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首页> 外文期刊>Journal of chemical theory and computation: JCTC >Rapid Sampling of Hydrogen Bond Networks for Computational Protein Design
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Rapid Sampling of Hydrogen Bond Networks for Computational Protein Design

机译:用于计算蛋白质设计的氢键网络的快速采样

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Hydrogen bond networks play a critical role in determining the stability and specificity of biomolecular complexes, and the ability to design such networks is important for engineering novel structures, interactions, and enzymes. One key feature of hydrogen bond networks that makes them difficult to rationally engineer is that they are highly cooperative and are not energetically favorable until the hydrogen bonding potential has been satisfied for all buried polar groups in the network. Existing computational methods for protein design are ill-equipped for creating these highly cooperative networks because they rely on energy functions and sampling strategies that are focused on pairwise interactions. To enable the design of complex hydrogen bond networks, we have developed a new sampling protocol in the molecular modeling program Rosetta that explicitly searches for sets of amino acid mutations that can form self-contained hydrogen bond networks. For a given set of designable residues, the protocol often identifies many alternative sets of mutations/networks, and we show that it can readily be applied to large sets of residues at protein-protein interfaces or in the interior of proteins. The protocol builds on a recently developed method in Rosetta for designing hydrogen bond networks that has been experimentally validated for small symmetric systems but was not extensible to many larger protein structures and complexes. The sampling protocol we describe here not only recapitulates previously validated designs with performance improvements but also yields viable hydrogen bond networks for cases where the previous method fails, such as the design of large, asymmetric interfaces relevant to engineering protein-based therapeutics.
机译:氢键网络在确定生物分子复合物的稳定性和特异性方面发挥着关键作用,并且设计这种网络的能力对于工程新颖结构,相互作用和酶来说是重要的。氢键网络的一个关键特征使得它们难以理性地工程师是它们是高度合作的,并且在网络中所有掩埋极性组满足到网络中的所有掩埋极组都是充满活力的良好。蛋白质设计的现有计算方法是为创建这些高度合作网络而有用的,因为它们依赖于专注于成对交互的能量功能和采样策略。为了实现复杂的氢键网络的设计,我们在分子建模程序Rosetta中开发了一种新的抽样协议,其明确地搜索了可以形成自包含氢键网络的氨基酸突变。对于给定的一组可设计残留物,该协议通常识别许多替代的突变/网络组,并且我们表明它可以容易地应用于蛋白质 - 蛋白质界面或蛋白质内部的大集残留物。该协议在ROSETTA中的最近开发方法中构建了设计用于小型对称系统的氢键网络,但对许多较大的蛋白质结构和复合物没有伸展。我们在此描述的采样协议不仅概括了以前验证的具有性能改进的设计,而且还产生了可行的氢键网络,以便在先前的方法发生故障的情况下,例如与工程蛋白质的治疗方法相关的大型不对称接口的设计。

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