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剖析核糖核酸酶T1中组氨酸与天冬酰胺和谷氨酰胺替代物的相互作用:一个位置上双突变循环的分析

Dissecting histidine interactions of ribonuclease T1 with asparagine and glutamine replacements: analysis of double mutant cycles at one position.

作者信息

De Vos S, Doumen J, Langhorst U, Steyaert J

机构信息

Dienst Ultrastructuur, Vlaams Interuniversitair Instituut Biotechnologie, Vrije Universiteit Brussel, Belgium.

出版信息

J Mol Biol. 1998 Jan 30;275(4):651-61. doi: 10.1006/jmbi.1997.1480.

DOI:10.1006/jmbi.1997.1480
PMID:9466938
Abstract

His92 of Ribonuclease T1 combines functional and structural features involving both imidazole nitrogens. To evaluate the use of Asn and Gln substitutions in dissecting the properties of histidines, we analysed the consequences of the His92Gln and His92Asn substitutions on the enzyme's structure, function, and conformational stability by protein engineering and X-ray crystallographic methods. In the X-ray structures of wild-type and His92Gln RNase T1 in complex with 2'-GMP the His92-N epsilon 2 and Gln92-N epsilon 2 atoms are isosterically equivalent. Similarly, the His92N delta 1H...OAsn99 hydrogen bond observed in wild-type is replaced by an equivalent Asn92N delta 2H...OAsn99 in the His92Asn mutant structure. Double mutant cycles at a single position were used to analyse the intermolecular and intramolecular interactions of the exchangeable proton and the individual histidine nitrogens. Urea denaturation measurements as a function of pH revealed that the exchangeable proton of His92, rather than its imidazole ring is contributing about 1 kcal/mol to the conformational stability of RNase T1. The stabilizing and the destabilizing effects of the (His-->Gln) and the (His-->Asn) mutations on urea denaturation of RNase T1 at pH 9.0 suggest that the unprotonated N delta 1 and N epsilon 2 atoms contribute in a compensating way to the conformational stability of RNase T1. A comparative study of the kinetics of all mutants suggests that the protonated His92 imidazole is a strictly co-operative catalytic device.

摘要

核糖核酸酶T1的His92兼具涉及两个咪唑氮的功能和结构特征。为评估用天冬酰胺和谷氨酰胺取代来剖析组氨酸特性的用途,我们通过蛋白质工程和X射线晶体学方法分析了His92Gln和His92Asn取代对该酶结构、功能及构象稳定性的影响。在与2'-GMP复合的野生型和His92Gln核糖核酸酶T1的X射线结构中,His92的Nε2原子和Gln92的Nε2原子在等排体上是等效的。同样,在野生型中观察到的His92Nδ1H...OAsn99氢键在His92Asn突变体结构中被等效的Asn92Nδ2H...OAsn99取代。在单个位置进行双突变循环,以分析可交换质子和单个组氨酸氮的分子间及分子内相互作用。作为pH函数的尿素变性测量表明,His92的可交换质子而非其咪唑环对核糖核酸酶T1的构象稳定性贡献约1千卡/摩尔。(His→Gln)和(His→Asn)突变对pH 9.0时核糖核酸酶T1尿素变性的稳定和去稳定作用表明,未质子化的Nδ1和Nε2原子以补偿方式对核糖核酸酶T1的构象稳定性有贡献。对所有突变体动力学的比较研究表明,质子化的His92咪唑是一种严格协同的催化装置。

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