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ER–plasma membrane contact sites contribute to autophagosome biogenesis by regulation of local PI3P synthesis
Authors:Anna Chiara Nascimbeni  Francesca Giordano  Nicolas Dupont  Daniel Grasso  Maria I Vaccaro  Patrice Codogno  Etienne Morel
Affiliation:1. Institut Necker‐Enfants Malades (INEM), INSERM U1151‐CNRS UMR 8253, Paris, France;2. Université Paris Descartes‐Sorbonne Paris Cité, Paris, France;3. Institut Jacques Monod, CNRS UMR 7592, Paris, France;4. Université Paris Diderot‐Sorbonne Paris Cité, Paris, France;5. Department of Pathophysiology, Institute of Biochemistry and Molecular Medicine, National Council for Scientific and Technological Research, School of Pharmacy and Biochemistry, University of Buenos Aires, Buenos Aires, Argentina
Abstract:The double‐membrane‐bound autophagosome is formed by the closure of a structure called the phagophore, origin of which is still unclear. The endoplasmic reticulum (ER) is clearly implicated in autophagosome biogenesis due to the presence of the omegasome subdomain positive for DFCP1, a phosphatidyl‐inositol‐3‐phosphate (PI3P) binding protein. Contribution of other membrane sources, like the plasma membrane (PM), is still difficult to integrate in a global picture. Here we show that ER–plasma membrane contact sites are mobilized for autophagosome biogenesis, by direct implication of the tethering extended synaptotagmins (E‐Syts) proteins. Imaging data revealed that early autophagic markers are recruited to E‐Syt‐containing domains during autophagy and that inhibition of E‐Syts expression leads to a reduction in autophagosome biogenesis. Furthermore, we demonstrate that E‐Syts are essential for autophagy‐associated PI3P synthesis at the cortical ER membrane via the recruitment of VMP1, the stabilizing ER partner of the PI3KC3 complex. These results highlight the contribution of ER–plasma membrane tethers to autophagosome biogenesis regulation and support the importance of membrane contact sites in autophagy.
Keywords:autophagosome  contact sites  extended synaptotagmins  organelle biogenesis  PI3P
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