Artículo
Reconstitution reveals how myosin-VI self- organises to generate a dynamic mechanism of membrane sculpting
Rogez, Benoit; Würthner, Laeschkir; Petrova, Anastasiia B.; Zierhut, Felix B.; Saczko Brack, Dario; Huergo, María Ana Cristina
; Batters, Christopher; Frey, Erwin; Veigel, Claudia
Fecha de publicación:
07/2019
Editorial:
Springer
Revista:
Nature Communications
ISSN:
2041-1723
Idioma:
Inglés
Tipo de recurso:
Artículo publicado
Clasificación temática:
Resumen
One enigma in biology is the generation, sensing and maintenance of membrane curvature. Curvature-mediating proteins have been shown to induce specific membrane shapes by direct insertion and nanoscopic scaffolding, while the cytoskeletal motors exert forces indirectly through microtubule and actin networks. It remains unclear, whether the manifold direct motorprotein–lipid interactions themselves constitute another fundamental route to remodel the membrane shape. Here we show, combining super-resolution-fluorescence microscopy and membrane-reshaping nanoparticles, that curvature-dependent lipid interactions of myosin-VI on its own, remarkably remodel the membrane geometry into dynamic spatial patterns on the nano- to micrometer scale. We propose a quantitative theoretical model that explains this dynamic membrane sculpting mechanism. The emerging route of motorprotein–lipid interactions reshaping membrane morphology by a mechanism of feedback and instability opens up hitherto unexplored avenues of membrane remodelling and links cytoskeletal motors to early events in the sequence of membrane sculpting in eukaryotic cell biology.
Palabras clave:
MIOSIN VI
,
MEMBRANE SCULPTING
,
SUPER RESOLUTION
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Identificadores
Colecciones
Articulos(INIFTA)
Articulos de INST.DE INV.FISICOQUIMICAS TEORICAS Y APLIC.
Articulos de INST.DE INV.FISICOQUIMICAS TEORICAS Y APLIC.
Citación
Rogez, Benoit ; Würthner, Laeschkir ; Petrova, Anastasiia B. ; Zierhut, Felix B. ; Saczko Brack, Dario ; et al.; Reconstitution reveals how myosin-VI self- organises to generate a dynamic mechanism of membrane sculpting; Springer; Nature Communications; 10; 3305; 7-2019; 1-11
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