van Hateren Andy, Bailey Alistair, Werner Jörn M, Elliott Tim
Institute for Life Sciences, Building 85, M55, University of Southampton, SO17 1BJ, UK; Cancer Sciences Unit, Faculty of Medicine, University of Southampton, SO16 6YD, UK.
Institute for Life Sciences, Building 85, M55, University of Southampton, SO17 1BJ, UK; Cancer Sciences Unit, Faculty of Medicine, University of Southampton, SO16 6YD, UK; Centre for Biological Sciences, Faculty of Natural & Environmental Sciences, Building 85, M55, University of Southampton, SO17 1BJ, UK.
Mol Immunol. 2015 Dec;68(2 Pt A):98-101. doi: 10.1016/j.molimm.2015.03.010. Epub 2015 Mar 26.
Major histocompatibility complex class I (MHC I) proteins provide protection from intracellular pathogens and cancer via each of a cell's MHC I molecules binding and presenting a peptide to cytotoxic T lymphocytes. MHC I genes are highly polymorphic and can have significant diversity, with polymorphisms predominantly localised in the peptide-binding groove where they can change peptide-binding specificity. However, polymorphic residues may also determine other functional properties, such as how dependent MHC I alleles are on the peptide-loading complex for optimal acquisition of peptide cargo. We describe how differences in the peptide-binding properties of two MHC I alleles correlates with altered conformational flexibility in the peptide-empty state. We hypothesise that plasticity is an intrinsic property encoded by the protein sequence, and that co-ordinated movements of the membrane-proximal and membrane-distal domains collectively determines how dependent MHC I are on the peptide-loading complex for efficient assembly with high affinity peptides.
主要组织相容性复合体I类(MHC I)蛋白通过细胞的每个MHC I分子结合并向细胞毒性T淋巴细胞呈递肽,为细胞内病原体和癌症提供保护。MHC I基因具有高度多态性,可能存在显著差异,多态性主要位于肽结合槽中,在那里它们可以改变肽结合特异性。然而,多态性残基也可能决定其他功能特性,例如MHC I等位基因对肽装载复合体的依赖程度,以实现肽货物的最佳获取。我们描述了两个MHC I等位基因的肽结合特性差异如何与肽空状态下构象灵活性的改变相关。我们假设可塑性是由蛋白质序列编码的固有特性,并且膜近端和膜远端结构域的协同运动共同决定了MHC I对肽装载复合体的依赖程度,以便与高亲和力肽进行有效组装。