Literature DB >> 27294442

Binding equilibrium and kinetics of membrane-anchored receptors and ligands in cell adhesion: Insights from computational model systems and theory.

Thomas R Weikl1, Jinglei Hu1,2, Guang-Kui Xu1,3, Reinhard Lipowsky1.   

Abstract

The adhesion of cell membranes is mediated by the binding of membrane-anchored receptor and ligand proteins. In this article, we review recent results from simulations and theory that lead to novel insights on how the binding equilibrium and kinetics of these proteins is affected by the membranes and by the membrane anchoring and molecular properties of the proteins. Simulations and theory both indicate that the binding equilibrium constant [Formula: see text] and the on- and off-rate constants of anchored receptors and ligands in their 2-dimensional (2D) membrane environment strongly depend on the membrane roughness from thermally excited shape fluctuations on nanoscales. Recent theory corroborated by simulations provides a general relation between [Formula: see text] and the binding constant [Formula: see text] of soluble variants of the receptors and ligands that lack the membrane anchors and are free to diffuse in 3 dimensions (3D).

Keywords:  binding constant; membrane adhesion; membrane roughness; protein binding

Mesh:

Substances:

Year:  2016        PMID: 27294442      PMCID: PMC5079412          DOI: 10.1080/19336918.2016.1180487

Source DB:  PubMed          Journal:  Cell Adh Migr        ISSN: 1933-6918            Impact factor:   3.405


  102 in total

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Review 8.  Use of surface plasmon resonance to probe the equilibrium and dynamic aspects of interactions between biological macromolecules.

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9.  Theory and simulations of adhesion receptor dimerization on membrane surfaces.

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Review 8.  Biophysics of Cell-Substrate Interactions Under Shear.

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