4.8 Article

Physical Principles of Membrane Shape Regulation by the Glycocalyx

期刊

CELL
卷 177, 期 7, 页码 1757-+

出版社

CELL PRESS
DOI: 10.1016/j.cell.2019.04.017

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资金

  1. National Institute of General Medical Sciences (NIGMS) [2T32GM008267]
  2. Knight Family Foundation Graduate Research Fellowship
  3. Samuel C. Fleming Family Graduate Fellowship
  4. National Science Foundation (NSF) Graduate Research Fellowship
  5. Ford Foundation Predoctoral Fellowship
  6. Stanford Graduate Fellowship
  7. Stanford ChEM-H Chemistry/Biology Interface Predoctoral Training Program
  8. NIGMS [R37GM058867, R35GM118067]
  9. National Cancer Institute (NCI) [R01CA227942]
  10. National Institute of Health (NIH) New Innovator [DP2 GM229133]
  11. NCI [U54 CA210184]
  12. NSF [DMR-1719875, ECCS-1542081]
  13. NIH [S10OD018516]

向作者/读者索取更多资源

Cells bend their plasma membranes into highly curved forms to interact with the local environment, but how shape generation is regulated is not fully resolved. Here, we report a synergy between shape-generating processes in the cell interior and the external organization and composition of the cell-surface glycocalyx.Mucin biopolymers and long-chein polysaccharides within the glycocalyx can generates entropic forces that favor or disfavor the projection of spherical and finger-like extensions from the cell surface. A polymer brush model of the glycocalyx successfully predicts the effects of polymer size and cell-surface density on membrane morphologies. Specific glycocalyx compositions can also induce plasma membrane instabilities to generate more exotic undulating and pearled membrane structures and drive secretion of extracellular vesicles. Together, our results suggest a fundamental role the glycocalyx in regulating curved membrane features that serve in communication between cells and with the extracellular matrix.

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