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肌醇1,4,5-三磷酸受体的稳定表达和功能需要由DHHC6/硒蛋白K复合物进行棕榈酰化修饰。

Stable expression and function of the inositol 1,4,5-triphosphate receptor requires palmitoylation by a DHHC6/selenoprotein K complex.

作者信息

Fredericks Gregory J, Hoffmann FuKun W, Rose Aaron H, Osterheld Hanna J, Hess Franz M, Mercier Frederic, Hoffmann Peter R

机构信息

Departments of Cell and Molecular Biology.

Biotechnology Department, University of Applied Sciences Mannheim, 68163 Mannheim, Germany.

出版信息

Proc Natl Acad Sci U S A. 2014 Nov 18;111(46):16478-83. doi: 10.1073/pnas.1417176111. Epub 2014 Nov 3.

Abstract

Calcium (Ca(2+)) is a secondary messenger in cells and Ca(2+) flux initiated from endoplasmic reticulum (ER) stores via inositol 1,4,5-triphosphate (IP3) binding to the IP3 receptor (IP3R) is particularly important for the activation and function of immune cells. Previous studies demonstrated that genetic deletion of selenoprotein K (Selk) led to decreased Ca(2+) flux in a variety of immune cells and impaired immunity, but the mechanism was unclear. Here we show that Selk deficiency does not affect receptor-induced IP3 production, but Selk deficiency through genetic deletion or low selenium in culture media leads to low expression of the IP3R due to a defect in IP3R palmitoylation. Bioinformatic analysis of the DHHC (letters represent the amino acids aspartic acid, histidine, histidine, and cysteine in the catalytic domain) family of enzymes that catalyze protein palmitoylation revealed that one member, DHHC6, contains a predicted Src-homology 3 (SH3) domain and DHHC6 is localized to the ER membrane. Because Selk is also an ER membrane protein and contains an SH3 binding domain, immunofluorescence and coimmunoprecipitation experiments were conducted and revealed DHHC6/Selk interactions in the ER membrane that depended on SH3/SH3 binding domain interactions. DHHC6 knockdown using shRNA in stably transfected cell lines led to decreased expression of the IP3R and impaired IP3R-dependent Ca(2+) flux. Mass spectrophotometric and bioinformatic analyses of the IP3R protein identified two palmitoylated cysteine residues and another potentially palmitoylated cysteine, and mutation of these three cysteines to alanines resulted in decreased IP3R palmitoylation and function. These findings reveal IP3R palmitoylation as a critical regulator of Ca(2+) flux in immune cells and define a previously unidentified DHHC/Selk complex responsible for this process.

摘要

钙(Ca(2+))是细胞内的第二信使,通过肌醇1,4,5 - 三磷酸(IP3)与IP3受体(IP3R)结合从内质网(ER)储存库引发的Ca(2+)通量对于免疫细胞的激活和功能尤为重要。先前的研究表明,硒蛋白K(Selk)的基因缺失导致多种免疫细胞中Ca(2+)通量降低和免疫功能受损,但其机制尚不清楚。在这里,我们表明Selk缺陷并不影响受体诱导的IP3产生,但通过基因缺失或培养基中低硒导致的Selk缺陷会由于IP3R棕榈酰化缺陷而导致IP3R表达降低。对催化蛋白质棕榈酰化的DHHC(字母代表催化结构域中的天冬氨酸、组氨酸、组氨酸和半胱氨酸氨基酸)家族酶进行生物信息学分析发现,其中一个成员DHHC6含有预测的Src同源3(SH3)结构域,并且DHHC6定位于内质网膜。由于Selk也是一种内质网膜蛋白且含有SH3结合结构域,因此进行了免疫荧光和免疫共沉淀实验,结果显示内质网膜中存在依赖于SH3/SH3结合结构域相互作用的DHHC6/Selk相互作用。在稳定转染的细胞系中使用shRNA敲低DHHC6导致IP3R表达降低和IP3R依赖性Ca(2+)通量受损。对IP3R蛋白进行质谱分析和生物信息学分析确定了两个棕榈酰化的半胱氨酸残基和另一个潜在的棕榈酰化半胱氨酸,将这三个半胱氨酸突变为丙氨酸会导致IP3R棕榈酰化和功能降低。这些发现揭示了IP3R棕榈酰化是免疫细胞中Ca(2+)通量的关键调节因子,并确定了一个以前未被识别的负责此过程的DHHC/Selk复合物。

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