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三元SNARE复合体内部机械相互作用及其拆解动力学的单分子测量:SNAP25与SNAP23的比较

Single molecule measurements of mechanical interactions within ternary SNARE complexes and dynamics of their disassembly: SNAP25 vs. SNAP23.

作者信息

Montana Vedrana, Liu Wei, Mohideen U, Parpura Vladimir

机构信息

Department of Neurobiology, University of Alabama, Birmingham, AL 35294, USA.

出版信息

J Physiol. 2009 May 1;587(Pt 9):1943-60. doi: 10.1113/jphysiol.2009.168575. Epub 2009 Mar 9.

Abstract

Regulated exocytosis is a crucial event for intercellular communication between neurons and astrocytes within the CNS. The soluble N-ethylmaleimide-sensitive fusion protein attachment protein receptor (SNARE) complex, composed of synaptobrevin 2, syntaxin and synaptosome-associated protein of 25 kDa or 23 kDa (SNAP25 or SNAP23), is essential in this process. It was reported that SNAP25 and SNAP23 have distinct roles in exocytotic release, where SNAP25, but not SNAP23, supports an exocytotic burst. It is not clear, however, whether this is due to the intrinsic properties of the ternary SNARE complex, containing either SNAP25 or SNAP23, or perhaps due to the differential association of these proteins with ancillary proteins to the complex. Here, using force spectroscopy, we show from single molecule investigations of the SNARE complex, that SNAP23A created a local interaction at the ionic layer by cuffing syntaxin 1A and synaptobrevin 2, similar to the action of SNAP25B; thus either of the ternary complexes would allow positioning of vesicles at a maximal distance of approximately 13 nm from the plasma membrane. However, the stability of the ternary SNARE complex containing SNAP23A is less than half of that for the complex containing SNAP25B. Thus, differences in the stability of the two different ternary complexes could underlie some of the SNAP25/23 differential ability to control the exocytotic burst.

摘要

调节性胞吐作用是中枢神经系统内神经元与星形胶质细胞之间细胞间通讯的关键事件。可溶性N - 乙基马来酰亚胺敏感融合蛋白附着蛋白受体(SNARE)复合体由突触小泡蛋白2、 syntaxin以及25 kDa或23 kDa的突触体相关蛋白(SNAP25或SNAP23)组成,在此过程中至关重要。据报道,SNAP25和SNAP23在胞吐释放中具有不同作用,其中SNAP25而非SNAP23支持胞吐爆发。然而,尚不清楚这是由于包含SNAP25或SNAP23的三元SNARE复合体的内在特性,还是可能由于这些蛋白质与复合体辅助蛋白的差异结合。在此,我们使用力谱技术,通过对SNARE复合体的单分子研究表明,SNAP23A通过束缚syntaxin 1A和突触小泡蛋白2在离子层产生局部相互作用,类似于SNAP25B的作用;因此,任何一种三元复合体都能使囊泡定位在距质膜最大约13 nm的距离处。然而,包含SNAP23A的三元SNARE复合体的稳定性不到包含SNAP25B的复合体的一半。因此,两种不同三元复合体稳定性的差异可能是SNAP25/23在控制胞吐爆发方面不同能力的部分原因。

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