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首页> 外文期刊>Biopolymers: Original Research on Biomolecules and Biomolecular Assemblies >Hybrid Monte Carlo with multidimensional replica exchanges: Conformational equilibria of the hypervariable reigons of a llamma V-HH antibody domain
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Hybrid Monte Carlo with multidimensional replica exchanges: Conformational equilibria of the hypervariable reigons of a llamma V-HH antibody domain

机译:具有多维副本交换的杂交蒙特卡洛:美洲驼VHH抗体域高变区的构象平衡

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摘要

Since the structural repertoire of the hypervariable regions of human antibodies is known to be more restricted than what is implied by sequence variability, a common approach to structural prediction is to use a knowledge-based (KB) method, such as the canonical structure model (C. Chothia and A. M. Lesk, Journal of Molecular Biology, 1987, Vol. 196, pp. 901-917). However, this model is less successful when applied to camelid heavy chain antibodies. In this study, molecular simulations were used to examine the conformational equilibria of the hypervariable regions (H1, H2, and H3) of a llama heavy chain variable domain, for which KB predictions are poor. Simulations were carried out using both conventional molecular dynamics (MD) and hybrid Monte Carlo with multidimensional replica exchanges (HYMREX). The advantage of the latter method is its ability to selectively target parts of the Hamiltonian that can most readily improve sampling. A novel variant of HYMREX was implemented in which, besides the temperature, torsional interactions and the range of nonbonded interactions were varied. To compare the sampling abilities of MD and this HYMREX scheme, simulations were started from a misfolded conformational state. Overall, MD yielded final conformations more similar to the initial state, implying quasi-ergodic sampling. In contrast, HYMREX achieved more ergodic sampling, and the majority of conformations that it sampled agreed well with the known crystal structure. The HYMREX simulation results were used to help identify the chief interactions governing the conformational equilibria and to reexamine the key assumptions underlying the KB predictions. The data show that the H1 region exhibited significant conformational freedom, in support of the hypothesis that main-chain structural variability in this region could play a greater role in antigen binding in camelid antibodies than it does in normal antibodies. Key H1 residues and associated inter-loop interactions are conjectured to account for the poor KB predictions. (C) 2002 Wiley Periodicals, Inc. [References: 82]
机译:由于已知人抗体高变区的结构库比序列变异性所暗示的结构库受更多限制,因此结构预测的常用方法是使用基于知识的(KB)方法,例如规范结构模型( C.Chothia和AM Lesk,《分子生物学杂志》,1987年,第196卷,第901-917页)。但是,该模型在应用于骆驼科动物重链抗体时不太成功。在这项研究中,分子模拟被用来检查美洲驼重链可变域的高变区(H1,H2和H3)的构象平衡,对于这些预测,KB预测很差。使用常规分子动力学(MD)和具有多维副本交换的混合蒙特卡洛(HYMREX)进行模拟。后一种方法的优点是它能够选择性地瞄准最容易改善采样的哈密顿量的部分。实施了HYMREX的新型变体,其中除温度外,扭转相互作用和非键合相互作用的范围也不同。为了比较MD和此HYMREX方案的采样能力,从错误折叠的构象状态开始进行仿真。总体而言,MD产生的最终构象与初始状态更相似,这意味着准遍历采样。相反,HYMREX获得了更多的遍历取样,并且其取样的大多数构象与已知的晶体结构非常吻合。 HYMREX模拟结果用于帮助识别支配构象平衡的主要相互作用,并重新检查基于KB预测的关键假设。数据表明,H1区显示出显着的构象自由,支持以下假设:该区域中的主链结构变异性在骆驼科动物抗体的抗原结合中比在正常抗体中发挥更大的作用。推测关键的H1残基和相关的环间相互作用可解释不良的KB预测。 (C)2002 Wiley Periodicals,Inc. [参考:82]

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