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Membrane protein mobility depends on the length of extra-membrane domains and on the protein concentration.

作者信息

Guigas Gernot, Weiss Matthias

机构信息

Experimental Physics I, University of Bayreuth, 95440 Bayreuth, Germany.

出版信息

Soft Matter. 2015 Jan 7;11(1):33-7. doi: 10.1039/c4sm01846j.

DOI:10.1039/c4sm01846j
PMID:25407767
Abstract

Diffusion of membrane proteins is not only determined by the membrane anchor friction but also by the overall concentration of proteins and the length of their extra-membrane domains. We have studied the influence of the latter two cues by mesoscopic simulations. As a result, we have found that the total friction of membrane proteins, γ, increases approximately linearly with the length of the extra-membrane domain, L, whereas a slightly nonlinear dependence on the total protein concentration, ϕ was observed. We provide an educated guess for the functional form of γ(L, ϕ) and the associated diffusion coefficient. This expression not only matches our simulation data but it is also in favorable agreement with previously published experimental data. Our findings indicate that diffusion coefficients of membrane proteins are not solely determined by the friction of membrane anchors but also extra-membrane domains and the crowdedness of the membrane need to be considered to obtain a comprehensive view of protein diffusion on cellular membranes.

摘要

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