Li Peiyao, Miao Yong, Dani Adish, Vig Monika
Department of Pathology and Immunology, School of Medicine, Washington University in St. Louis, St. Louis, MO 63110.
Department of Pathology and Immunology, School of Medicine, Washington University in St. Louis, St. Louis, MO 63110 Hope Center for Neurological Disorders, School of Medicine, Washington University in St. Louis, St. Louis, MO 63110
Mol Biol Cell. 2016 Aug 15;27(16):2542-53. doi: 10.1091/mbc.E16-03-0163. Epub 2016 Jun 22.
Orai1 forms a highly calcium-selective pore of the calcium release activated channel, and α-SNAP is necessary for its function. Here we show that α-SNAP regulates on-site assembly of Orai1 dimers into calcium-selective multimers. We find that Orai1 is a dimer in resting primary mouse embryonic fibroblasts but displays variable stoichiometry in the plasma membrane of store-depleted cells. Remarkably, α-SNAP depletion induces formation of higher-order Orai1 oligomers, which permeate significant levels of sodium via Orai1 channels. Sodium permeation in α-SNAP-deficient cells cannot be corrected by tethering multiple Stim1 domains to Orai1 C-terminal tail, demonstrating that α-SNAP regulates functional assembly and calcium selectivity of Orai1 multimers independently of Stim1 levels. Fluorescence nanoscopy reveals sustained coassociation of α-SNAP with Stim1 and Orai1, and α-SNAP-depleted cells show faster and less constrained mobility of Orai1 within ER-PM junctions, suggesting Orai1 and Stim1 coentrapment without stable contacts. Furthermore, α-SNAP depletion significantly reduces fluorescence resonance energy transfer between Stim1 and Orai1 N-terminus but not C-terminus. Taken together, these data reveal a unique role of α-SNAP in the on-site functional assembly of Orai1 subunits and suggest that this process may, in part, involve enabling crucial low-affinity interactions between Orai1 N-terminus and Stim1.
Orai1形成了钙释放激活通道的高度钙选择性孔道,α-SNAP对其功能是必需的。在此我们表明,α-SNAP调节Orai1二聚体在原位组装成钙选择性多聚体。我们发现,在静息的原代小鼠胚胎成纤维细胞中Orai1是二聚体,但在储存耗尽细胞的质膜中呈现可变的化学计量。值得注意的是,α-SNAP缺失诱导形成高阶Orai1寡聚体,其通过Orai1通道使大量钠通透。在α-SNAP缺陷细胞中的钠通透不能通过将多个Stim1结构域连接到Orai1 C末端尾巴来纠正,这表明α-SNAP独立于Stim1水平调节Orai1多聚体的功能组装和钙选择性。荧光纳米显微镜显示α-SNAP与Stim1和Orai1持续共缔合,并且α-SNAP缺失的细胞在ER-PM连接内显示Orai1更快且受限更少的移动性,提示Orai1和Stim1共捕获但没有稳定接触。此外,α-SNAP缺失显著降低Stim1与Orai1 N末端而非C末端之间的荧光共振能量转移。综上所述,这些数据揭示了α-SNAP在Orai1亚基原位功能组装中的独特作用,并表明该过程可能部分涉及促成Orai1 N末端与Stim1之间关键的低亲和力相互作用。