首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Metal-Ion Effects on the Polarization of Metal-Bound Water and Infrared Vibrational Modes of the Coordinated Metal Center of Mycobacterium tuberculosis Pyrazinamidase via Quantum Mechanical Calculations
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Metal-Ion Effects on the Polarization of Metal-Bound Water and Infrared Vibrational Modes of the Coordinated Metal Center of Mycobacterium tuberculosis Pyrazinamidase via Quantum Mechanical Calculations

机译:金属离子对束缚水极化和结核分枝杆菌吡嗪酰胺酶的协调金属中心的红外振动模式的影响的量子力学计算

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摘要

Mycobacterium tuberculosis pyrazinamidase (PZAse) is a key enzyme to activate the pro-drug pyrazinamide (PZA). PZAse is a metalloenzyme that coordinates in vitro different divalent metal cofactors in the metal coordination site (MCS). Several metals including Co~(2+), Mn~(2+), and Zn~(2+) are able to reactivate the metal-depleted PZAse in vitro. We use quantum mechanical calculations to investigate the Zn~(2+), Fe~(2+), and Mn~(2+) metal cofactor effects on the local MCS structure, metal—ligand or metal—residue binding energy, and charge distribution. Results suggest that the major metal-dependent changes occur in the metal—ligand binding energy and charge distribution. Zn~(2+) shows the highest binding energy to the ligands (residues). In addition, Zn~(2+) and Mn~(2+) within the PZAse MCS highly polarize the O-H bond of coordinated water molecules in comparison with Fe~(2+). This suggests that the coordination of Zn~(2+) or Mn~(2+) to the PZAse protein facilitates the deprotonation of coordinated water to generate a nucleophile for catalysis as in carboxypeptidase A. Because metal ion binding is relevant to enzymatic reaction, identification of the metal binding event is important. The infrared vibrational mode shift of the C=Nε (His) bond from the M. tuberculosis MCS is the best IR probe, to metal complexation.
机译:结核分枝杆菌吡嗪酰胺酶(PZAse)是激活前药吡嗪酰胺(PZA)的关键酶。 PZAse是一种金属酶,可以在体外协调金属配位位点(MCS)中的不同二价金属辅因子。包括Co〜(2 +),Mn〜(2+)和Zn〜(2+)在内的几种金属能够在体外重新活化贫金属的PZAse。我们使用量子力学计算来研究Zn〜(2 +),Fe〜(2+)和Mn〜(2+)金属辅因子对局部MCS结构,金属-配体或金属-残基结合能以及电荷的影响分配。结果表明,主要的金属依赖性变化发生在金属中-配体结合能和电荷分布。 Zn〜(2+)对配体(残基)的结合能最高。另外,与Fe〜(2+)相比,PZAse MCS中的Zn〜(2+)和Mn〜(2+)使配位水分子的O-H键高度极化。这表明Zn〜(2+)或Mn〜(2+)与PZAse蛋白的配位促进了配位水的去质子化,从而产生了亲核试剂,就像在羧肽酶A中一样。由于金属离子的结合与酶促反应有关,识别金属结合事件很重要。 C =Nε(His)键从结核分枝杆菌MCS到金属络合物的红外振动模式转变是最好的IR探针。

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