Insulin-Like Growth Factor I Prevents Cellular Aging via Activation of Mitophagy

Mitochondrial dysfunction is a hallmark of cellular aging. Mitophagy is a critical mitochondrial quality control mechanism that removes dysfunctional mitochondria and contributes to cell survival. Insulin-like growth factor 1 (IGF-1) promotes survival of smooth muscle cells (SMCs), but its potential...

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Main Authors: Xuwei Hou, Zhaohui Li, Yusuke Higashi, Patrice Delafontaine, Sergiy Sukhanov
Format: Article
Language:English
Published: Hindawi Limited 2020-01-01
Series:Journal of Aging Research
Online Access:http://dx.doi.org/10.1155/2020/4939310
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spelling doaj-c1d1a32b4b9c4b5fa6681e35c39a39132020-11-25T03:18:59ZengHindawi LimitedJournal of Aging Research2090-22042090-22122020-01-01202010.1155/2020/49393104939310Insulin-Like Growth Factor I Prevents Cellular Aging via Activation of MitophagyXuwei Hou0Zhaohui Li1Yusuke Higashi2Patrice Delafontaine3Sergiy Sukhanov4Department of Medicine, School of Medicine, University of Missouri-Columbia, Columbia 65201, MO, USADepartment of Medicine, School of Medicine, University of Missouri-Columbia, Columbia 65201, MO, USAHeart and Vascular Institute, Tulane University Health Sciences Center, New Orleans 70112, LA, USAHeart and Vascular Institute, Tulane University Health Sciences Center, New Orleans 70112, LA, USAHeart and Vascular Institute, Tulane University Health Sciences Center, New Orleans 70112, LA, USAMitochondrial dysfunction is a hallmark of cellular aging. Mitophagy is a critical mitochondrial quality control mechanism that removes dysfunctional mitochondria and contributes to cell survival. Insulin-like growth factor 1 (IGF-1) promotes survival of smooth muscle cells (SMCs), but its potential effect on cellular aging is unknown yet. We found that IGF-1 decreased cell senescence, prevented DNA telomere shortening, increased mitochondrial membrane potential, activated cytochrome C oxidase, and reduced mitochondrial DNA damage in long-term cultured (aged) aortic SMC, suggesting an antiaging effect. IGF-1 increased mitophagy in aged cells, and this was associated with decreased expression of cyclin-dependent kinase inhibitors p16 and p21 and elevated levels of Nrf2 and Sirt3, regulators of mitophagy and mitochondrial biogenesis. SiRNA-induced inhibition of either Nrf2 or Sirt3 blocked IGF-1-induced upregulation of mitophagy, suggesting that the Nrf2/Sirt3 pathway was required for IGF-1’s effect on mitophagy. PINK1 is a master regulator of mitophagy. PINK1 silencing suppressed mitophagy and inhibited IGF-1-induced antiaging effects in aged SMC, consistent with an essential role of mitophagy in IGF-1’s effect on cellular aging. Thus, IGF-1 inhibited cellular aging via Nrf2/Sirt3-dependent activation of mitophagy. Our data suggest that activation of IGF-1 signaling is a novel potential strategy to activate mitophagy and slow cellular aging.http://dx.doi.org/10.1155/2020/4939310
collection DOAJ
language English
format Article
sources DOAJ
author Xuwei Hou
Zhaohui Li
Yusuke Higashi
Patrice Delafontaine
Sergiy Sukhanov
spellingShingle Xuwei Hou
Zhaohui Li
Yusuke Higashi
Patrice Delafontaine
Sergiy Sukhanov
Insulin-Like Growth Factor I Prevents Cellular Aging via Activation of Mitophagy
Journal of Aging Research
author_facet Xuwei Hou
Zhaohui Li
Yusuke Higashi
Patrice Delafontaine
Sergiy Sukhanov
author_sort Xuwei Hou
title Insulin-Like Growth Factor I Prevents Cellular Aging via Activation of Mitophagy
title_short Insulin-Like Growth Factor I Prevents Cellular Aging via Activation of Mitophagy
title_full Insulin-Like Growth Factor I Prevents Cellular Aging via Activation of Mitophagy
title_fullStr Insulin-Like Growth Factor I Prevents Cellular Aging via Activation of Mitophagy
title_full_unstemmed Insulin-Like Growth Factor I Prevents Cellular Aging via Activation of Mitophagy
title_sort insulin-like growth factor i prevents cellular aging via activation of mitophagy
publisher Hindawi Limited
series Journal of Aging Research
issn 2090-2204
2090-2212
publishDate 2020-01-01
description Mitochondrial dysfunction is a hallmark of cellular aging. Mitophagy is a critical mitochondrial quality control mechanism that removes dysfunctional mitochondria and contributes to cell survival. Insulin-like growth factor 1 (IGF-1) promotes survival of smooth muscle cells (SMCs), but its potential effect on cellular aging is unknown yet. We found that IGF-1 decreased cell senescence, prevented DNA telomere shortening, increased mitochondrial membrane potential, activated cytochrome C oxidase, and reduced mitochondrial DNA damage in long-term cultured (aged) aortic SMC, suggesting an antiaging effect. IGF-1 increased mitophagy in aged cells, and this was associated with decreased expression of cyclin-dependent kinase inhibitors p16 and p21 and elevated levels of Nrf2 and Sirt3, regulators of mitophagy and mitochondrial biogenesis. SiRNA-induced inhibition of either Nrf2 or Sirt3 blocked IGF-1-induced upregulation of mitophagy, suggesting that the Nrf2/Sirt3 pathway was required for IGF-1’s effect on mitophagy. PINK1 is a master regulator of mitophagy. PINK1 silencing suppressed mitophagy and inhibited IGF-1-induced antiaging effects in aged SMC, consistent with an essential role of mitophagy in IGF-1’s effect on cellular aging. Thus, IGF-1 inhibited cellular aging via Nrf2/Sirt3-dependent activation of mitophagy. Our data suggest that activation of IGF-1 signaling is a novel potential strategy to activate mitophagy and slow cellular aging.
url http://dx.doi.org/10.1155/2020/4939310
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