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February 21, 2026Biophysical Journal0 citations

BPS2026 – Visualizing dynamin's role in membrane fission by cryo-EM

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NKNidhi KunduNational Institutes of HealthSNSarah B. NyenhuisNational Institutes of HealthBCBertram CanagarajahUnited States Department of Health and Human Services

Key Points

  • To understand the role of dynamin in membrane fission and its GTPase activity during endocytosis.
  • Utilized cryo-EM to visualize dynamics of dynamin-1 helical assembly with native-like lipids.
  • Captured intermediates from the apo state to the super-constricted state.
  • Analyzed structural arrangements in the Pleckstrin Homology (PH) domain.
  • Identified novel interfacial contacts within dynamin-1 helical assemblies.
  • Revealed critical steps in the endocytic process through dynamin's conformational changes.
  • Advanced image processing techniques led to observations of previously unrecognized structures.

Abstract

Dynamin facilitates endocytosis by severing invaginating vesicles through its GTPase activity. Dynamin-mediated endocytosis involves three steps: helical polymer formation around the necks of invaginating pits, membrane constriction of the necks upon GTP binding, and membrane fission leading to vesicle release via GTP hydrolysis. Using cryo-EM with native-like lipids, we captured intermediates of dynamin-1 helical assembly, revealing a novel interface in the PH domain. The array of structures illuminates potential intermediates in the assembly of the dynamin-1 helical polymer, from the apo state to the super-constricted state. Advancements in image processing reveal a novel interface and loops which have not been observed previously within the landscape of dynamin-1 helical assemblies. In particular, we observe contacts in the Pleckstrin Homology (PH) domains, which help explain dynamin’s mode of interaction during membrane remodeling. This work provides critical mechanistic insights into the molecular processes driving dynamin-mediated membrane fission during endocytosis, elucidating the conformational changes and lipid interactions essential for endocytic vesicle scission. Future studies will further elucidate its fission mechanism and disease relevance.

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Cite This Study

Kundu et al. (2026) studied this question.

synapsesocial.com/papers/69990de85b97ab4c14ac2a14https://doi.org/10.1016/j.bpj.2025.11.1270
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