4.6 Article

Pattern formation by curvature-inducing proteins on spherical membranes

期刊

NEW JOURNAL OF PHYSICS
卷 19, 期 -, 页码 -

出版社

IOP PUBLISHING LTD
DOI: 10.1088/1367-2630/aa983c

关键词

bacterial cell division; membrane elasticity; protein organisation

资金

  1. Human Frontiers Science Program (HFSP) [RGP0061/2013]
  2. Federal Ministry of Education and Research (BMBF, Germany) via the consortium MaxSynBio
  3. National Science Foundation [DMR-1420620]
  4. Penn State MRSEC Center for Nanoscale Science [NSF DMR-1420620]

向作者/读者索取更多资源

Spatial organisation is a hallmark of all living cells, and recreating it in model systems is a necessary step in the creation of synthetic cells. It is therefore of both fundamental and practical interest to better understand the basic mechanisms underlying spatial organisation in cells. In this work, we use a continuum model of membrane and protein dynamics to study the behaviour of curvature-inducing proteins on membranes of spherical shape, such as living cells or lipid vesicles. We show that the interplay between curvature energy, entropic forces, and the geometric constraints on the membrane can result in the formation of patterns of highly-curved/protein-rich and weakly-curved/protein-poor domains on the membrane. The spontaneous formation of such patterns can be triggered either by an increase in the average density of curvature-inducing proteins, or by a relaxation of the geometric constraints on the membrane imposed by the membrane tension or by the tethering of the membrane to a rigid cell wall or cortex. These parameters can also be tuned to select the size and number of the protein-rich domains that arise upon pattern formation. The very general mechanism presented here could be related to protein self-organisation in many biological processes, ranging from (proto)cell division to the formation of membrane rafts.

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