Theoretical Molecular Biophysics Group, Max-Planck-Institute for Biophysical Chemistry, Göttingen, Germany.
Chembiochem. 2011 May 2;12(7):1049-55. doi: 10.1002/cbic.201100020. Epub 2011 Mar 23.
Neurotransmitter release at the synapse requires fusion of synaptic vesicles with the presynaptic plasma membrane. SNAREs are the core constituents of the protein machinery responsible for this membrane fusion, but the actual fusion mechanism remains unclear. Here, we have simulated neuronal SNARE-mediated membrane fusion in molecular detail. In our simulations, membrane fusion progresses through an inverted micelle fusion intermediate before reaching the hemifused state. We show that at least one single SNARE complex is required for fusion, as has also been confirmed in a recent in vitro single-molecule fluoresence study. Further, the transmembrane regions of the SNAREs were found to play a vital role in the initiation of fusion by causing distortions of the lipid packing of the outer membrane leaflets, and the C termini of the transmembrane regions are associated with the formation of the fusion pores. The inherent mechanical stress in the linker region of the SNARE complex was found to drive both the subsequent formation and expansion of fusion pores. Our simulations also revealed that the presence of homodimerizations between the transmembrane regions leads to the formation of unstable fusion intermediates that are under high curvature stress. We show that multiple SNARE complexes mediate membrane fusion in a cooperative and synchronized process. Finally, we show that after fusion, the zipping of the SNAREs extends into the membrane region, in agreement with the recently resolved X-ray structure of the fully assembled state.
神经递质在突触处的释放需要突触小泡与突触前质膜融合。SNARE 蛋白是负责这种膜融合的核心蛋白机器的组成部分,但实际的融合机制仍不清楚。在这里,我们从分子细节上模拟了神经元 SNARE 介导的膜融合。在我们的模拟中,膜融合通过反胶束融合中间态进行,然后再达到半融合状态。我们表明,融合至少需要一个 SNARE 复合物,这与最近的体外单分子荧光研究也得到了证实。此外,SNARE 跨膜区在外膜小叶的脂质排列中引起扭曲,在融合的启动中起着至关重要的作用,并且跨膜区的 C 末端与融合孔的形成有关。SNARE 复合物连接区的固有机械应力被发现驱动融合孔的后续形成和扩展。我们的模拟还表明,跨膜区之间的同源二聚化导致形成不稳定的融合中间产物,这些产物处于高曲率应力下。我们表明,多个 SNARE 复合物以协作和同步的方式介导膜融合。最后,我们表明融合后,SNARE 的拉链延伸到膜区域,与最近解析的完全组装状态的 X 射线结构一致。