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A REDD1/TXNIP pro-oxidant complex regulates ATG4B activity to control stress-induced autophagy and sustain exercise capacity
Shuxi Qiao, Michael J. Dennis, Xiufeng Song, Douangsone D. Vadysirisack, Devika Salunke, Zachary M. Nash, Zhifen Yang, Marc Liesa, Jun Yoshioka, Shu‐ichi Matsuzawa, Orian S. Shirihai, Richard Lee, John C. Reed, Leif W. Ellisen
Nature Communications · 2015 · ▲ 192 citations
Abstract
Macroautophagy (autophagy(definition)) is a critical cellular stress response; however, the signal transduction pathways controlling autophagy induction in response to stress are poorly understood. Here we reveal a new mechanism of autophagy control whose deregulation disrupts mitochondrial integrity and energy homeostasis in vivo. Stress conditions including hypoxia and exercise induce reactive oxygen species (ROS) through upregulation of a protein complex involving REDD1, an mTORC1 inhibitor and the pro-oxidant protein TXNIP. Decreased ROS in cells and tissues lacking either REDD1 or TXNIP increases catalytic activity of the redox-sensitive ATG4B cysteine endopeptidase, leading to enhanced LC3B delipidation and failed autophagy. Conversely, REDD1/TXNIP complex expression is sufficient to induce ROS, suppress ATG4B activity and activate autophagy. In Redd1(-/-) mice, deregulated ATG4B activity and disabled autophagic flux cause accumulation of defective mitochondria, leading to impaired oxidative phosphorylation, muscle ATP depletion and poor exercise capacity. Thus, ROS regulation through REDD1/TXNIP is physiological rheostat controlling stress-induced autophagy.
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- 10.1038/ncomms8014
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APA
Qiao, S., Dennis, M.J., Song, X., Vadysirisack, D.D., Salunke, D., Nash, Z.M., Yang, Z., Liesa, M., Yoshioka, J., Matsuzawa, S., Shirihai, O.S., Lee, R., Reed, J.C., & Ellisen, L.W. (2015). A REDD1/TXNIP pro-oxidant complex regulates ATG4B activity to control stress-induced autophagy and sustain exercise capacity. <em>Nature Communications</em>. https://doi.org/10.1038/ncomms8014
Vancouver
Qiao S, Dennis MJ, Song X, Vadysirisack DD, Salunke D, Nash ZM, et al. A REDD1/TXNIP pro-oxidant complex regulates ATG4B activity to control stress-induced autophagy and sustain exercise capacity. Nature Communications. 2015. doi:10.1038/ncomms8014.
BibTeX
@article{shuxi2015AREDDT,
title = {A REDD1/TXNIP pro-oxidant complex regulates ATG4B activity to control stress-induced autophagy and sustain exercise capacity},
author = {Shuxi Qiao and Michael J. Dennis and Xiufeng Song and Douangsone D. Vadysirisack and Devika Salunke and Zachary M. Nash and Zhifen Yang and Marc Liesa and Jun Yoshioka and Shu‐ichi Matsuzawa and Orian S. Shirihai and Richard Lee and John C. Reed and Leif W. Ellisen},
journal = {Nature Communications},
year = {2015},
doi = {10.1038/ncomms8014},
}
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