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PGC-1α Integrates Insulin Signaling, Mitochondrial Regulation, and Bioenergetic Function in Skeletal Muscle
Ines Pagel-Langenickel, Jianjun Bao, Joshua J. Joseph, Daniel R. Schwartz, Benjamin S. Mantell, Xiuli Xu, Nalini Raghavachari, Michael N. Sack
Journal of Biological Chemistry · 2008 · ▲ 122 citations
Abstract
The pathophysiology underlying mitochondrial dysfunction(definition) in insulin-resistant skeletal muscle is incompletely characterized. To further delineate this we investigated the interaction between insulin signaling, mitochondrial regulation, and function in C2C12 myotubes and in skeletal muscle. In myotubes elevated insulin and glucose disrupt insulin signaling, mitochondrial biogenesis, and mitochondrial bioenergetics. The insulin-sensitizing thiazolidinedione pioglitazone restores these perturbations in parallel with induction of the mitochondrial biogenesis regulator PGC-1alpha. Overexpression of PGC-1alpha rescues insulin signaling and mitochondrial bioenergetics, and its silencing concordantly disrupts insulin signaling and mitochondrial bioenergetics. In primary skeletal myoblasts pioglitazone also up-regulates PGC-1alpha expression and restores the insulin-resistant mitochondrial bioenergetic profile. In parallel, pioglitazone up-regulates PGC-1alpha in db/db mouse skeletal muscle. Interestingly, the small interfering RNA knockdown of the insulin receptor in C2C12 myotubes down-regulates PGC-1alpha and attenuates mitochondrial bioenergetics. Concordantly, mitochondrial bioenergetics are blunted in insulin receptor knock-out mouse-derived skeletal myoblasts. Taken together these data demonstrate that elevated glucose and insulin impairs and pioglitazone restores skeletal myotube insulin signaling, mitochondrial regulation, and bioenergetics. Pioglitazone functions in part via the induction of PGC-1alpha. Moreover, PGC-1alpha is identified as a bidirectional regulatory link integrating insulin-signaling and mitochondrial homeostasis in skeletal muscle.
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- 10.1074/jbc.m800842200
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- 2026-06-24 MST
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APA
Pagel-Langenickel, I., Bao, J., Joseph, J.J., Schwartz, D.R., Mantell, B.S., Xu, X., Raghavachari, N., & Sack, M.N. (2008). PGC-1α Integrates Insulin Signaling, Mitochondrial Regulation, and Bioenergetic Function in Skeletal Muscle. <em>Journal of Biological Chemistry</em>. https://doi.org/10.1074/jbc.m800842200
Vancouver
Pagel-Langenickel I, Bao J, Joseph JJ, Schwartz DR, Mantell BS, Xu X, et al. PGC-1α Integrates Insulin Signaling, Mitochondrial Regulation, and Bioenergetic Function in Skeletal Muscle. Journal of Biological Chemistry. 2008. doi:10.1074/jbc.m800842200.
BibTeX
@article{ines2008PGCInt,
title = {PGC-1α Integrates Insulin Signaling, Mitochondrial Regulation, and Bioenergetic Function in Skeletal Muscle},
author = {Ines Pagel-Langenickel and Jianjun Bao and Joshua J. Joseph and Daniel R. Schwartz and Benjamin S. Mantell and Xiuli Xu and Nalini Raghavachari and Michael N. Sack},
journal = {Journal of Biological Chemistry},
year = {2008},
doi = {10.1074/jbc.m800842200},
}
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