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嗜热栖热菌3-异丙基苹果酸脱氢酶活性位点残基的双重作用:化学催化和结构域闭合

Dual Role of the Active Site Residues of Thermus thermophilus 3-Isopropylmalate Dehydrogenase: Chemical Catalysis and Domain Closure.

作者信息

Gráczer Éva, Szimler Tamás, Garamszegi Anita, Konarev Petr V, Lábas Anikó, Oláh Julianna, Palló Anna, Svergun Dmitri I, Merli Angelo, Závodszky Péter, Weiss Manfred S, Vas Mária

机构信息

Institute of Enzymology, Research Centre for Natural Sciences, Hungarian Academy of Sciences , Magyar tudósok krt. 2., H-1117 Budapest, Hungary.

European Molecular Biology Laboratory , Hamburg Outstation, Notkestrasse 85, 22603 Hamburg, Germany.

出版信息

Biochemistry. 2016 Jan 26;55(3):560-74. doi: 10.1021/acs.biochem.5b00839. Epub 2016 Jan 14.

Abstract

The key active site residues K185, Y139, D217, D241, D245, and N102 of Thermus thermophilus 3-isopropylmalate dehydrogenase (Tt-IPMDH) have been replaced, one by one, with Ala. A drastic decrease in the kcat value (0.06% compared to that of the wild-type enzyme) has been observed for the K185A and D241A mutants. Similarly, the catalytic interactions (Km values) of these two mutants with the substrate IPM are weakened by more than 1 order of magnitude. The other mutants retained some (1-13%) of the catalytic activity of the wild-type enzyme and do not exhibit appreciable changes in the substrate Km values. The pH dependence of the wild-type enzyme activity (pK = 7.4) is shifted toward higher values for mutants K185A and D241A (pK values of 8.4 and 8.5, respectively). For the other mutants, smaller changes have been observed. Consequently, K185 and D241 may constitute a proton relay system that can assist in the abstraction of a proton from the OH group of IPM during catalysis. Molecular dynamics simulations provide strong support for the neutral character of K185 in the resting state of the enzyme, which implies that K185 abstracts the proton from the substrate and D241 assists the process via electrostatic interactions with K185. Quantum mechanics/molecular mechanics calculations revealed a significant increase in the activation energy of the hydride transfer of the redox step for both D217A and D241A mutants. Crystal structure analysis of the molecular contacts of the investigated residues in the enzyme-substrate complex revealed their additional importance (in particular that of K185, D217, and D241) in stabilizing the domain-closed active conformation. In accordance with this, small-angle X-ray scattering measurements indicated the complete absence of domain closure in the cases of D217A and D241A mutants, while only partial domain closure could be detected for the other mutants. This suggests that the same residues that are important for catalysis are also essential for inducing domain closure.

摘要

嗜热栖热菌3-异丙基苹果酸脱氢酶(Tt-IPMDH)的关键活性位点残基K185、Y139、D217、D241、D245和N102已逐个被丙氨酸取代。对于K185A和D241A突变体,观察到kcat值急剧下降(与野生型酶相比为0.06%)。同样,这两个突变体与底物IPM的催化相互作用(Km值)减弱了1个多数量级。其他突变体保留了野生型酶1% - 13%的催化活性,并且在底物Km值上没有表现出明显变化。野生型酶活性的pH依赖性(pK = 7.4)对于K185A和D241A突变体向更高值偏移(pK值分别为8.4和8.5)。对于其他突变体,观察到的变化较小。因此,K185和D241可能构成一个质子传递系统,在催化过程中有助于从IPM的OH基团中提取一个质子。分子动力学模拟为酶静止状态下K185的中性特征提供了有力支持,这意味着K185从底物中提取质子,而D241通过与K185的静电相互作用协助这一过程。量子力学/分子力学计算表明,D217A和D241A突变体氧化还原步骤的氢化物转移活化能显著增加。酶 - 底物复合物中所研究残基的分子接触的晶体结构分析揭示了它们在稳定结构域封闭的活性构象方面的额外重要性(特别是K185,D217和D241)。据此,小角X射线散射测量表明,在D217A和D241A突变体的情况下完全没有结构域封闭,而对于其他突变体只能检测到部分结构域封闭。这表明对催化重要的相同残基对于诱导结构域封闭也是必不可少的。

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