Ferrante Andrea, Templeton Megan, Hoffman Megan, Castellini Margaret J
Institute of Arctic Biology, University of Alaska Fairbanks, Fairbanks, AK 99775;
Institute of Arctic Biology, University of Alaska Fairbanks, Fairbanks, AK 99775; Department of Chemistry and Biochemistry, University of Alaska Fairbanks, Fairbanks, AK 99775; and.
J Immunol. 2015 Aug 1;195(3):1251-61. doi: 10.4049/jimmunol.1402367. Epub 2015 Jun 26.
Peptides bind MHC class II molecules through a thermodynamically nonadditive process consequent to the flexibility of the reactants. Currently, how the specific outcome of this binding process affects the ensuing epitope selection needs resolution. Calorimetric assessment of binding thermodynamics for hemagglutinin 306-319 peptide variants to the human MHC class II HLA-DR1 (DR1) and a mutant DR1 reveals that peptide/DR1 complexes can be formed with different enthalpic and entropic contributions. Complexes formed with a smaller entropic penalty feature circular dichroism spectra consistent with a non-compact form, and molecular dynamics simulation shows a more flexible structure. The opposite binding mode, compact and less flexible, is associated with greater entropic penalty. These structural variations are associated with rearrangements of residues known to be involved in HLA-DR (DM) binding, affinity of DM for the complex, and complex susceptibility to DM-mediated peptide exchange. Thus, the thermodynamic mechanism of peptide binding to DR1 correlates with the structural rigidity of the complex, and DM mediates peptide exchange by "sensing" flexible complexes in which the aforementioned residues are rearranged at a higher frequency than in more rigid ones.
由于反应物的灵活性,肽通过热力学非加和过程与II类主要组织相容性复合体(MHC)分子结合。目前,这种结合过程的具体结果如何影响随后的表位选择尚待解决。对血凝素306 - 319肽变体与人II类MHC HLA - DR1(DR1)及一种突变型DR1的结合热力学进行量热评估,结果表明肽/DR1复合物可以通过不同的焓和熵贡献形成。以较小的熵罚形成的复合物具有与非紧密形式一致的圆二色光谱,分子动力学模拟显示其结构更灵活。相反的结合模式,即紧密且灵活性较低,与更大的熵罚相关。这些结构变化与已知参与HLA - DR(DM)结合的残基重排、DM对复合物的亲和力以及复合物对DM介导的肽交换的敏感性有关。因此,肽与DR1结合的热力学机制与复合物的结构刚性相关,并且DM通过“感知”柔性复合物介导肽交换,其中上述残基的重排比刚性复合物中更频繁地发生重排。