4.8 Article

Presynaptic autophagy is coupled to the synaptic vesicle cycle via ATG-9

期刊

NEURON
卷 110, 期 5, 页码 824-+

出版社

CELL PRESS
DOI: 10.1016/j.neuron.2021.12.031

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资金

  1. NIH Office of Research Infrastructure Programs [P40 OD010440]
  2. China Scholarship Council-Yale World Scholars Program
  3. Howard Hughes Medical Institute Exceptional Research Opportunities Program (HHMI ExROP)
  4. Yale BioMed Amgen Scholars Program
  5. NIH [NS115974, GM127857, NS109476, NS36251, DA18343, DK45735, R01NS076558, DP1NS111778]
  6. Parkinson Foundation (United States)
  7. Kavli Foundation
  8. Aligning Science Across Parkinson's (ASAP)-000580 through the Michael J. Fox Foundation for Parkinson's Research (MJFF)
  9. National Research Foundation of Korea [2019R1A6A3A03031300]
  10. HHMI Scholar Award
  11. National Research Foundation of Korea [2019R1A6A3A03031300] Funding Source: Korea Institute of Science & Technology Information (KISTI), National Science & Technology Information Service (NTIS)

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This study reveals the regulated key steps of ATG-9 trafficking at presynaptic sites and provides evidence that ATG-9 exo-endocytosis couples autophagosome biogenesis at presynaptic sites with the activity-dependent synaptic vesicle cycle.
Autophagy is a cellular degradation pathway essential for neuronal health and function. Autophagosome biogenesis occurs at synapses, is locally regulated, and increases in response to neuronal activity. The mechanisms that couple autophagosome biogenesis to synaptic activity remain unknown. In this study, we determine that trafficking of ATG-9, the only transmembrane protein in the core autophagy pathway, links the synaptic vesicle cycle with autophagy. ATG-9-positive vesicles in C. elegans are generated from the trans-Golgi network via AP-3-dependent budding and delivered to presynaptic sites. At presynaptic sites, ATG-9 undergoes exoendocytosis in an activity-dependent manner. Mutations that disrupt endocytosis, including a lesion in synaptojanin 1 associated with Parkinson's disease, result in abnormal ATG-9 accumulation at clathrin-rich synaptic foci and defects in activity-induced presynaptic autophagy. Our findings uncover regulated key steps of ATG-9 trafficking at presynaptic sites and provide evidence that ATG-9 exo-endocytosis couples autophagosome biogenesis at presynaptic sites with the activity-dependent synaptic vesicle cycle.

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