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纳米盘-细胞融合:SNARE蛋白跨膜结构域对融合孔成核及寿命的控制

Nanodisc-cell fusion: control of fusion pore nucleation and lifetimes by SNARE protein transmembrane domains.

作者信息

Wu Zhenyong, Auclair Sarah M, Bello Oscar, Vennekate Wensi, Dudzinski Natasha R, Krishnakumar Shyam S, Karatekin Erdem

机构信息

Department of Cellular and Molecular Physiology, School of Medicine, Yale University, 333 Cedar Street, New Haven, CT, 06520, USA.

Nanobiology Institute, Yale University, 850 West Campus Drive, West Haven, CT, 06516, USA.

出版信息

Sci Rep. 2016 Jun 6;6:27287. doi: 10.1038/srep27287.

Abstract

The initial, nanometer-sized connection between the plasma membrane and a hormone- or neurotransmitter-filled vesicle -the fusion pore- can flicker open and closed repeatedly before dilating or resealing irreversibly. Pore dynamics determine release and vesicle recycling kinetics, but pore properties are poorly known because biochemically defined single-pore assays are lacking. We isolated single flickering pores connecting v-SNARE-reconstituted nanodiscs to cells ectopically expressing cognate, "flipped" t-SNAREs. Conductance through single, voltage-clamped fusion pores directly reported sub-millisecond pore dynamics. Pore currents fluctuated, transiently returned to baseline multiple times, and disappeared ~6 s after initial opening, as if the fusion pore fluctuated in size, flickered, and resealed. We found that interactions between v- and t-SNARE transmembrane domains (TMDs) promote, but are not essential for pore nucleation. Surprisingly, TMD modifications designed to disrupt v- and t-SNARE TMD zippering prolonged pore lifetimes dramatically. We propose that the post-fusion geometry of the proteins contribute to pore stability.

摘要

质膜与充满激素或神经递质的囊泡之间最初形成的纳米级连接——融合孔,在不可逆地扩张或重新封闭之前,会反复闪烁开合。孔动力学决定释放和囊泡循环动力学,但由于缺乏生化定义的单孔检测方法,孔的特性鲜为人知。我们分离出了连接v-SNARE重组纳米盘与异位表达同源“翻转”t-SNARE的细胞的单个闪烁孔。通过单个电压钳制的融合孔的电导直接报告了亚毫秒级的孔动力学。孔电流波动,多次短暂回到基线,并在初始开放后约6秒消失,就好像融合孔的大小在波动、闪烁并重新封闭。我们发现v-SNARE和t-SNARE跨膜结构域(TMD)之间的相互作用促进了孔的形成,但对于孔的成核并非必不可少。令人惊讶的是,旨在破坏v-SNARE和t-SNARE TMD拉链的TMD修饰显著延长了孔的寿命。我们提出,蛋白质的融合后几何结构有助于孔的稳定性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/07e4/4893671/70763c49139c/srep27287-f1.jpg

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