4.8 Article

Cryo-EM of the dynamin polymer assembled on lipid membrane

期刊

NATURE
卷 560, 期 7717, 页码 258-+

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NATURE PUBLISHING GROUP
DOI: 10.1038/s41586-018-0378-6

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资金

  1. NIDDK
  2. NHLBI NIH
  3. Simons Foundation [349247]
  4. NYSTAR
  5. NIH National Institute of General Medical Sciences [GM103310]
  6. Agouron Institute [F00316]
  7. NIH [S10 OD019994-01]
  8. NATIONAL HEART, LUNG, AND BLOOD INSTITUTE [ZIAHL006098] Funding Source: NIH RePORTER
  9. NATIONAL INSTITUTE OF DIABETES AND DIGESTIVE AND KIDNEY DISEASES [ZIADK060100] Funding Source: NIH RePORTER
  10. NATIONAL INSTITUTE OF GENERAL MEDICAL SCIENCES [P41GM103310] Funding Source: NIH RePORTER
  11. OFFICE OF THE DIRECTOR, NATIONAL INSTITUTES OF HEALTH [S10OD019994] Funding Source: NIH RePORTER

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Membrane fission is a fundamental process in the regulation and remodelling of cell membranes. Dynamin, a large GTPase, mediates membrane fission by assembling around, constricting and cleaving the necks of budding vesicles(1). Here we report a 3.75 angstrom resolution cryo-electron microscopy structure of the membrane-associated helical polymer of human dynamin-1 in the GMPPCP-bound state. The structure defines the helical symmetry of the dynamin polymer and the positions of its oligomeric interfaces, which were validated by cell-based endocytosis assays. Compared to the lipidfree tetramer form(2), membrane-associated dynamin binds to the lipid bilayer with its pleckstrin homology domain (PHD) and self-assembles across the helical rungs via its guanine nucleotide-binding (GTPase) domain(3). Notably, interaction with the membrane and helical assembly are accommodated by a severely bent bundle signalling element (BSE), which connects the GTPase domain to the rest of the protein. The BSE conformation is asymmetric across the inter-rung GTPase interface, and is unique compared to all known nucleotide-bound states of dynamin. The structure suggests that the BSE bends as a result of forces generated from the GTPase dimer interaction that are transferred across the stalk to the PHD and lipid membrane. Mutations that disrupted the BSE kink impaired endocytosis. We also report a 10.1 angstrom resolution cryo -electron microscopy map of a super-constricted dynamin polymer showing localized conformational changes at the BSE and GTPase domains, induced by GTP hydrolysis, that drive membrane constriction. Together, our results provide a structural basis for the mechanism of action of dynamin on the lipid membrane.

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