首页> 外文OA文献 >Crystal Structure of Tetrameric Homoisocitrate Dehydrogenase from an Extreme Thermophile, Thermus thermophilus: Involvement of Hydrophobic Dimer-Dimer Interaction in Extremely High Thermotolerance
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Crystal Structure of Tetrameric Homoisocitrate Dehydrogenase from an Extreme Thermophile, Thermus thermophilus: Involvement of Hydrophobic Dimer-Dimer Interaction in Extremely High Thermotolerance

机译:极端嗜热菌,嗜热栖​​热菌的四聚体同柠檬酸脱氢酶的晶体结构:疏水二聚体-二聚体相互作用在极高耐热性中的参与。

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摘要

The crystal structure of homoisocitrate dehydrogenase involved in lysine biosynthesis from Thermus thermophilus (TtHICDH) was determined at 1.85-Å resolution. Arg85, which was shown to be a determinant for substrate specificity in our previous study, is positioned close to the putative substrate binding site and interacts with Glu122. Glu122 is highly conserved in the equivalent position in the primary sequence of ICDH and archaeal 3-isopropylmalate dehydrogenase (IPMDH) but interacts with main- and side-chain atoms in the same domain in those paralogs. In addition, a conserved Tyr residue (Tyr125 in TtHICDH) which extends its side chain toward a substrate and thus has a catalytic function in the related β-decarboxylating dehydrogenases, is flipped out of the substrate-binding site. These results suggest the possibility that the conformation of the region containing Glu122-Tyr125 is changed upon substrate binding in TtHICDH. The crystal structure of TtHICDH also reveals that the arm region is involved in tetramer formation via hydrophobic interactions and might be responsible for the high thermotolerance. Mutation of Val135, located in the dimer-dimer interface and involved in the hydrophobic interaction, to Met alters the enzyme to a dimer (probably due to steric perturbation) and markedly decreases the thermal inactivation temperature. Both the crystal structure and the mutation analysis indicate that tetramer formation is involved in the extremely high thermotolerance of TtHICDH.
机译:以1.85-Å的分辨率测定了参与嗜热栖热菌(TtHICDH)赖氨酸生物合成的均异柠檬酸脱氢酶的晶体结构。 Arg85在我们先前的研究中显示是底物特异性的决定因素,它位于假定的底物结合位点附近并与Glu122相互作用。 Glu122在ICDH和古细菌3-异丙基苹果酸脱氢酶(IPMDH)的一级序列中的等效位置高度保守,但在那些旁系同源物的同一结构域中与主链和侧链原子相互作用。另外,保守的Tyr残基(在TtHICDH中为Tyr125)延伸至其底物侧链,因此在相关的β-脱羧脱氢酶中具有催化功能,它被从底物结合位点翻转出来。这些结果表明,在TtHICDH中结合底物后,含有Glu122-Tyr125的区域的构象可能发生改变。 TtHICDH的晶体结构还表明,臂区通过疏水相互作用参与四聚体的形成,并可能是高耐热性的原因。位于二聚体-二聚体界面并参与疏水相互作用的Val135突变为Met,使酶转变为二聚体(可能是由于空间扰动),并显着降低了热失活温度。晶体结构和突变分析均表明四聚体的形成与TtHICDH的极高耐热性有关。

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