O'Leary Seán E, Jurgenson Christopher T, Ealick Steven E, Begley Tadhg P
Department of Chemistry and Chemical Biology, Cornell University, Ithaca, New York 14853-1301, USA.
Biochemistry. 2008 Nov 4;47(44):11606-15. doi: 10.1021/bi8013664. Epub 2008 Oct 9.
The kinetic pathway of CysM, a cysteine synthase from Mycobacterium tuberculosis, was studied by transient-state kinetic techniques. The expression of which is upregulated under conditions of oxidative stress. This enzyme exhibits extensive homology with the B-isozymes of the well-studied O-acetylserine sulfhydrylase family and employs a similar chemical mechanism involving a stable alpha-aminoacrylate intermediate. However, we show that specificity of CysM for its amino acid substrate is more than 500-fold greater for O-phospho-L-serine than for O-acetyl-L-serine, suggesting that O-phospho-L-serine is the likely substrate in vivo. We also investigated the kinetics of the carbon-sulfur bond-forming reaction between the CysM-bound alpha-aminoacrylate intermediate and the thiocarboxylated sulfur carrier protein, CysO-COSH. The specificity of CysM for this physiological sulfide equivalent is more than 3 orders of magnitude greater than that for bisulfide. Moreover, the kinetics of this latter reaction are limited by association of the proteins, while the reaction with bisulfide is consistent with a rapid equilibrium binding model. We interpret this finding to suggest that the CysM active site with the bound aminoacrylate intermediate is protected from solvent and that binding of CysO-COSH produces a conformational change allowing rapid sulfur transfer. This study represents the first detailed kinetic characterization of sulfide transfer from a sulfide carrier protein.
利用瞬态动力学技术研究了结核分枝杆菌半胱氨酸合酶CysM的动力学途径。在氧化应激条件下,其表达上调。该酶与研究充分的O-乙酰丝氨酸巯基化酶家族的B-同工酶具有广泛的同源性,并采用类似的化学机制,涉及稳定的α-氨基丙烯酸酯中间体。然而,我们发现CysM对其氨基酸底物的特异性,对于O-磷酸-L-丝氨酸比对O-乙酰-L-丝氨酸高500倍以上,这表明O-磷酸-L-丝氨酸可能是体内的底物。我们还研究了CysM结合的α-氨基丙烯酸酯中间体与硫代羧化硫载体蛋白CysO-COSH之间形成碳-硫键反应的动力学。CysM对这种生理性硫化物等价物的特异性比对二硫化物高3个数量级以上。此外,后一反应的动力学受蛋白质结合的限制,而与二硫化物的反应符合快速平衡结合模型。我们将这一发现解释为表明结合了氨基丙烯酸酯中间体的CysM活性位点受到溶剂保护,并且CysO-COSH的结合产生构象变化,从而允许快速的硫转移。这项研究代表了对来自硫化物载体蛋白的硫化物转移的首次详细动力学表征。