Multilayered regulation of autophagy by the Atg1 kinase orchestrates spatial and temporal control of autophagosome formation
doi: 10.1016/j.molcel.2021.10.024 , 10.3929/ethz-b-000521405 , 10.25418/crick.18147308.v1 , 10.25418/crick.18147308
pmid: 34798055
pmc: PMC8693860
handle: 20.500.11850/521405
doi: 10.1016/j.molcel.2021.10.024 , 10.3929/ethz-b-000521405 , 10.25418/crick.18147308.v1 , 10.25418/crick.18147308
pmid: 34798055
pmc: PMC8693860
handle: 20.500.11850/521405
Multilayered regulation of autophagy by the Atg1 kinase orchestrates spatial and temporal control of autophagosome formation
Autophagy is a conserved intracellular degradation pathway exerting various cytoprotective and homeostatic functions by using de novo double-membrane vesicle (autophagosome) formation to target a wide range of cytoplasmic material for vacuolar/lysosomal degradation. The Atg1 kinase is one of its key regulators, coordinating a complex signaling program to orchestrate autophagosome formation. Combining in vitro reconstitution and cell-based approaches, we demonstrate that Atg1 is activated by lipidated Atg8 (Atg8-PE), stimulating substrate phosphorylation along the growing autophagosomal membrane. Atg1-dependent phosphorylation of Atg13 triggers Atg1 complex dissociation, enabling rapid turnover of Atg1 complex subunits at the pre-autophagosomal structure (PAS). Moreover, Atg1 recruitment by Atg8-PE self-regulates Atg8-PE levels in the growing autophagosomal membrane by phosphorylating and thus inhibiting the Atg8-specific E2 and E3. Our work uncovers the molecular basis for positive and negative feedback imposed by Atg1 and how opposing phosphorylation and dephosphorylation events underlie the spatiotemporal regulation of autophagy.
Molecular Cell, 81 (24)
ISSN:1097-2765
ISSN:1097-4164
- ETH Zurich Switzerland
- Queen's University Belfast United Kingdom
- Institute of Biochemistry Switzerland
- The Francis Crick Institute United Kingdom
- Institute for Molecular Systems Biology Switzerland
Model organisms, 570, autophagy, Saccharomyces cerevisiae Proteins, Time Factors, 610, Autophagy-Related Proteins, ubiquitin-like proteins, Saccharomyces cerevisiae, Biochemistry & Proteomics, Article, Gene Expression Regulation, Enzymologic, Imaging, Gene Expression Regulation, Fungal, Autophagy, autophagy; signaling; phosphorylation; protein kinases; protein phosphatases; ubiquitin-like proteins; Atg8 lipidation; metabolism, Phosphorylation, Adaptor Proteins, Signal Transducing, protein kinases, phosphorylation, Genome Integrity & Repair, Autophagosomes, Autophagy-Related Protein 8 Family, Cell Biology, Enzyme Activation, Metabolism, Synthetic Biology, protein phosphatases, Microfabrication & Bioengineering, Atg8 lipidation, signaling, Protein Kinases, metabolism, Signal Transduction, Structural Biology & Biophysics
Model organisms, 570, autophagy, Saccharomyces cerevisiae Proteins, Time Factors, 610, Autophagy-Related Proteins, ubiquitin-like proteins, Saccharomyces cerevisiae, Biochemistry & Proteomics, Article, Gene Expression Regulation, Enzymologic, Imaging, Gene Expression Regulation, Fungal, Autophagy, autophagy; signaling; phosphorylation; protein kinases; protein phosphatases; ubiquitin-like proteins; Atg8 lipidation; metabolism, Phosphorylation, Adaptor Proteins, Signal Transducing, protein kinases, phosphorylation, Genome Integrity & Repair, Autophagosomes, Autophagy-Related Protein 8 Family, Cell Biology, Enzyme Activation, Metabolism, Synthetic Biology, protein phosphatases, Microfabrication & Bioengineering, Atg8 lipidation, signaling, Protein Kinases, metabolism, Signal Transduction, Structural Biology & Biophysics
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