Saito N G, Paterson Y
Department of Microbiology and The Eldridge Reeves Johnson Foundation for Molecular Biophysics, University of Pennsylvania, Philadelphia 19104-6076, USA.
Mol Immunol. 1997 Nov-Dec;34(16-17):1133-45. doi: 10.1016/s0161-5890(97)00140-5.
Antigenic peptides are thought to bind to class I major histocompatibility complex (MHC) molecules through three modes of interaction: van der Waals interaction and, to a lesser extent, hydrogen bonding of anchor side chain atoms to residues comprising the binding pockets of the MHC molecule; hydrogen bonding of N- and C-termini to residues at the ends of the binding groove; and hydrogen bonding of peptide backbone atoms to residues lining the binding groove. To dissect the relative contribution of each of these interactions to class I MHC-peptide stability, a retro inverso (RI) analog of VSV-8. an H-2Kb restricted cytotoxic T lymphocyte (CTL) epitope and terminally modified variants of both VSV-8 and RI VSV-8 were synthesized and their ability to target H-2Kb bearing cells for CTL mediated lysis was compared. None of RI VSV-8 analogs elicited lysis of target cells by CTL specific for VSV-8 nor did they appear to compete with the native peptide for binding to H-2Kb. In contrast, terminally modified VSV-8 peptides elicited target lysis. These findings suggest that side chain topochemistry of the peptide is insufficient for stable peptide binding to H-2Kb; rather, hydrogen bonding of the peptide backbone atoms to H-2Kb side chain atoms appears to play a major role in the stability of the complex. Computer modeling confirmed that none of the RI analogs participate in the extensive hydrogen bonding network between the peptide backbone and the MHC molecule seen in the native structure.
抗原肽被认为通过三种相互作用模式与I类主要组织相容性复合体(MHC)分子结合:范德华相互作用,以及在较小程度上,锚定侧链原子与构成MHC分子结合口袋的残基之间的氢键作用;N端和C端与结合槽末端残基之间的氢键作用;以及肽主链原子与结合槽内衬残基之间的氢键作用。为了剖析这些相互作用对I类MHC-肽稳定性的相对贡献,合成了水泡性口炎病毒8(VSV-8)的反向模拟物(RI),一种H-2Kb限制性细胞毒性T淋巴细胞(CTL)表位,以及VSV-8和RI VSV-8的末端修饰变体,并比较了它们将携带H-2Kb的细胞作为靶点进行CTL介导裂解的能力。RI VSV-8模拟物均未引发针对VSV-8的CTL对靶细胞的裂解,它们似乎也没有与天然肽竞争与H-2Kb的结合。相比之下,末端修饰的VSV-8肽引发了靶细胞裂解。这些发现表明,肽的侧链拓扑结构不足以使肽与H-2Kb稳定结合;相反,肽主链原子与H-2Kb侧链原子之间的氢键作用似乎在复合物的稳定性中起主要作用。计算机建模证实,RI模拟物均未参与在天然结构中所见的肽主链与MHC分子之间广泛的氢键网络。