Uzhachenko, Roman
Boyd, Kelli
Olivares-Villagomez, Danyvid
Zhu, Yueming
Goodwin, J. Shawn
Rana, Tanu
Shanker, Anil
Tan, Winston J.T.
Bondar, Tanya
Medzhitov, Ruslan
Ivanova, Alla V.
author_sort Uzhachenko, Roman
collection PubMed
description Decreased energy production and increased oxidative stress are considered to be major contributors to aging and aging-associated pathologies. The role of mitochondrial calcium homeostasis has also been highlighted as an important factor affecting different pathological conditions. Here, we present evidence that loss of a small mitochondrial protein Fus1 that maintains mitochondrial homeostasis results in premature aging, aging-associated pathologies, and decreased survival. We showed that Fus1KO mice develop multiple early aging signs including lordokyphosis, lack of vigor, inability to accumulate fat, reduced ability to tolerate stress, and premature death. Other prominent pathological changes included low sperm counts, compromised ability of adult stem cells to repopulate tissues, and chronic inflammation. At the molecular level, we demonstrated that mitochondria of Fus1 KO cells have low reserve respiratory capacity (the ability to produce extra energy during sudden energy demanding situations), and show significantly altered dynamics of cellular calcium response. Our recent studies on early hearing and memory loss in Fus1 KO mice combined with the new data presented here suggest that calcium and energy homeostasis controlled by Fus1 may be at the core of its aging-regulating activities. Thus, Fus1 protein and Fus1-dependent pathways and processes may represent new tools and targets for anti-aging strategies.
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spelling pubmed-53912232017-04-20 Mitochondrial protein Fus1/Tusc2 in premature aging and age-related pathologies: critical roles of calcium and energy homeostasis Uzhachenko, Roman Boyd, Kelli Olivares-Villagomez, Danyvid Zhu, Yueming Goodwin, J. Shawn Rana, Tanu Shanker, Anil Tan, Winston J.T. Bondar, Tanya Medzhitov, Ruslan Ivanova, Alla V. Aging (Albany NY) Priority Research Paper Decreased energy production and increased oxidative stress are considered to be major contributors to aging and aging-associated pathologies. The role of mitochondrial calcium homeostasis has also been highlighted as an important factor affecting different pathological conditions. Here, we present evidence that loss of a small mitochondrial protein Fus1 that maintains mitochondrial homeostasis results in premature aging, aging-associated pathologies, and decreased survival. We showed that Fus1KO mice develop multiple early aging signs including lordokyphosis, lack of vigor, inability to accumulate fat, reduced ability to tolerate stress, and premature death. Other prominent pathological changes included low sperm counts, compromised ability of adult stem cells to repopulate tissues, and chronic inflammation. At the molecular level, we demonstrated that mitochondria of Fus1 KO cells have low reserve respiratory capacity (the ability to produce extra energy during sudden energy demanding situations), and show significantly altered dynamics of cellular calcium response. Our recent studies on early hearing and memory loss in Fus1 KO mice combined with the new data presented here suggest that calcium and energy homeostasis controlled by Fus1 may be at the core of its aging-regulating activities. Thus, Fus1 protein and Fus1-dependent pathways and processes may represent new tools and targets for anti-aging strategies. Impact Journals LLC 2017-03-26 /pmc/articles/PMC5391223/ /pubmed/28351997 http://dx.doi.org/10.18632/aging.101213 Text en Copyright: © 2017 Uzhachenko et al. http://creativecommons.org/licenses/by/3.0/ This article is distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/3.0/) (CC-BY), which permits unrestricted use and redistribution provided that the original author and source are credited.
spellingShingle Priority Research Paper
Uzhachenko, Roman
Boyd, Kelli
Olivares-Villagomez, Danyvid
Zhu, Yueming
Goodwin, J. Shawn
Rana, Tanu
Shanker, Anil
Tan, Winston J.T.
Bondar, Tanya
Medzhitov, Ruslan
Ivanova, Alla V.
Mitochondrial protein Fus1/Tusc2 in premature aging and age-related pathologies: critical roles of calcium and energy homeostasis
title Mitochondrial protein Fus1/Tusc2 in premature aging and age-related pathologies: critical roles of calcium and energy homeostasis
title_full Mitochondrial protein Fus1/Tusc2 in premature aging and age-related pathologies: critical roles of calcium and energy homeostasis
title_fullStr Mitochondrial protein Fus1/Tusc2 in premature aging and age-related pathologies: critical roles of calcium and energy homeostasis
title_full_unstemmed Mitochondrial protein Fus1/Tusc2 in premature aging and age-related pathologies: critical roles of calcium and energy homeostasis
title_short Mitochondrial protein Fus1/Tusc2 in premature aging and age-related pathologies: critical roles of calcium and energy homeostasis
title_sort mitochondrial protein fus1/tusc2 in premature aging and age-related pathologies: critical roles of calcium and energy homeostasis
topic Priority Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5391223/
https://www.ncbi.nlm.nih.gov/pubmed/28351997
http://dx.doi.org/10.18632/aging.101213
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