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结核分枝杆菌二氢二吡啶甲酸合酶的晶体结构与动力学研究

Crystal structure and kinetic study of dihydrodipicolinate synthase from Mycobacterium tuberculosis.

作者信息

Kefala Georgia, Evans Genevieve L, Griffin Michael D W, Devenish Sean R A, Pearce F Grant, Perugini Matthew A, Gerrard Juliet A, Weiss Manfred S, Dobson Renwick C J

机构信息

EMBL Hamburg Outstation, c/o DESY, Notkestrasse 85, D-22603 Hamburg, Germany.

出版信息

Biochem J. 2008 Apr 15;411(2):351-60. doi: 10.1042/BJ20071360.

Abstract

The three-dimensional structure of the enzyme dihydrodipicolinate synthase (KEGG entry Rv2753c, EC 4.2.1.52) from Mycobacterium tuberculosis (Mtb-DHDPS) was determined and refined at 2.28 A (1 A=0.1 nm) resolution. The asymmetric unit of the crystal contains two tetramers, each of which we propose to be the functional enzyme unit. This is supported by analytical ultracentrifugation studies, which show the enzyme to be tetrameric in solution. The structure of each subunit consists of an N-terminal (beta/alpha)(8)-barrel followed by a C-terminal alpha-helical domain. The active site comprises residues from two adjacent subunits, across an interface, and is located at the C-terminal side of the (beta/alpha)(8)-barrel domain. A comparison with the other known DHDPS structures shows that the overall architecture of the active site is largely conserved, albeit the proton relay motif comprising Tyr(143), Thr(54) and Tyr(117) appears to be disrupted. The kinetic parameters of the enzyme are reported: K(M)(ASA)=0.43+/-0.02 mM, K(M)(pyruvate)=0.17+/-0.01 mM and V(max)=4.42+/-0.08 micromol x s(-1) x mg(-1). Interestingly, the V(max) of Mtb-DHDPS is 6-fold higher than the corresponding value for Escherichia coli DHDPS, and the enzyme is insensitive to feedback inhibition by (S)-lysine. This can be explained by the three-dimensional structure, which shows that the (S)-lysine-binding site is not conserved in Mtb-DHDPS, when compared with DHDPS enzymes that are known to be inhibited by (S)-lysine. A selection of metabolites from the aspartate family of amino acids do not inhibit this enzyme. A comprehensive understanding of the structure and function of this important enzyme from the (S)-lysine biosynthesis pathway may provide the key for the design of new antibiotics to combat tuberculosis.

摘要

结核分枝杆菌二氢二吡啶酸合酶(KEGG编号Rv2753c,EC 4.2.1.52,简称Mtb-DHDPS)的三维结构已被测定,并在2.28 Å(1 Å = 0.1 nm)分辨率下进行了优化。晶体的不对称单元包含两个四聚体,我们认为每个四聚体都是功能酶单元。分析超速离心研究支持了这一点,该研究表明该酶在溶液中为四聚体。每个亚基的结构由一个N端(β/α)8桶状结构域和一个C端α螺旋结构域组成。活性位点由来自两个相邻亚基的残基组成,跨越一个界面,位于(β/α)8桶状结构域的C端一侧。与其他已知的二氢二吡啶酸合酶结构相比,活性位点的整体结构在很大程度上是保守的,尽管由Tyr(143)、Thr(54)和Tyr(117)组成的质子传递基序似乎被破坏了。文中报告了该酶的动力学参数:K(M)(ASA)=0.43±0.02 mM,K(M)(丙酮酸)=0.17±0.01 mM,V(max)=4.42±0.08 μmol·s(-1)·mg(-1)。有趣的是,Mtb-DHDPS的V(max)比大肠杆菌二氢二吡啶酸合酶的相应值高6倍,并且该酶对(S)-赖氨酸的反馈抑制不敏感。这可以通过三维结构来解释,该结构表明与已知被(S)-赖氨酸抑制的二氢二吡啶酸合酶相比,Mtb-DHDPS中(S)-赖氨酸结合位点并不保守。天冬氨酸家族氨基酸中的一些代谢产物不会抑制这种酶。全面了解(S)-赖氨酸生物合成途径中这种重要酶的结构和功能,可能为设计对抗结核病的新型抗生素提供关键。

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