Álvarez Lucía, Lewis-Ballester Ariel, Roitberg Adrián, Estrin Darío A, Yeh Syun-Ru, Marti Marcelo A, Capece Luciana
Dto. de Química Inorgánica, Analítica y Química Física, Fac. de Ciencias Exactas y Naturales, Universidad de Buenos Aires , Buenos Aires C1428EGA, Argentina.
INQUIMAE-CONICET , Buenos Aires C1428EGA, Argentina.
Biochemistry. 2016 May 17;55(19):2785-93. doi: 10.1021/acs.biochem.6b00077. Epub 2016 May 6.
Human indoleamine 2,3-dioxygenase catalyzes the oxidative cleavage of tryptophan to N-formyl kynurenine, the initial and rate-limiting step in the kynurenine pathway. Additionally, this enzyme has been identified as a possible target for cancer therapy. A 20-amino acid protein segment (the JK loop), which connects the J and K helices, was not resolved in the reported hIDO crystal structure. Previous studies have shown that this loop undergoes structural rearrangement upon substrate binding. In this work, we apply a combination of replica exchange molecular dynamics simulations and site-directed mutagenesis experiments to characterize the structure and dynamics of this protein region. Our simulations show that the JK loop can be divided into two regions: the first region (JK loop(C)) displays specific and well-defined conformations and is within hydrogen bonding distance of the substrate, while the second region (JK loop(N)) is highly disordered and exposed to the solvent. The peculiar flexible nature of JK loop(N) suggests that it may function as a target for post-translational modifications and/or a mediator for protein-protein interactions. In contrast, hydrogen bonding interactions are observed between the substrate and Thr379 in the highly conserved "GTGG" motif of JK loop(C), thereby anchoring JK loop(C) in a closed conformation, which secures the appropriate substrate binding mode for catalysis. Site-directed mutagenesis experiments confirm the key role of this residue, highlighting the importance of the JK loop(C) conformation in regulating the enzymatic activity. Furthermore, the existence of the partially and totally open conformations in the substrate-free form suggests a role of JK loop(C) in controlling substrate and product dynamics.
人类吲哚胺2,3-双加氧酶催化色氨酸氧化裂解生成N-甲酰基犬尿氨酸,这是犬尿氨酸途径的起始步骤和限速步骤。此外,该酶已被确定为癌症治疗的一个可能靶点。连接J螺旋和K螺旋的一个20个氨基酸的蛋白质片段(JK环)在已报道的hIDO晶体结构中未解析出来。先前的研究表明,该环在底物结合时会发生结构重排。在这项工作中,我们结合使用副本交换分子动力学模拟和定点诱变实验来表征该蛋白质区域的结构和动力学。我们的模拟表明,JK环可分为两个区域:第一个区域(JK环(C))呈现特定且明确的构象,并且处于底物的氢键距离内,而第二个区域(JK环(N))高度无序且暴露于溶剂中。JK环(N)独特的柔性性质表明,它可能作为翻译后修饰的靶点和/或蛋白质-蛋白质相互作用的介质。相比之下,在JK环(C)高度保守的“GTGG”基序中,底物与Thr379之间观察到氢键相互作用,从而将JK环(C)锚定在封闭构象中,这确保了催化作用的适当底物结合模式。定点诱变实验证实了该残基的关键作用,突出了JK环(C)构象在调节酶活性中的重要性。此外,无底物形式中部分开放和完全开放构象的存在表明JK环(C)在控制底物和产物动力学方面发挥作用。