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抑制剂对人碳酸酐酶II变体亲和力的结构基础

Structural basis of inhibitor affinity to variants of human carbonic anhydrase II.

作者信息

Nair S K, Krebs J F, Christianson D W, Fierke C A

机构信息

Department of Chemistry, University of Pennsylvania, Philadelphia 19104-6323.

出版信息

Biochemistry. 1995 Mar 28;34(12):3981-9. doi: 10.1021/bi00012a016.

DOI:10.1021/bi00012a016
PMID:7696263
Abstract

The activities and structures of certain L198 variants of human carbonic anhydrase II (CAII) have been reported recently [Krebs, J. F., Rana, F., Dluhy, R. A., & Fierke, C. A. (1993) Biochemistry 32, 4496-4505; Nair, S. K., & Christianson, D. W. (1993) Biochemistry 32, 4506-4514]. In order to understand the structural basis of enzyme-inhibitor affinity, we now report the dissociation rate and equilibrium constants for acetazolamide and dansylamide binding to 13 variants of CAII containing substituted amino acids at position 198. These data indicate that inhibitor affinity is modulated by the hydrophobicity and charge of the 198 side chain. Furthermore, we have determined crystal structures of L198R, L198E, and L198F CAIIs complexed with the transition state analog acetazolamide. The substituted benzyl side chain of L198F CAII does not occlude the substrate association pocket, and it is therefore not surprising that this substitution has minimal effects on catalytic properties and inhibitor binding. Nevertheless, the F198 side chain undergoes a significant conformation change in order to accommodate the binding of acetazolamide; the same behavior is observed for the engineered side chain of L198R CAII. In contrast, the engineered side chain of L198E CAII does not alter its conformation upon inhibitor binding. We conclude that the mobility and hydrophobicity or residue 198 side chains affect enzyme-inhibitor (and enzyme-substrate) affinity, and these structure-function relationships are important for understanding the behavior of carbonic anhydrase isozyme III, which bears a wild-type F198 side chain.(ABSTRACT TRUNCATED AT 250 WORDS)

摘要

最近报道了人碳酸酐酶II(CAII)某些L198变体的活性和结构[克雷布斯,J.F.,拉纳,F.,德鲁希,R.A.,&菲克,C.A.(1993年)《生物化学》32卷,4496 - 4505页;奈尔,S.K.,&克里斯蒂安森,D.W.(1993年)《生物化学》32卷,4506 - 4514页]。为了理解酶 - 抑制剂亲和力的结构基础,我们现在报告乙酰唑胺和丹磺酰胺与13种在198位含有取代氨基酸的CAII变体结合的解离速率和平衡常数。这些数据表明抑制剂亲和力受198位侧链的疏水性和电荷调节。此外,我们已经确定了与过渡态类似物乙酰唑胺复合的L198R、L198E和L198F CAII的晶体结构。L198F CAII的取代苄基侧链不会封闭底物结合口袋,因此这种取代对催化性质和抑制剂结合影响最小并不奇怪。然而,F198侧链会发生显著的构象变化以适应乙酰唑胺的结合;L198R CAII的工程化侧链也观察到相同行为。相比之下,L198E CAII的工程化侧链在抑制剂结合时不会改变其构象。我们得出结论,198位侧链的流动性和疏水性影响酶 - 抑制剂(以及酶 - 底物)亲和力,并且这些结构 - 功能关系对于理解具有野生型F198侧链的碳酸酐酶同工酶III的行为很重要。(摘要截短于250字)

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