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Structural and mechanistic insights into STIM1-mediated initiation of store-operated calcium entry

机译:对STIM1介导的商店操作性钙进入的起始的结构和力学见解

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摘要

Stromal interaction molecule-1 (STIM1) activates store-operated Ca2+ entry (SOCE) in response to diminished luminal Ca2+ levels. Here, we present the atomic structure of the Ca2+-sensing region of STIM1 consisting of the EF-hand and sterile a motif (SAM) domains (EF-SAM). The canonical EF-hand is paired with a previously unidentified EF-hand. Together, the EF-hand pair mediates mutually indispensable hydrophobic interactions between the EF-hand and SAM domains. Structurally critical mutations in the canonical EF-hand, "hidden'' EF-hand, or SAM domain disrupt Ca2+ sensitivity in oligomerization via destabilization of the entire EF-SAM entity. In mammalian cells, EF-SAM destabilization mutations within full-length STIM1 induce punctae formation and activate SOCE independent of luminal Ca2+. We provide atomic resolution insight into the molecular basis for STIM1-mediated SOCE initiation and show that the folded/unfolded state of the Ca2+-sensing region of STIM is crucial to SOCE regulation.
机译:基质相互作用分子1(STIM1)激活存储操作的Ca2 +进入(SOCE),以响应降低的腔内Ca2 +水平。在这里,我们介绍了由EF手和无菌基序(SAM)域(EF-SAM)组成的STIM1 Ca2 +传感区域的原子结构。规范EF手与先前未识别的EF手配对。 EF-手对一起介导了EF-手和SAM结构域之间相互必不可少的疏水相互作用。规范EF-手,“隐藏” EF-手或SAM域中的结构关键突变会通过使整个EF-SAM实体失稳来破坏寡聚化过程中的Ca2 +敏感性。诱导点状细胞的形成和激活SOCE,而与腔内Ca2 +无关,我们提供了原子分辨率来了解STIM1介导的SOCE引发的分子基础,并表明STIM的Ca2 +传感区域的折叠/未折叠状态对于SOCE调节至关重要。

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