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氢键对核糖核酸酶T1构象稳定性的贡献。

Contribution of hydrogen bonding to the conformational stability of ribonuclease T1.

作者信息

Shirley B A, Stanssens P, Hahn U, Pace C N

机构信息

Department of Medical Biochemistry and Genetics, Texas A&M University, College Station 77843.

出版信息

Biochemistry. 1992 Jan 28;31(3):725-32. doi: 10.1021/bi00118a013.

Abstract

For 30 years, the prevailing view has been that the hydrophobic effect contributes considerably more than hydrogen bonding to the conformational stability of globular proteins. The results and reasoning presented here suggest that hydrogen bonding and the hydrophobic effect make comparable contributions to the conformational stability of ribonuclease T1 (RNase T1). When RNase T1 folds, 86 intramolecular hydrogen bonds with an average length of 2.95 A are formed. Twelve mutants of RNase T1 [Tyr----Phe (5), Ser----Ala (3), and Asn----Ala (4)] have been prepared that remove 17 of the hydrogen bonds with an average length of 2.93 A. On the basis of urea and thermal unfolding studies of these mutants, the average decrease in conformational stability due to hydrogen bonding is 1.3 kcal/mol per hydrogen bond. This estimate is in good agreement with results from several related systems. Thus, we estimate that hydrogen bonding contributes about 110 kcal/mol to the conformational stability of RNase T1 and that this is comparable to the contribution of the hydrophobic effect. Accepting the idea that intramolecular hydrogen bonds contribute 1.3 +/- 0.6 kcal/mol to the stability of systems in an aqueous environment makes it easier to understand the stability of the "molten globule" states of proteins, and the alpha-helical conformations of small peptides.

摘要

30年来,普遍的观点一直认为,疏水作用对球状蛋白质构象稳定性的贡献比氢键作用大得多。本文给出的结果和推理表明,氢键作用和疏水作用对核糖核酸酶T1(RNase T1)的构象稳定性贡献相当。RNase T1折叠时,会形成86个平均长度为2.95埃的分子内氢键。已制备了12个RNase T1突变体(酪氨酸突变为苯丙氨酸5个、丝氨酸突变为丙氨酸3个、天冬酰胺突变为丙氨酸4个),这些突变体消除了17个平均长度为2.93埃的氢键。基于对这些突变体的尿素和热变性研究,氢键作用导致的构象稳定性平均降低为每个氢键1.3千卡/摩尔。这一估计与几个相关体系的结果高度一致。因此,我们估计氢键作用对RNase T1构象稳定性的贡献约为110千卡/摩尔,这与疏水作用的贡献相当。接受分子内氢键对水环境中体系稳定性贡献为1.3±0.6千卡/摩尔这一观点,有助于更容易理解蛋白质“熔球”态的稳定性以及小肽的α螺旋构象。

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