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Structural and functional analysis of perforin mutations in association with clinical data of familial hemophagocytic lymphohistiocytosis type 2 (FHL2) patients

机译:穿孔素突变的结构和功能分析与2型家族性噬血细胞性淋巴组织细胞增生症(FHL2)患者的临床资料相关

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摘要

Perforin plays a key role in the immune system via pore formation at the target cell membrane in the elimination of virus-infected and transformed cells. A vast number of observed mutations in perforin impair this mechanism resulting in a rare but fatal disease, familial hemophagocytic lymphohistiocytosis type 2 (FHL2). Here we report a comprehensive in silico structural analysis of a collection of 76 missense perforin mutations based on a proposed pore model. In our model, perforin monomers oligomerize having cyclic symmetry in consistent with previously found experimental constraints yet having flexibility in the size of the pore and the number of monomers involved. Clusters of the mutations on the model map to three distinct functional regions of the perforin. Calculated stability (free energy) changes show that the mutations mainly destabilize the protein structure, interestingly however, A91V polymorphism, leads to a more stable one. Structural characteristics of mutations help explain the severe functional consequences on perforin deficient patients. Our study provides a structural approach to the mutation effects on the perforin oligomerization and impaired cytotoxic function in FHL2 patients.
机译:穿孔素通过在靶细胞膜上形成孔在消除病毒感染和转化的细胞中在免疫系统中起关键作用。大量观察到的穿孔素突变破坏了这种机制,导致了一种罕见但致命的疾病,即家族性2型噬血细胞淋巴组织细胞增生症(FHL2)。在这里,我们报告了基于提议的孔模型的76个错义穿孔素突变集合的综合计算机模拟结构分析。在我们的模型中,穿孔素单体具有与先前发现的实验约束一致的环状对称性低聚,但在孔的大小和涉及的单体数量上具有灵活性。模型上的突变簇映射到穿孔素的三个不同功能区域。计算的稳定性(自由能)变化表明,该突变主要破坏了蛋白质结构的稳定性,但是有趣的是,A91V多态性导致了一种更稳定的突变。突变的结构特征有助于解释穿孔素缺乏症患者的严重功能后果。我们的研究为FHL2患者穿孔素寡聚化和细胞毒性功能受损的突变效应提供了一种结构化方法。

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