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本文引用的文献

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All-atom empirical potential for molecular modeling and dynamics studies of proteins.蛋白质分子建模和动力学研究的全原子经验势。
J Phys Chem B. 1998 Apr 30;102(18):3586-616. doi: 10.1021/jp973084f.
2
All-atom models of the membrane-spanning domain of HIV-1 gp41 from metadynamics.基于元动力学的 HIV-1 gp41 跨膜结构域的全原子模型。
Biophys J. 2010 Nov 17;99(10):3438-44. doi: 10.1016/j.bpj.2010.09.054.
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Effects of curvature and composition on α-synuclein binding to lipid vesicles.曲率和组成对α-突触核蛋白与脂质体结合的影响。
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The N-terminus of the intrinsically disordered protein α-synuclein triggers membrane binding and helix folding.α-突触核蛋白无规则卷曲结构的 N 端结构域触发膜结合和螺旋折叠。
Biophys J. 2010 Oct 6;99(7):2116-24. doi: 10.1016/j.bpj.2010.06.035.
5
FCHo proteins are nucleators of clathrin-mediated endocytosis.FCHo 蛋白是网格蛋白介导的胞吞作用的起始因子。
Science. 2010 Jun 4;328(5983):1281-4. doi: 10.1126/science.1188462. Epub 2010 May 6.
6
Roles of amphipathic helices and the bin/amphiphysin/rvs (BAR) domain of endophilin in membrane curvature generation.内收蛋白的两亲性螺旋和 bin/amphiphysin/rvs (BAR) 结构域在膜曲率生成中的作用。
J Biol Chem. 2010 Jun 25;285(26):20164-70. doi: 10.1074/jbc.M110.127811. Epub 2010 Apr 23.
7
Hierarchical coarse-graining strategy for protein-membrane systems to access mesoscopic scales.用于蛋白质-膜系统的层次粗粒化策略以获取介观尺度。
Faraday Discuss. 2010;144:347-57; discussion 445-81. doi: 10.1039/b901996k.
8
Curvature sensing by the epsin N-terminal homology domain measured on cylindrical lipid membrane tethers.通过在圆柱状脂质膜系链上测量的 epsin N 端同源结构域感知曲率。
J Am Chem Soc. 2010 Feb 3;132(4):1200-1. doi: 10.1021/ja907936c.
9
Membrane binding by the endophilin N-BAR domain.内收蛋白 N-BAR 结构域的膜结合。
Biophys J. 2009 Nov 18;97(10):2746-53. doi: 10.1016/j.bpj.2009.08.043.
10
Membrane-bending mechanism of amphiphysin N-BAR domains.两亲性蛋白 N-BAR 结构域的膜弯曲机制。
Biophys J. 2009 Nov 18;97(10):2727-35. doi: 10.1016/j.bpj.2009.08.051.

两亲性螺旋蛋白感知膜曲率的机制。

Mechanism of membrane curvature sensing by amphipathic helix containing proteins.

机构信息

Department of Chemistry, Institute for Biophysical Dynamics, James Franck Institute, University of Chicago, Chicago, Illinois, USA.

出版信息

Biophys J. 2011 Mar 2;100(5):1271-9. doi: 10.1016/j.bpj.2011.01.036.

DOI:10.1016/j.bpj.2011.01.036
PMID:21354400
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3043213/
Abstract

There are several examples of membrane-associated protein domains that target curved membranes. This behavior is believed to have functional significance in a number of essential pathways, such as clathrin-mediated endocytosis, which involve dramatic membrane remodeling and require the recruitment of various cofactors at different stages of the process. This work is motivated in part by recent experiments that demonstrated that the amphipathic N-terminal helix of endophilin (H0) targets curved membranes by binding to hydrophobic lipid bilayer packing defects which increase in number with increasing membrane curvature. Here we use state-of-the-art atomistic simulation to explore the packing defect structure of curved membranes, and the effect of this structure on the folding of H0. We find that not only are packing defects increased in number with increasing membrane curvature, but also that their size distribution depends nontrivially on the curvature, falling off exponentially with a decay constant that depends on the curvature, and crucially that even on highly curved membranes defects large enough to accommodate the hydrophobic face of H0 are never observed. We furthermore find that a percolation model for the defects explains the defect size distribution, which implies that larger defects are formed by coalescence of noninteracting smaller defects. We also use the recently developed metadynamics algorithm to study in detail the effect of such defects on H0 folding. It is found that the comparatively larger defects found on a convex membrane promote H0 folding by several kcal/mol, while the smaller defects found on flat and concave membrane surfaces inhibit folding by kinetically trapping the peptide. Together, these observations suggest H0 folding is a cooperative process in which the folding peptide changes the defect structure relative to an unperturbed membrane.

摘要

有几个膜相关蛋白结构域的例子可以靶向弯曲的膜。这种行为被认为在许多重要的途径中具有功能意义,例如网格蛋白介导的内吞作用,它涉及剧烈的膜重塑,并需要在该过程的不同阶段招募各种辅助因子。这项工作的部分动机是最近的实验表明,内收蛋白(H0)的两亲性 N 端螺旋通过与疏水性脂质双层堆积缺陷结合来靶向弯曲的膜,随着膜曲率的增加,堆积缺陷的数量增加。在这里,我们使用最先进的原子模拟来探索弯曲膜的堆积缺陷结构,以及这种结构对 H0 折叠的影响。我们发现,不仅堆积缺陷的数量随着膜曲率的增加而增加,而且它们的尺寸分布也与曲率有很大关系,随着曲率的增加呈指数衰减,衰减常数取决于曲率,至关重要的是,即使在高度弯曲的膜上,也从未观察到足以容纳 H0 疏水面的缺陷。我们还发现,缺陷的渗流模型解释了缺陷的尺寸分布,这意味着较大的缺陷是由非相互作用的较小缺陷的合并形成的。我们还使用最近开发的元动力学算法来详细研究这些缺陷对 H0 折叠的影响。结果发现,在凸面膜上发现的相对较大的缺陷通过几个千卡/摩尔促进 H0 折叠,而在平面和凹面膜表面上发现的较小缺陷通过动力学捕获肽来抑制折叠。总之,这些观察结果表明 H0 折叠是一个协同过程,其中折叠肽相对于未受干扰的膜改变缺陷结构。