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差异性肽动力学与主要组织相容性复合体多态性相关。

Differential peptide dynamics is linked to major histocompatibility complex polymorphism.

作者信息

Pöhlmann Thomas, Böckmann Rainer A, Grubmüller Helmut, Uchanska-Ziegler Barbara, Ziegler Andreas, Alexiev Ulrike

机构信息

Department of Physics, Freie Universität Berlin, Arnimallee 14, D-14195 Berlin, Germany.

出版信息

J Biol Chem. 2004 Jul 2;279(27):28197-201. doi: 10.1074/jbc.C400128200. Epub 2004 Apr 14.

Abstract

Peptide presentation by major histocompatibility complex (MHC) molecules is of central importance for immune responses, which are triggered through recognition of peptide-loaded MHC molecules (pMHC) by cellular ligands such as T-cell receptors (TCR). However, a unifying link between structural features of pMHC and cellular responses has not been established. Instead, pMHC/TCR binding studies suggest conformational and/or flexibility changes of the binding partners as a possible cause of differential T-cell stimulation, but information on real-time dynamics is lacking. We therefore probed the real-time dynamics of a MHC-bound nonapeptide (m9), by combining time-resolved fluorescence depolarization and molecular dynamics simulations. Here we show that the nanosecond dynamics of this peptide presented by two human MHC class I subtypes (HLA-B2705 and HLA-B2709) with differential autoimmune disease association varies dramatically, despite virtually identical crystal structures. The peptide dynamics is linked to the single, buried polymorphic residue 116 in the peptide binding groove. Pronounced peptide flexibility is seen only for the non-disease-associated subtype HLA-B*2709, suggesting an entropic control of peptide recognition. Thermodynamic data obtained for two additional peptides support this hypothesis.

摘要

主要组织相容性复合体(MHC)分子提呈肽段对于免疫反应至关重要,免疫反应是通过细胞配体如T细胞受体(TCR)识别负载肽段的MHC分子(pMHC)而触发的。然而,pMHC的结构特征与细胞反应之间尚未建立起统一的联系。相反,pMHC/TCR结合研究表明,结合伙伴的构象和/或灵活性变化可能是T细胞刺激差异的原因,但缺乏关于实时动力学的信息。因此,我们通过结合时间分辨荧光去极化和分子动力学模拟,探究了与MHC结合的九肽(m9)的实时动力学。我们在此表明,由两种具有不同自身免疫疾病关联的人类MHC I类亚型(HLA - B2705和HLA - B2709)提呈的这种肽段的纳秒级动力学变化显著,尽管其晶体结构几乎相同。肽段动力学与肽段结合槽中单个埋藏的多态性残基116相关。仅在与疾病无关联的亚型HLA - B*2709中观察到明显的肽段灵活性,这表明肽段识别存在熵控制。从另外两种肽段获得的热力学数据支持了这一假设。

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