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蛋白质/蛋白质界面处的静电互补性。

Electrostatic complementarity at protein/protein interfaces.

作者信息

McCoy A J, Chandana Epa V, Colman P M

机构信息

Biomolecular Research Institute, Parkville, Victoria, Australia.

出版信息

J Mol Biol. 1997 May 2;268(2):570-84. doi: 10.1006/jmbi.1997.0987.

Abstract

Calculation of the electrostatic potential of protein-protein complexes has led to the general assertion that protein-protein interfaces display "charge complementarity" and "electrostatic complementarity". In this study, quantitative measures for these two terms are developed and used to investigate protein-protein interfaces in a rigorous manner. Charge complementarity (CC) was defined using the correlation of charges on nearest neighbour atoms at the interface. All 12 protein-protein interfaces studied had insignificantly small CC values. Therefore, the term charge complementarity is not appropriate for the description of protein-protein interfaces when used in the sense measured by CC. Electrostatic complementarity (EC) was defined using the correlation of surface electrostatic potential at protein-protein interfaces. All twelve protein-protein interfaces studied had significant EC values, and thus the assertion that protein-protein association involves surfaces with complementary electrostatic potential was substantially confirmed. The term electrostatic complementarity can therefore be used to describe protein-protein interfaces when used in the sense measured by EC. Taken together, the results for CC and EC demonstrate the relevance of the long-range effects of charges, as described by the electrostatic potential at the binding interface. The EC value did not partition the complexes by type such as antigen-antibody and proteinase-inhibitor, as measures of the geometrical complementarity at protein-protein interfaces have done. The EC value was also not directly related to the number of salt bridges in the interface, and neutralisation of these salt bridges showed that other charges also contributed significantly to electrostatic complementarity and electrostatic interactions between the proteins. Electrostatic complementarity as defined by EC was extended to investigate the electrostatic similarity at the surface of influenza virus neuraminidase where the epitopes of two monoclonal antibodies, NC10 and NC41, overlap. Although NC10 and NC41 both have quite high values of EC for their interaction with neuraminidase, the similarity in electrostatic potential generated by the two on the overlapping region of the epitopes is insignificant. Thus, it is possible for two antibodies to recognise the electrostatic surface of a protein in dissimilar ways.

摘要

蛋白质-蛋白质复合物静电势的计算已得出这样一个普遍观点,即蛋白质-蛋白质界面表现出“电荷互补性”和“静电互补性”。在本研究中,针对这两个术语开发了定量测量方法,并用于严格研究蛋白质-蛋白质界面。电荷互补性(CC)是利用界面上最近邻原子电荷的相关性来定义的。所研究的全部12个蛋白质-蛋白质界面的CC值都极小,可忽略不计。因此,从CC所测量的意义上来说,电荷互补性这一术语不适用于描述蛋白质-蛋白质界面。静电互补性(EC)是利用蛋白质-蛋白质界面处表面静电势的相关性来定义的。所研究的全部12个蛋白质-蛋白质界面都有显著的EC值,因此蛋白质-蛋白质结合涉及具有互补静电势表面这一观点得到了充分证实。所以,从EC所测量的意义上来说,静电互补性这一术语可用于描述蛋白质-蛋白质界面。综合来看,CC和EC的结果证明了电荷远程效应的相关性,正如结合界面处的静电势所描述的那样。EC值并没有像蛋白质-蛋白质界面几何互补性测量那样,按抗原-抗体和蛋白酶-抑制剂等类型对复合物进行划分。EC值也与界面中盐桥的数量没有直接关系,并且这些盐桥的中和表明其他电荷对静电互补性以及蛋白质之间的静电相互作用也有显著贡献。由EC定义的静电互补性被扩展用于研究流感病毒神经氨酸酶表面的静电相似性,其中两种单克隆抗体NC10和NC41的表位重叠。尽管NC10和NC41与神经氨酸酶相互作用时的EC值都相当高,但二者在表位重叠区域产生的静电势相似性并不显著。因此,两种抗体有可能以不同方式识别蛋白质的静电表面。

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