Dynamin regulates the dynamics and mechanical strength of the actin cytoskeleton as a multifilament actin-bundling protein

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作者
Ruihui Zhang
Donghoon M. Lee
John R. Jimah
Nathalie Gerassimov
Changsong Yang
Sangjoon Kim
Delgermaa Luvsanjav
Jonathan Winkelman
Marcel Mettlen
Michael E. Abrams
Raghav Kalia
Peter Keene
Pratima Pandey
Benjamin Ravaux
Ji Hoon Kim
Jonathon A. Ditlev
Guofeng Zhang
Michael K. Rosen
Adam Frost
Neal M. Alto
Margaret Gardel
Sandra L. Schmid
Tatyana M. Svitkina
Jenny E. Hinshaw
Elizabeth H. Chen
机构
[1] UT Southwestern Medical Center,Department of Molecular Biology
[2] NIH,Laboratory of Cell and Molecular Biology, National Institute of Diabetes and Digestive and Kidney Diseases
[3] Johns Hopkins University School of Medicine,Department of Molecular Biology and Genetics
[4] University of Pennsylvania,Department of Biology
[5] University of Chicago,Department of Physics and Institute for Biophysical Dynamics
[6] UT Southwestern Medical Center,Department of Cell Biology
[7] UT Southwestern Medical Center,Department of Microbiology
[8] University of California,Department of Physiology
[9] San Francisco,Department of Biophysics and Howard Hughes Medical Institute
[10] UT Southwestern Medical Center,Trans
[11] National Institute of Biomedical Imaging and Bioengineering,NIH Shared Resource on Biomedical Engineering and Physical Science
[12] University of California,Department of Biochemistry and Biophysics
[13] San Francisco,undefined
来源
Nature Cell Biology | 2020年 / 22卷
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摘要
The dynamin GTPase is known to bundle actin filaments, but the underlying molecular mechanism and physiological relevance remain unclear. Our genetic analyses revealed a function of dynamin in propelling invasive membrane protrusions during myoblast fusion in vivo. Using biochemistry, total internal reflection fluorescence microscopy, electron microscopy and cryo-electron tomography, we show that dynamin bundles actin while forming a helical structure. At its full capacity, each dynamin helix captures 12–16 actin filaments on the outer rim of the helix. GTP hydrolysis by dynamin triggers disassembly of fully assembled dynamin helices, releasing free dynamin dimers/tetramers and facilitating Arp2/3-mediated branched actin polymerization. The assembly/disassembly cycles of dynamin promote continuous actin bundling to generate mechanically stiff actin super-bundles. Super-resolution and immunogold platinum replica electron microscopy revealed dynamin along actin bundles at the fusogenic synapse. These findings implicate dynamin as a unique multifilament actin-bundling protein that regulates the dynamics and mechanical strength of the actin cytoskeletal network.
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页码:674 / 688
页数:14
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