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人隐孢子虫胸苷酸合成酶结构域中不保守的残基Ala287和Ser290促进了其快速的催化速率。

Nonconserved residues Ala287 and Ser290 of the Cryptosporidium hominis thymidylate synthase domain facilitate its rapid rate of catalysis.

作者信息

Doan Lanxuan T, Martucci W Edward, Vargo Melissa A, Atreya Chloé E, Anderson Karen S

机构信息

Department of Pharmacology, Yale University School of Medicine, 333 Cedar Street, New Haven, Connecticut 06520, USA.

出版信息

Biochemistry. 2007 Jul 17;46(28):8379-91. doi: 10.1021/bi700531r. Epub 2007 Jun 20.

Abstract

Cryptosporidium hominis TS-DHFR exhibits an unusually high rate of catalysis at the TS domain, at least 10-fold greater than those of other TS enzymes. Using site-directed mutagenesis, we have mutated residues Ala287 and Ser290 in the folate-binding helix to phenylalanine and glycine, respectively, the corresponding residues in human and most other TS enzymes. Our results show that the mutant A287F, the mutant S290G, and the double mutant all have reduced affinities for methylene tetrahydrofolate and reduced rates of reaction at the TS domain. Interestingly, the S290G mutant enzyme had the lowest TS activity, with a catalytic efficiency approximately 200-fold lower than that of the wild type (WT). The rate of conformational change of the S290G mutant is approximately 80 times slower than that of WT, resulting in a change in the rate-limiting step from hydride transfer to covalent ternary complex formation. We have determined the crystal structure of ligand-bound S290G mutant enzyme, which shows that the primary effect of the mutation is an increase in the distance between the TS ligands. The kinetic and crystal structure data presented here provide the first evidence explaining the unusually fast TS rate in C. hominis.

摘要

人隐孢子虫TS-DHFR在TS结构域表现出异常高的催化速率,至少比其他TS酶高10倍。我们使用定点诱变技术,将叶酸结合螺旋中的Ala287和Ser290残基分别突变为苯丙氨酸和甘氨酸,这是人类和大多数其他TS酶中的相应残基。我们的结果表明,突变体A287F、突变体S290G和双突变体对亚甲基四氢叶酸的亲和力均降低,且在TS结构域的反应速率也降低。有趣的是,S290G突变体酶的TS活性最低,其催化效率比野生型(WT)低约200倍。S290G突变体的构象变化速率比WT慢约80倍,导致限速步骤从氢化物转移变为共价三元复合物形成。我们已经确定了与配体结合的S290G突变体酶的晶体结构,结果表明该突变的主要影响是TS配体之间的距离增加。本文提供的动力学和晶体结构数据首次解释了人隐孢子虫中TS异常快速的速率。

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