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肌动蛋白组装产生足够的力用于酵母内吞作用。

Actin assembly produces sufficient forces for endocytosis in yeast.

机构信息

Richard D. Berlin Center for Cell Analysis and Modeling, Department of Cell Biology, University of Connecticut Health Center, Farmington, CT 06030.

Departments of Molecular Biophysics and Biochemistry and of Cell Biology.

出版信息

Mol Biol Cell. 2019 Jul 22;30(16):2014-2024. doi: 10.1091/mbc.E19-01-0059. Epub 2019 Jun 26.

Abstract

We formulated a spatially resolved model to estimate forces exerted by a polymerizing actin meshwork on an invagination of the plasma membrane during endocytosis in yeast cells. The model, which approximates the actin meshwork as a visco-active gel exerting forces on a rigid spherocylinder representing the endocytic invagination, is tightly constrained by experimental data. Simulations of the model produce forces that can overcome resistance of turgor pressure in yeast cells. Strong forces emerge due to the high density of polymerized actin in the vicinity of the invagination and because of entanglement of the meshwork due to its dendritic structure and cross-linking. The model predicts forces orthogonal to the invagination that are consistent with formation of a flask shape, which would diminish the net force due to turgor pressure. Simulations of the model with either two rings of nucleation-promoting factors (NPFs) as in fission yeast or a single ring of NPFs as in budding yeast produce enough force to elongate the invagination against the turgor pressure.

摘要

我们制定了一个空间分辨模型来估计在酵母细胞内吞过程中聚合肌动蛋白网格对质膜内陷施加的力。该模型将肌动蛋白网格近似为一个粘性凝胶,对代表内陷的刚性球柱施加力,该模型受到实验数据的严格约束。模型的模拟产生的力可以克服酵母细胞中膨压阻力。由于内陷附近聚合肌动蛋白的高密度以及由于其树突状结构和交联导致的网格缠结,产生了强大的力。该模型预测了与内陷正交的力,这与形成瓶状形状一致,这将减小由于膨压引起的净力。用有丝分裂酵母中的两个核促进因子(NPF)环或出芽酵母中的单个 NPF 环的模型进行模拟可以产生足够的力来抵抗膨压使内陷伸长。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/afd1/6727779/ad90fe0383db/mbc-30-2014-g001.jpg

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