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A knowledge-based forcefield for protein-protein interface design.

机译:基于知识的力场,用于蛋白质-蛋白质界面设计。

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摘要

A distance-dependent knowledge-based potential for protein-protein interactions is derived and tested for application in protein design. Information on residue type specific C(alpha) and C(beta) pair distances is extracted from complex crystal structures in the Protein Data Bank and used in the form of radial distribution functions. The use of only backbone and C(beta) position information allows generation of relative protein-protein orientation poses with minimal sidechain information. Further coarse-graining can be done simply in the same theoretical framework to give potentials for residues of known type interacting with unknown type, as in a one-sided interface design problem. Both interface design via pose generation followed by sidechain repacking and localized protein-protein docking tests are performed on 39 nonredundant antibody-antigen complexes for which crystal structures are available. As reference, Lennard-Jones potentials, unspecific for residue type and biasing toward varying degrees of residue pair separation are used as controls. For interface design, the knowledge-based potentials give the best combination of consistently designable poses, low RMSD to the known structure, and more tightly bound interfaces with no added computational cost. 77% of the poses could be designed to give complexes with negative free energies of binding. Generally, larger interface separation promotes designability, but weakens the binding of the resulting designs. A localized docking test shows that the knowledge-based nature of the potentials improves performance and compares respectably with more sophisticated all-atoms potentials.
机译:基于距离的基于知识的蛋白质-蛋白质相互作用潜力被推导并测试了在蛋白质设计中的应用。从蛋白质数据库中复杂的晶体结构中提取有关残基类型特定的Cα和Cβ对距离的信息,并以径向分布函数的形式使用。仅使用主链和Cβ位置信息可生成具有最小侧链信息的相对蛋白质-蛋白质取向姿势。可以在相同的理论框架内简单地进行进一步的粗粒度处理,以提供已知类型的残基与未知类型相互作用的可能性,例如在单面界面设计问题中。通过姿势生成然后进行侧链重新包装和局部蛋白质-蛋白质对接测试的两种界面设计,均针对39种具有晶体结构的非冗余抗体-抗原复合物进行。作为参考,对残基类型不特定且偏向残基对分离程度不同的Lennard-Jones电位用作对照。对于界面设计,基于知识的潜能将一致设计的姿势,已知结构的RMSD低以及绑定界面更紧密的最佳组合,而不会增加计算成本。 77%的姿势可以设计为产生具有负自由结合能的复合物。通常,较大的界面间距可提高设计性,但会削弱所得设计的绑定性。本地化对接测试表明,电位的基于知识的性质可以提高性能,并可以与更复杂的全原子电位进行比较。

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