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Modelling membrane reshaping by staged polymerization of ESCRT-III filaments.
Jiang, Xiuyun; Harker-Kirschneck, Lena; Vanhille-Campos, Christian; Pfitzner, Anna-Katharina; Lominadze, Elene; Roux, Aurélien; Baum, Buzz; Saric, Andela.
Affiliation
  • Jiang X; Department of Physics and Astronomy, Institute for the Physics of Living Systems, University College London, London, United Kingdom.
  • Harker-Kirschneck L; Medical Research Council Laboratory for Molecular Cell Biology, University College London, London, United Kingdom.
  • Vanhille-Campos C; Department of Physics and Astronomy, Institute for the Physics of Living Systems, University College London, London, United Kingdom.
  • Pfitzner AK; Medical Research Council Laboratory for Molecular Cell Biology, University College London, London, United Kingdom.
  • Lominadze E; Department of Physics and Astronomy, Institute for the Physics of Living Systems, University College London, London, United Kingdom.
  • Roux A; Medical Research Council Laboratory for Molecular Cell Biology, University College London, London, United Kingdom.
  • Baum B; Institute of Science and Technology Austria, Klosterneuburg, Austria.
  • Saric A; Department of Biochemistry, University of Geneva, Geneva, Switzerland.
PLoS Comput Biol ; 18(10): e1010586, 2022 10.
Article in En | MEDLINE | ID: mdl-36251703
ABSTRACT
ESCRT-III filaments are composite cytoskeletal polymers that can constrict and cut cell membranes from the inside of the membrane neck. Membrane-bound ESCRT-III filaments undergo a series of dramatic composition and geometry changes in the presence of an ATP-consuming Vps4 enzyme, which causes stepwise changes in the membrane morphology. We set out to understand the physical mechanisms involved in translating the changes in ESCRT-III polymer composition into membrane deformation. We have built a coarse-grained model in which ESCRT-III polymers of different geometries and mechanical properties are allowed to copolymerise and bind to a deformable membrane. By modelling ATP-driven stepwise depolymerisation of specific polymers, we identify mechanical regimes in which changes in filament composition trigger the associated membrane transition from a flat to a buckled state, and then to a tubule state that eventually undergoes scission to release a small cargo-loaded vesicle. We then characterise how the location and kinetics of polymer loss affects the extent of membrane deformation and the efficiency of membrane neck scission. Our results identify the near-minimal mechanical conditions for the operation of shape-shifting composite polymers that sever membrane necks.
Subject(s)

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Cytoskeleton / Endosomal Sorting Complexes Required for Transport Language: En Journal: PLoS Comput Biol Journal subject: BIOLOGIA / INFORMATICA MEDICA Year: 2022 Document type: Article Affiliation country: United kingdom

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Cytoskeleton / Endosomal Sorting Complexes Required for Transport Language: En Journal: PLoS Comput Biol Journal subject: BIOLOGIA / INFORMATICA MEDICA Year: 2022 Document type: Article Affiliation country: United kingdom