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Coarse-grain simulations reveal movement of the synaptobrevin C-terminus in response to piconewton forces.粗粒化模拟揭示了突触融合蛋白 C 末端在皮牛顿力作用下的运动。
Biophys J. 2012 Sep 5;103(5):959-69. doi: 10.1016/j.bpj.2012.08.007.
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本文引用的文献

1
The MARTINI Coarse-Grained Force Field: Extension to Proteins.MARTINI 粗粒化力场:在蛋白质中的扩展。
J Chem Theory Comput. 2008 May;4(5):819-34. doi: 10.1021/ct700324x.
2
SNARE proteins: one to fuse and three to keep the nascent fusion pore open.SNARE 蛋白:一个融合,三个保持新生融合孔开放。
Science. 2012 Mar 16;335(6074):1355-9. doi: 10.1126/science.1214984.
3
Two synaptobrevin molecules are sufficient for vesicle fusion in central nervous system synapses.两个突触融合蛋白分子足以介导中枢神经系统突触中的囊泡融合。
Proc Natl Acad Sci U S A. 2011 Aug 23;108(34):14318-23. doi: 10.1073/pnas.1101818108. Epub 2011 Aug 15.
4
Exploring peptide-membrane interactions with coarse-grained MD simulations.用粗粒化 MD 模拟探索肽-膜相互作用。
Biophys J. 2011 Apr 20;100(8):1940-8. doi: 10.1016/j.bpj.2011.02.041.
5
Caught in the act: visualization of SNARE-mediated fusion events in molecular detail.当场被抓:以分子细节可视化 SNARE 介导的融合事件。
Chembiochem. 2011 May 2;12(7):1049-55. doi: 10.1002/cbic.201100020. Epub 2011 Mar 23.
6
Docking and fast fusion of synaptobrevin vesicles depends on the lipid compositions of the vesicle and the acceptor SNARE complex-containing target membrane.突触融合小泡的对接和快速融合依赖于小泡和含有接受体 SNARE 复合物的靶膜的脂质组成。
Biophys J. 2010 Nov 3;99(9):2936-46. doi: 10.1016/j.bpj.2010.09.011.
7
The energetics of transmembrane helix insertion into a lipid bilayer.跨膜螺旋插入脂质双层的能量学。
Biophys J. 2010 Oct 20;99(8):2534-40. doi: 10.1016/j.bpj.2010.08.002.
8
Role of the synaptobrevin C terminus in fusion pore formation.突触融合蛋白 C 端在融合孔形成中的作用。
Proc Natl Acad Sci U S A. 2010 Oct 26;107(43):18463-8. doi: 10.1073/pnas.1006727107. Epub 2010 Oct 11.
9
Fast vesicle fusion in living cells requires at least three SNARE complexes.在活细胞中,快速囊泡融合至少需要三个 SNARE 复合物。
Science. 2010 Oct 22;330(6003):502-5. doi: 10.1126/science.1193134. Epub 2010 Sep 16.
10
SNARE complex zipping as a driving force in the dilation of proteinaceous fusion pores.SNARE 复合体的拉链作用作为蛋白质融合孔扩张的驱动力。
J Membr Biol. 2010 Jun;235(2):89-100. doi: 10.1007/s00232-010-9258-1. Epub 2010 May 30.

粗粒化模拟揭示了突触融合蛋白 C 末端在皮牛顿力作用下的运动。

Coarse-grain simulations reveal movement of the synaptobrevin C-terminus in response to piconewton forces.

机构信息

School of Applied and Engineering Physics, Cornell University, Ithaca, New York, USA.

出版信息

Biophys J. 2012 Sep 5;103(5):959-69. doi: 10.1016/j.bpj.2012.08.007.

DOI:10.1016/j.bpj.2012.08.007
PMID:23009845
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3433613/
Abstract

Fusion of neurosecretory vesicles with the plasma membrane is mediated by SNARE proteins, which transfer a force to the membranes. However, the mechanism by which this force transfer induces fusion pore formation is still unknown. The neuronal vesicular SNARE protein synaptobrevin 2 (syb2) is anchored in the vesicle membrane by a single C-terminal transmembrane (TM) helix. In coarse-grain molecular-dynamics simulations, self-assembly of the membrane occurred with the syb2 TM domain inserted, as expected from experimental data. The free-energy profile for the position of the syb2 membrane anchor in the membrane was determined using umbrella sampling. To predict the free-energy landscapes for a reaction pathway pulling syb2 toward the extravesicular side of the membrane, which is the direction of the force transfer from the SNARE complex, harmonic potentials were applied to the peptide in its unbiased position, pulling it toward new biased equilibrium positions. Application of piconewton forces to the extravesicular end of the TM helix in the simulation detached the synaptobrevin C-terminus from the vesicle's inner-leaflet lipid headgroups and pulled it deeper into the membrane. This C-terminal movement was facilitated and hindered by specific mutations in parallel with experimentally observed facilitation and inhibition of fusion. Direct application of such forces to the intravesicular end of the TM domain resulted in tilting motion of the TM domain through the membrane with an activation energy of ∼70 kJ/mol. The results suggest a mechanism whereby fusion pore formation is induced by movement of the charged syb2 C-terminus within the membrane in response to pulling and tilting forces generated by C-terminal zippering of the SNARE complex.

摘要

神经分泌囊泡与质膜的融合是由 SNARE 蛋白介导的,该蛋白将力传递到膜上。然而,力传递如何诱导融合孔形成的机制仍不清楚。神经元囊泡 SNARE 蛋白突触融合蛋白 2(syb2)通过单个 C 末端跨膜(TM)螺旋锚定在囊泡膜上。在粗粒分子动力学模拟中,预期实验数据,膜的自组装发生在 syb2TM 结构域插入时。使用伞状采样确定 syb2 膜锚在膜中的位置的自由能曲线。为了预测将 syb2 拉向膜的胞外侧(即 SNARE 复合物力传递的方向)的反应途径的自由能景观,对无偏位置的肽应用调和势,将其拉向新的偏置平衡位置。在模拟中,将皮牛顿力施加到 TM 螺旋的胞外端,将突触融合蛋白的 C 末端从囊泡的内叶脂质头部基团上分离,并将其更深地拉入膜中。这种 C 末端运动受到特定突变的促进和阻碍,与融合的实验观察到的促进和抑制平行。直接将这些力施加到 TM 结构域的胞内端,导致 TM 结构域通过膜倾斜运动,其活化能约为 70kJ/mol。结果表明,融合孔形成的机制是通过带电荷的 syb2 C 末端在膜内的运动来诱导的,该运动响应于 SNARE 复合物的 C 末端拉链产生的拉力和倾斜力。