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CRACM3 通过与突触融合蛋白 4 的分子相互作用,以 Ca(2+)非依赖性的方式调节非兴奋型胞吐融合小孔的稳定性。

CRACM3 regulates the stability of non-excitable exocytotic vesicle fusion pores in a Ca(2+)-independent manner via molecular interaction with syntaxin4.

机构信息

Department of Pharmacology, Ehime University Graduate School of Medicine, Shitsugawa, Toon-shi, Ehime 791-0295, Japan.

Department of Bioscience, Integrated Center for Sciences, Ehime University, Shitsukawa, Toon-shi, Ehime, 791-0295, Japan.

出版信息

Sci Rep. 2016 Jun 15;6:28133. doi: 10.1038/srep28133.

Abstract

Ca(2+) release-activated calcium channel 3 (CRACM3) is a unique member of the CRAC family of Ca(2+)-selective channels. In a non-excitable exocytosis model, we found that the extracellular L3 domain and the cytoplasmic C-terminus of CRACM3 interacted in an activity-dependent manner with the N-peptide of syntaxin4, a soluble N-ethylmaleimide-sensitive factor attachment receptor protein. Our biochemical, electrophysiological and single-vesicle studies showed that knockdown of CRACM3 suppressed functional exocytosis by decreasing the open time of the vesicle fusion pore without affecting Ca(2+) influx, the activity-dependent membrane capacitance (Cm) change, and the total number of fusion events. Conversely, overexpressing CRACM3 significantly impaired cell exocytosis independent of Ca(2+), led to an impaired Cm change, decreased the number of fusion events, and prolonged the dwell time of the fusion pore. CRACM3 changes the stability of the vesicle fusion pore in a manner consistent with the altered molecular expression. Our findings imply that CRACM3 plays a greater role in exocytosis than simply acting as a compensatory subunit of a Ca(2+) channel.

摘要

钙释放激活钙通道 3(CRACM3)是钙选择性通道 CRAC 家族的独特成员。在非兴奋的胞吐模型中,我们发现 CRACM3 的细胞外 L3 结构域和细胞质 C 末端以活性依赖的方式与可溶性 N-乙基马来酰亚胺敏感因子附着蛋白受体蛋白 syntaxin4 的 N 肽相互作用。我们的生化、电生理和单个囊泡研究表明,敲低 CRACM3 通过减少囊泡融合孔的开放时间来抑制功能性胞吐作用,而不影响 Ca2+内流、活性依赖性膜电容 (Cm) 变化和融合事件的总数。相反,过表达 CRACM3 显著损害了细胞胞吐作用而不依赖于 Ca2+,导致 Cm 变化受损、融合事件减少,并延长融合孔的停留时间。CRACM3 以与改变的分子表达一致的方式改变囊泡融合孔的稳定性。我们的研究结果表明,CRACM3 在胞吐作用中的作用不仅仅是作为钙通道的补偿亚基。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5bf2/4908399/66b6ff457cb0/srep28133-f1.jpg

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