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Mitochondrial Reactive Oxygen Species in Lipotoxic Hearts Induce Post-Translational Modifications of AKAP121, DRP1, and OPA1 That Promote Mitochondrial Fission
Kensuke Tsushima, Heiko Bugger, Adam R. Wende, Jamie Soto, Gregory A. Jenson, Austin R. Tor, Rose McGlauflin, Helena Kenny, Yuan Zhang, Rhonda Souvenir, Xiao Xuan Hu, Crystal Sloan, Renata O. Pereira, Vitor A. Lira, Kenneth W. Spitzer
Circulation Research · 2017 · ▲ 322 citations
Abstract
RATIONALE: Cardiac lipotoxicity, characterized by increased uptake, oxidation, and accumulation of lipid intermediates, contributes to cardiac dysfunction in obesity and diabetes mellitus. However, mechanisms linking lipid overload and mitochondrial dysfunction(definition) are incompletely understood. OBJECTIVE: To elucidate the mechanisms for mitochondrial adaptations to lipid overload in postnatal hearts in vivo. METHODS AND RESULTS: Using a transgenic mouse model of cardiac lipotoxicity overexpressing ACSL1 (long-chain acyl-CoA synthetase 1) in cardiomyocytes, we show that modestly increased myocardial fatty acid uptake leads to mitochondrial structural remodeling with significant reduction in minimum diameter. This is associated with increased palmitoyl-carnitine oxidation and increased reactive oxygen species (ROS) generation in isolated mitochondria. Mitochondrial morphological changes and elevated ROS generation are also observed in palmitate-treated neonatal rat ventricular cardiomyocytes. Palmitate exposure to neonatal rat ventricular cardiomyocytes initially activates mitochondrial respiration, coupled with increased mitochondrial polarization and ATP synthesis. However, long-term exposure to palmitate (>8 hours) enhances ROS generation, which is accompanied by loss of the mitochondrial reticulum and a pattern suggesting increased mitochondrial fission. Mechanistically, lipid-induced changes in mitochondrial redox status increased mitochondrial fission by increased ubiquitination of AKAP121 (A-kinase anchor protein 121) leading to reduced phosphorylation of DRP1 (dynamin-related protein 1) at Ser637 and altered proteolytic processing of OPA1 (optic atrophy 1). Scavenging mitochondrial ROS restored mitochondrial morphology in vivo and in vitro. CONCLUSIONS: Our results reveal a molecular mechanism by which lipid overload-induced mitochondrial ROS generation causes mitochondrial dysfunction by inducing post-translational modifications of mitochondrial proteins that regulate mitochondrial dynamics. These findings provide a novel mechanism for mitochondrial dysfunction in lipotoxic cardiomyopathy.
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- 10.1161/circresaha.117.311307
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- 2026-06-10 MST
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APA
Tsushima, K., Bugger, H., Wende, A.R., Soto, J., Jenson, G.A., Tor, A.R., McGlauflin, R., Kenny, H., Zhang, Y., Souvenir, R., Hu, X.X., Sloan, C., Pereira, R.O., Lira, V.A., Spitzer, K.W., Sharp, T.L., Shoghi, K.I., Sparagna, G.C., Rog‐Zielinska, E.A., & Köhl, P. (2017). Mitochondrial Reactive Oxygen Species in Lipotoxic Hearts Induce Post-Translational Modifications of AKAP121, DRP1, and OPA1 That Promote Mitochondrial Fission. <em>Circulation Research</em>. https://doi.org/10.1161/circresaha.117.311307
Vancouver
Tsushima K, Bugger H, Wende AR, Soto J, Jenson GA, Tor AR, et al. Mitochondrial Reactive Oxygen Species in Lipotoxic Hearts Induce Post-Translational Modifications of AKAP121, DRP1, and OPA1 That Promote Mitochondrial Fission. Circulation Research. 2017. doi:10.1161/circresaha.117.311307.
BibTeX
@article{kensuke2017Mitoch,
title = {Mitochondrial Reactive Oxygen Species in Lipotoxic Hearts Induce Post-Translational Modifications of AKAP121, DRP1, and OPA1 That Promote Mitochondrial Fission},
author = {Kensuke Tsushima and Heiko Bugger and Adam R. Wende and Jamie Soto and Gregory A. Jenson and Austin R. Tor and Rose McGlauflin and Helena Kenny and Yuan Zhang and Rhonda Souvenir and Xiao Xuan Hu and Crystal Sloan and Renata O. Pereira and Vitor A. Lira and Kenneth W. Spitzer and Terry L. Sharp and Kooresh I. Shoghi and Genevieve C. Sparagna and Eva A. Rog‐Zielinska and Peter Köhl and Oleh Khalimonchuk and Jean E. Schaffer and E. Dale Abel},
journal = {Circulation Research},
year = {2017},
doi = {10.1161/circresaha.117.311307},
}
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