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生理性 CRAC 通道的激活和孔道特性需要 STIM1 与所有六个 Orai1 亚基结合。

Physiological CRAC channel activation and pore properties require STIM1 binding to all six Orai1 subunits.

机构信息

Department of Molecular and Cellular Physiology, Stanford University School of Medicine, Stanford, CA.

Department of Molecular and Cellular Physiology, Stanford University School of Medicine, Stanford, CA

出版信息

J Gen Physiol. 2018 Oct 1;150(10):1373-1385. doi: 10.1085/jgp.201711985. Epub 2018 Aug 17.

Abstract

The binding of STIM1 to Orai1 controls the opening of store-operated CRAC channels as well as their extremely high Ca selectivity. Although STIM1 dimers are known to bind directly to the cytosolic C termini of the six Orai1 subunits (SUs) that form the channel hexamer, the dependence of channel activation and selectivity on the number of occupied binding sites is not well understood. Here we address these questions using dimeric and hexameric Orai1 concatemers in which L273D mutations were introduced to inhibit STIM1 binding to specific Orai1 SUs. By measuring FRET between fluorescently labeled STIM1 and Orai1, we find that homomeric L273D mutant channels fail to bind STIM1 appreciably; however, the L273D SU does bind STIM1 and contribute to channel activation when located adjacent to a WT SU. These results suggest that STIM1 dimers can interact with pairs of neighboring Orai1 SUs. Surprisingly, a single L273D mutation within the Orai1 hexamer reduces channel open probability by ∼90%, triples the size of the single-channel current, weakens the Ca binding affinity of the selectivity filter, and lowers the selectivity for Na over Cs in the absence of divalent cations. These findings reveal a surprisingly strong functional coupling between STIM1 binding and CRAC channel gating and pore properties. We conclude that under physiological conditions, all six Orai1 SUs of the native CRAC channel bind STIM1 to effectively open the pore and generate the signature properties of extremely low conductance and high ion selectivity.

摘要

STIM1 与 Orai1 的结合控制着储存操作的 CRAC 通道的开放,以及它们极高的 Ca 选择性。虽然已知 STIM1 二聚体直接结合到形成通道六聚体的六个 Orai1 亚基(SU)的胞质 C 末端,但通道激活和选择性对占据结合位点数量的依赖性尚未得到很好的理解。在这里,我们使用二聚体和六聚体 Orai1 串联体来解决这些问题,在串联体中引入了 L273D 突变以抑制 STIM1 与特定 Orai1 SU 的结合。通过测量荧光标记的 STIM1 和 Orai1 之间的 FRET,我们发现同源 L273D 突变体通道不能明显结合 STIM1;然而,L273D SU 确实结合 STIM1 并在与 WT SU 相邻时有助于通道激活。这些结果表明,STIM1 二聚体可以与 Orai1 SU 的对相邻接相互作用。令人惊讶的是,Orai1 六聚体中的单个 L273D 突变将通道开放概率降低了约 90%,将单通道电流增加了三倍,削弱了选择性过滤器的 Ca 结合亲和力,并在不存在二价阳离子的情况下降低了对 Na 相对于 Cs 的选择性。这些发现揭示了 STIM1 结合与 CRAC 通道门控和孔特性之间令人惊讶的强功能耦合。我们得出结论,在生理条件下,天然 CRAC 通道的所有六个 Orai1 SU 都结合 STIM1,有效地打开孔并产生极低电导和高离子选择性的特征性质。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d60f/6168240/3da098c95080/JGP_201711985_Fig1.jpg

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