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<i>Sirt3</i> Deficiency Shortens Life Span and Impairs Cardiac Mitochondrial Function Rescued by <i>Opa1</i> Gene Transfer
Ariela Benigni, Paola Cassis, Sara Conti, Luca Perico, Daniela Corna, Domenico Cerullo, Lorena Zentilin, Carla Zoja, Annalisa Perna, Vincenzo Lionetti, Mauro Giacca, Piera Trionfini, Susanna Tomasoni, Giuseppe Remuzzi
Antioxidants and Redox Signaling · 2019 · ▲ 107 citations
Abstract
Aims: Sirtuins, a family of NAD + -dependent deacetylases, are recognized as nondispensable regulators of aging processes. Sirtuin 3 (SIRT3) is the main mitochondrial deacetylase that maintains mitochondrial bioenergetics, an essential prerequisite for healthy aging. In this study, using Sirt3 knockout ( Sirt3 −/− ) mice, we sought to establish whether Sirt3 deficiency affected life span, an endpoint that has never been tested formally in mammals, and uncover the mechanisms involved in organ damage associated with aging. Results: Sirt3 −/− mice experienced a shorter life span than wild-type mice and severe cardiac damage, characterized by hypertrophy and fibrosis, as they aged. No alterations were found in organs other than the heart. Sirt3 deficiency altered cardiac mitochondrial bioenergetics and caused hyperacetylation of optic atrophy 1 (OPA1), a SIRT3 target. These changes were associated with aberrant alignment of trans-mitochondrial cristae in cardiomyocytes, and cardiac dysfunction. Gene transfer of deacetylated Opa1 restored cristae alignment in Sirt3 −/− mice, ameliorated cardiac reserve capacity, and protected the heart against hypertrophy and fibrosis. The translational relevance of these findings is in the data showing that SIRT3 silencing in human-induced pluripotent stem cell-derived cardiomyocytes led to mitochondrial dysfunction(definition) and altered contractile phenotype, both rescued by Opa1 gene transfer. Innovation: Our findings indicate that future approaches to heart failure could include SIRT3 as a plausible therapeutic target. Conclusion: SIRT3 has a major role in regulating mammalian life span. Sirt3 deficiency leads to cardiac abnormalities, due to defective trans-mitochondrial cristae alignment and impaired mitochondrial bioenergetics. Correcting cardiac OPA1 hyperacetylation through gene transfer diminished heart failure in Sirt3 −/− mice during aging. Antioxid. Redox Signal. 31, 1255–1271.
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- 10.1089/ars.2018.7703
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- 2026-06-01 MST
Cite this
APA
Benigni, A., Cassis, P., Conti, S., Perico, L., Corna, D., Cerullo, D., Zentilin, L., Zoja, C., Perna, A., Lionetti, V., Giacca, M., Trionfini, P., Tomasoni, S., & Remuzzi, G. (2019). <i>Sirt3</i> Deficiency Shortens Life Span and Impairs Cardiac Mitochondrial Function Rescued by <i>Opa1</i> Gene Transfer. <em>Antioxidants and Redox Signaling</em>. https://doi.org/10.1089/ars.2018.7703
Vancouver
Benigni A, Cassis P, Conti S, Perico L, Corna D, Cerullo D, et al. <i>Sirt3</i> Deficiency Shortens Life Span and Impairs Cardiac Mitochondrial Function Rescued by <i>Opa1</i> Gene Transfer. Antioxidants and Redox Signaling. 2019. doi:10.1089/ars.2018.7703.
BibTeX
@article{ariela2019iSirti,
title = {<i>Sirt3</i> Deficiency Shortens Life Span and Impairs Cardiac Mitochondrial Function Rescued by <i>Opa1</i> Gene Transfer},
author = {Ariela Benigni and Paola Cassis and Sara Conti and Luca Perico and Daniela Corna and Domenico Cerullo and Lorena Zentilin and Carla Zoja and Annalisa Perna and Vincenzo Lionetti and Mauro Giacca and Piera Trionfini and Susanna Tomasoni and Giuseppe Remuzzi},
journal = {Antioxidants and Redox Signaling},
year = {2019},
doi = {10.1089/ars.2018.7703},
}
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