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bioRxiv · 10.1101/2022.02.02.478826

Molecular mechanics underlying flat-to-round membrane budding in live secretory cells

Abstract

Membrane budding entails forces to transform flat membrane into vesicles essential for cell survival. Accumulated studies have identified coat-proteins (e.g., clathrin) as potential budding factors. However, forces mediating many non-coated membrane buddings remain unclear. By visualizing proteins in mediating endocytic budding in live neuroendocrine cells, performing in vitro protein reconstitution and physical modelling, we discovered how non-coated-membrane budding is mediated: actin filaments and dynamin generate a pulling force transforming flat membrane into {Lambda}-shape; subsequently, dynamin helices surround and constrict {Lambda}-profiles base, transforming {Lambda}- to {Omega}-profile, and then constrict {Omega}-profiles pore, converting {Omega}-profiles to vesicles. These mechanisms control budding speed, vesicle size and number, generating diverse endocytic modes differing in these parameters. Their impact is widespread beyond secretory cells, as the unexpectedly powerful functions of dynamin and actin, previously thought to mediate fission and overcome tension, respectively, may contribute to many dynamin/actin-dependent non- coated-membrane buddings, coated-membrane buddings, and other membrane remodelling processes.

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BibTeXRIS

Shin, W., Zucker, B., Kundu, N., Lee, S. H., Shi, B., Guo, X., Chan, C. Y., Harrison, J. T., Turechek, J. M., Hinshaw, J. E., Kozlov, M., Wu, L.-G.. 2022-02-03. Molecular mechanics underlying flat-to-round membrane budding in live secretory cells. https://doi.org/10.1101/2022.02.02.478826

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