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蛋白质中卤键的结构-能量关系

Structure-Energy Relationships of Halogen Bonds in Proteins.

作者信息

Scholfield Matthew R, Ford Melissa Coates, Carlsson Anna-Carin C, Butta Hawera, Mehl Ryan A, Ho P Shing

机构信息

Department of Biochemistry & Molecular Biology, Colorado State University , Fort Collins, Colorado 80523-1870, United States.

Department of Biochemistry and Biophysics, Oregon State University , Corvallis, Oregon 97331, United States.

出版信息

Biochemistry. 2017 Jun 6;56(22):2794-2802. doi: 10.1021/acs.biochem.7b00022. Epub 2017 Apr 22.

Abstract

The structures and stabilities of proteins are defined by a series of weak noncovalent electrostatic, van der Waals, and hydrogen bond (HB) interactions. In this study, we have designed and engineered halogen bonds (XBs) site-specifically to study their structure-energy relationship in a model protein, T4 lysozyme. The evidence for XBs is the displacement of the aromatic side chain toward an oxygen acceptor, at distances that are equal to or less than the sums of their respective van der Waals radii, when the hydroxyl substituent of the wild-type tyrosine is replaced by a halogen. In addition, thermal melting studies show that the iodine XB rescues the stabilization energy from an otherwise destabilizing substitution (at an equivalent noninteracting site), indicating that the interaction is also present in solution. Quantum chemical calculations show that the XB complements an HB at this site and that solvent structure must also be considered in trying to design molecular interactions such as XBs into biological systems. A bromine substitution also shows displacement of the side chain, but the distances and geometries do not indicate formation of an XB. Thus, we have dissected the contributions from various noncovalent interactions of halogens introduced into proteins, to drive the application of XBs, particularly in biomolecular design.

摘要

蛋白质的结构和稳定性由一系列弱的非共价静电、范德华力和氢键(HB)相互作用所定义。在本研究中,我们通过位点特异性设计和构建了卤键(XB),以研究其在模型蛋白T4溶菌酶中的结构-能量关系。当野生型酪氨酸的羟基取代基被卤素取代时,卤键的证据是芳香侧链向氧受体的位移,其距离等于或小于它们各自范德华半径之和。此外,热变性研究表明,碘卤键从一个原本会导致不稳定的取代(在等效的非相互作用位点)中挽救了稳定化能量,这表明该相互作用在溶液中也存在。量子化学计算表明,卤键在该位点与氢键互补,并且在试图将诸如卤键之类的分子相互作用设计到生物系统中时,还必须考虑溶剂结构。溴取代也显示了侧链的位移,但距离和几何形状并不表明形成了卤键。因此,我们剖析了引入蛋白质中的卤素的各种非共价相互作用的贡献,以推动卤键的应用,特别是在生物分子设计中。

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