首页> 外文期刊>Journal of Molecular Biology >Alternate interfaces may mediate homomeric and heteromeric assembly in the transmembrane domains of SNARE proteins.
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Alternate interfaces may mediate homomeric and heteromeric assembly in the transmembrane domains of SNARE proteins.

机译:备用接口可以介导SNARE蛋白质跨膜结构域中的同聚和异聚装配。

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摘要

The fusion of a vesicle to a target membrane is mediated by temporally and spatially regulated interactions within a set of evolutionarily conserved proteins. Integral to proper fusion is the interaction between proteins originating on both vesicle and target membranes to form a protein bridge between the two membranes, known as the SNARE complex. This protein complex includes the single-pass transmembrane helix proteins: syntaxin and synaptobrevin. Experimental data and amino acid sequence analysis suggest that an interface of interaction is conserved between the transmembrane regions of the two proteins. However, conflicting reports have been presented on the role of the synaptobrevin transmembrane domain in mediating important protein-protein interactions. To address this question, a thermodynamic study was carried out to determine quantitatively the self-association propensities of the transmembrane domains of synaptobrevin and syntaxin. Our results show that the transmembrane domain of synaptobrevin has only a modest ability to self-associate, whereas the transmembrane domain of syntaxin is able to form stable homodimers. Nevertheless, by a single amino acid substitution, synaptobrevin can be driven to dimerize with the same affinity as syntaxin. Furthermore, crosslinking studies show that dimerization of synaptobrevin is promoted by oxidizing agents. Despite the presence of a conserved cysteine residue in the same location as in synaptobrevin, syntaxin dimerization is not promoted by oxidization. This analysis suggests that subtle yet distinct differences are present between the two transmembrane dimer interfaces. A syntaxin/synaptobrevin heterodimer is able to form under oxidizing conditions, and we propose that the interface of interaction for the heterodimer may resemble the homodimer interface formed by the synaptobrevin transmembrane domain. Computational analysis of the transmembrane sequences of syntaxin and synaptobrevin reveal structural models that correlate with the experimentaldata. These data may provide insight into the role of transmembrane segments in the mechanism of vesicle fusion.
机译:囊泡与靶膜的融合是由一组进化保守蛋白内的时间和空间调节相互作用介导的。适当融合必不可少的是源自囊泡和靶膜的蛋白质之间的相互作用,从而在两膜之间形成蛋白质桥,称为SNARE复合物。该蛋白复合物包括单程跨膜螺旋蛋白:语法蛋白和突触素。实验数据和氨基酸序列分析表明,两种蛋白质的跨膜区域之间相互作用的界面是保守的。然而,关于突触臂蛋白跨膜结构域在介导重要的蛋白质-蛋白质相互作用中的作用,存在相互矛盾的报道。为了解决这个问题,进行了热力学研究,定量地确定了突触短纤维蛋白和语法蛋白的跨膜结构域的自缔合倾向。我们的结果表明,突触短纤维蛋白的跨膜结构域仅具有适度的自缔合能力,而语法素的跨膜结构域能够形成稳定的同型二聚体。然而,通过单个氨基酸取代,可以驱动突触小泡蛋白以与语法素相同的亲和力二聚。此外,交联研究表明,突触素的二聚作用被氧化剂促进。尽管在与突触短视素相同的位置存在保守的半胱氨酸残基,但是氧化并不能促进语法素二聚化。该分析表明,两个跨膜二聚体界面之间存在细微但明显的差异。可以在氧化条件下形成syntaxin / synaptobrevin异二聚体,我们建议异二聚体的相互作用界面可能类似于synaptobrevin跨膜结构域形成的同二聚体界面。对syntaxin和synaptobrevin跨膜序列的计算分析揭示了与实验数据相关的结构模型。这些数据可能提供深入了解跨膜段在囊泡融合机制中的作用。

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