Open access · CC-BY
via OpenAlex
Proteotoxic Stress Induces Phosphorylation of p62/SQSTM1 by ULK1 to Regulate Selective Autophagic Clearance of Protein Aggregates
Junghyun Lim, M. Lenard Lachenmayer, Shuai Wu, Wenchao Liu, Mondira Kundu, Rong Wang, Masaaki Komatsu, Young J. Oh, Yanxiang Zhao, Zhenyu Yue
PLoS Genetics · 2015 · ▲ 318 citations
Abstract
Disruption of proteostasis(definition), or protein homeostasis, is often associated with aberrant accumulation of misfolded proteins or protein aggregates. Autophagy(definition) offers protection to cells by removing toxic protein aggregates and injured organelles in response to proteotoxic stress. However, the exact mechanism whereby autophagy recognizes and degrades misfolded or aggregated proteins has yet to be elucidated. Mounting evidence demonstrates the selectivity of autophagy, which is mediated through autophagy receptor proteins (e.g. p62/SQSTM1) linking autophagy cargos and autophagosomes. Here we report that proteotoxic stress imposed by the proteasome inhibition or expression of polyglutamine expanded huntingtin (polyQ-Htt) induces p62 phosphorylation at its ubiquitin-association (UBA) domain that regulates its binding to ubiquitinated proteins. We find that autophagy-related kinase ULK1 phosphorylates p62 at a novel phosphorylation site S409 in UBA domain. Interestingly, phosphorylation of p62 by ULK1 does not occur upon nutrient starvation, in spite of its role in canonical autophagy signaling. ULK1 also phosphorylates S405, while S409 phosphorylation critically regulates S405 phosphorylation. We find that S409 phosphorylation destabilizes the UBA dimer interface, and increases binding affinity of p62 to ubiquitin. Furthermore, lack of S409 phosphorylation causes accumulation of p62, aberrant localization of autophagy proteins and inhibition of the clearance of ubiquitinated proteins or polyQ-Htt. Therefore, our data provide mechanistic insights into the regulation of selective autophagy by ULK1 and p62 upon proteotoxic stress. Our study suggests a potential novel drug target in developing autophagy-based therapeutics for the treatment of proteinopathies including Huntington's disease.
◌ CITATION ONLY
Full text is not openly licensed for redistribution here. Read it at the source:
Provenance
- Source
- OpenAlex
- DOI
- 10.1371/journal.pgen.1004987
- Canonical
- link ↗
- Fetched
- 2026-06-09 MST
Cite this
APA
Lim, J., Lachenmayer, M.L., Wu, S., Liu, W., Kundu, M., Wang, R., Komatsu, M., Oh, Y.J., Zhao, Y., & Yue, Z. (2015). Proteotoxic Stress Induces Phosphorylation of p62/SQSTM1 by ULK1 to Regulate Selective Autophagic Clearance of Protein Aggregates. <em>PLoS Genetics</em>. https://doi.org/10.1371/journal.pgen.1004987
Vancouver
Lim J, Lachenmayer ML, Wu S, Liu W, Kundu M, Wang R, et al. Proteotoxic Stress Induces Phosphorylation of p62/SQSTM1 by ULK1 to Regulate Selective Autophagic Clearance of Protein Aggregates. PLoS Genetics. 2015. doi:10.1371/journal.pgen.1004987.
BibTeX
@article{junghyun2015Proteo,
title = {Proteotoxic Stress Induces Phosphorylation of p62/SQSTM1 by ULK1 to Regulate Selective Autophagic Clearance of Protein Aggregates},
author = {Junghyun Lim and M. Lenard Lachenmayer and Shuai Wu and Wenchao Liu and Mondira Kundu and Rong Wang and Masaaki Komatsu and Young J. Oh and Yanxiang Zhao and Zhenyu Yue},
journal = {PLoS Genetics},
year = {2015},
doi = {10.1371/journal.pgen.1004987},
}
Research neighborhood
References, citing works, and semantically nearest findings. Click a node to open it.
Related findings
biorxiv 2024
Preprint · CC-BY
The cryo-EM structure of ASK1 reveals an asymmetric architecture allosterically modulated by TRX1
Frontiers in Physiology 2021
Open access · CC-BY
Aging, Immunity, and COVID-19: How Age Influences the Host Immune Response to Coronavirus Infections?
Frontiers in Neuroscience 2019
Open access · CC-BY
Dysfunction of Cellular Proteostasis in Parkinson’s Disease
Nature Communications 2019
Open access · CC-BY
Requirement for p62 acetylation in the aggregation of ubiquitylated proteins under nutrient stress
Cell Death and Disease 2013
Open access · CC-BY
Saikosaponin-d, a novel SERCA inhibitor, induces autophagic cell death in apoptosis-defective cells
EMBO Reports 2016
Open access · OA