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Characterization of early autophagy signaling by quantitative phosphoproteomics
Kristoffer Rigbolt, Mostafa Zarei, Adrian Sprenger, Andrea C. Becker, Britta Diedrich, Xun Huang, Sven Eiselein, Anders Riis Kristensen, Christine Gretzmeier, Jens Andersen, Zhike Zi, Jörn Dengjel
Autophagy · 2013 · ▲ 52 citations
Deregulated nutrient-sensing
Altered intercellular communication
Disabled macroautophagy
Rapamycin / mTOR inhibition
Abstract
Under conditions of nutrient shortage autophagy(definition) is the primary cellular mechanism ensuring availability of substrates for continuous biosynthesis. Subjecting cells to starvation or mTOR(definition)-inhibiting drug studied for extending healthspan and lifespan." style="text-decoration:underline dotted; text-underline-offset:2px; cursor:help;">rapamycin(definition) efficiently induces autophagy by inhibiting the MTOR signaling pathway triggering increased autophagic flux. To elucidate the regulation of early signaling events upon autophagy induction, we applied quantitative phosphoproteomics characterizing the temporal phosphorylation dynamics after starvation and rapamycin treatment. We obtained a comprehensive atlas of phosphorylation kinetics within the first 30 min upon induction of autophagy with both treatments affecting widely different cellular processes. The identification of dynamic phosphorylation already after 2 min demonstrates that the earliest events in autophagy signaling occur rapidly after induction. The data was subjected to extensive bioinformatics analysis revealing regulated phosphorylation sites on proteins involved in a wide range of cellular processes and an impact of the treatments on the kinome. To approach the potential function of the identified phosphorylation sites we performed a screen for MAP1LC3-interacting proteins and identified a group of binding partners exhibiting dynamic phosphorylation patterns. The data presented here provide a valuable resource on phosphorylation events underlying early autophagy induction.
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- 10.4161/auto.26864
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- 2026-08-06 MST
Cite this
APA
Rigbolt, K., Zarei, M., Sprenger, A., Becker, A.C., Diedrich, B., Huang, X., Eiselein, S., Kristensen, A.R., Gretzmeier, C., Andersen, J., Zi, Z., & Dengjel, J. (2013). Characterization of early autophagy signaling by quantitative phosphoproteomics. <em>Autophagy</em>. https://doi.org/10.4161/auto.26864
Vancouver
Rigbolt K, Zarei M, Sprenger A, Becker AC, Diedrich B, Huang X, et al. Characterization of early autophagy signaling by quantitative phosphoproteomics. Autophagy. 2013. doi:10.4161/auto.26864.
BibTeX
@article{kristoffer2013Charac,
title = {Characterization of early autophagy signaling by quantitative phosphoproteomics},
author = {Kristoffer Rigbolt and Mostafa Zarei and Adrian Sprenger and Andrea C. Becker and Britta Diedrich and Xun Huang and Sven Eiselein and Anders Riis Kristensen and Christine Gretzmeier and Jens Andersen and Zhike Zi and Jörn Dengjel},
journal = {Autophagy},
year = {2013},
doi = {10.4161/auto.26864},
}
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