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耻垢分枝杆菌半胱氨酸连接酶(MshC)的稳态和前稳态动力学分析。

Steady-state and pre-steady-state kinetic analysis of Mycobacterium smegmatis cysteine ligase (MshC).

作者信息

Fan Fan, Luxenburger Andreas, Painter Gavin F, Blanchard John S

机构信息

Department of Biochemistry, Albert Einstein College of Medicine, 1300 Morris Park Avenue, Bronx, New York 10461, USA.

出版信息

Biochemistry. 2007 Oct 9;46(40):11421-9. doi: 10.1021/bi7011492. Epub 2007 Sep 12.

Abstract

Mycobacterium tuberculosis and many other members of the Actinomycetes family produce mycothiol, i.e., 1-d-myo-inosityl-2-(N-acetyl-l-cysteinyl)amido-2-deoxy-alpha-d-glucopyranoside (MSH or AcCys-GlcN-Ins), to act against oxidative and antibiotic stress. The biosynthesis of MSH is essential for cell growth and has been proposed to proceed via a biosynthetic pathway involving four key enzymes, MshA-MshD. The MSH biosynthetic enzymes present potential targets for inhibitor design. With this as a long-term goal, we have carried out a kinetic and mechanistic characterization, using steady-state and pre-steady-state approaches, of the recombinant Mycobacterium smegmatis MshC. MshC catalyzes the ATP-dependent condensation of GlcN-Ins and cysteine to form Cys-GlcN-Ins. Initial velocity and inhibition studies show that the steady-state kinetic mechanism of MshC is a Bi Uni Uni Bi Ping Pong mechanism, with ATP binding followed by cysteine binding, release of PPi, binding of GlcN-Ins, followed by the release of Cys-GlcN-Ins and AMP. The steady-state kinetic parameters were determined to be kcat equal to 3.15 s-1, and Km values of 1.8, 0.1, and 0.16 mM for ATP, cysteine, and GlcN-Ins, respectively. A stable bisubstrate analogue, 5'-O-[N-(l-cysteinyl)sulfamonyl]adenosine, exhibits competitive inhibition versus ATP and noncompetitive inhibition versus cysteine, with an inhibition constant of approximately 306 nM versus ATP. Single-turnover reactions of the first and second half reactions were determined using rapid-quench techniques, giving rates of approximately 9.4 and approximately 5.2 s-1, respectively, consistent with the cysteinyl adenylate being a kinetically competent intermediate in the reaction by MshC.

摘要

结核分枝杆菌和放线菌科的许多其他成员会产生硫醇(即1 - D - 肌醇 - 2 -(N - 乙酰 - L - 半胱氨酰)氨基 - 2 - 脱氧 - α - D - 吡喃葡萄糖苷,简称MSH或AcCys - GlcN - Ins),以应对氧化应激和抗生素应激。硫醇的生物合成对于细胞生长至关重要,并且有人提出其通过涉及四种关键酶MshA - MshD的生物合成途径进行。硫醇生物合成酶是抑制剂设计的潜在靶点。以此为长期目标,我们采用稳态和预稳态方法,对重组耻垢分枝杆菌MshC进行了动力学和机理表征。MshC催化GlcN - Ins与半胱氨酸的ATP依赖性缩合反应,形成Cys - GlcN - Ins。初始速度和抑制研究表明,MshC的稳态动力学机制是一种双底物双产物乒乓机制,先是ATP结合,然后是半胱氨酸结合,释放焦磷酸,接着GlcN - Ins结合,随后释放Cys - GlcN - Ins和AMP。稳态动力学参数测定为:催化常数kcat等于3.15 s⁻¹,ATP、半胱氨酸和GlcN - Ins的米氏常数分别为1.8、0.1和0.16 mM。一种稳定的双底物类似物5'-O - [N -(L - 半胱氨酰)磺酰胺基]腺苷,对ATP表现出竞争性抑制,对半胱氨酸表现出非竞争性抑制,对ATP的抑制常数约为3​​06 nM。使用快速淬灭技术测定了前半反应和后半反应的单周转反应速率,分别约为9.4和5.2 s⁻¹,这与半胱氨酰腺苷酸是MshC反应中的动力学活性中间体一致。

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