Department of Biochemistry, Jacobs School of Medicine and Biomedical Science, University at Buffalo, Buffalo, New York, USA.
Department of Biochemistry, Jacobs School of Medicine and Biomedical Science, University at Buffalo, Buffalo, New York, USA.
J Biol Chem. 2021 Nov;297(5):101287. doi: 10.1016/j.jbc.2021.101287. Epub 2021 Oct 8.
Cytochromes P450 are versatile enzymes that function in endobiotic and xenobiotic metabolism and undergo meaningful structural changes that relate to their function. However, the way in which conformational changes inform the specific recognition of the substrate is often unknown. Here, we demonstrate the utility of fluorine (F)-NMR spectroscopy to monitor structural changes in CYP121A1, an essential enzyme from Mycobacterium tuberculosis. CYP121A1 forms functional dimers that catalyze the phenol-coupling reaction of the dipeptide dicyclotyrosine. The thiol-reactive compound 3-bromo-1,1,1-trifluoroacetone was used to label an S171C mutation of the enzyme FG loop, which is located adjacent to the homodimer interface. Substrate titrations and inhibitor-bound F-NMR spectra indicate that ligand binding reduces conformational heterogeneity at the FG loop in both the dimer and in an engineered monomer of CYP121A1. However, only the dimer was found to promote a substrate-bound conformation that was preexisting in the substrate-free spectra, thus confirming a role for the dimer interface in dicyclotyrosine recognition. Moreover, F-NMR spectra in the presence of substrate analogs indicate the hydrogen-bonding feature of the dipeptide aromatic side chain as a dicyclotyrosine specificity criterion. This study demonstrates the utility of F-NMR as applied to a multimeric cytochrome P450, while also revealing mechanistic insights for an essential M. tuberculosis enzyme.
细胞色素 P450 是多功能酶,参与内源性和外源性代谢物的代谢,并发生与功能相关的有意义的结构变化。然而,构象变化与底物特异性识别之间的关系通常是未知的。在这里,我们展示了氟(F)-NMR 光谱在监测结核分枝杆菌必需酶 CYP121A1 结构变化方面的应用。CYP121A1 形成功能性二聚体,催化二肽二环酪氨酸的酚偶联反应。使用硫醇反应性化合物 3-溴-1,1,1-三氟丙酮标记位于同源二聚体界面附近的酶 FG 环上的 S171C 突变。底物滴定和抑制剂结合的 F-NMR 谱表明,配体结合降低了 FG 环在二聚体和 CYP121A1 工程单体中的构象异质性。然而,只有二聚体被发现促进了在底物游离光谱中预先存在的底物结合构象,从而证实了二聚体界面在二环酪氨酸识别中的作用。此外,在存在底物类似物的情况下的 F-NMR 谱表明二肽芳香侧链的氢键特征是二环酪氨酸特异性标准。本研究展示了 F-NMR 在应用于多聚细胞色素 P450 方面的实用性,同时也揭示了结核分枝杆菌必需酶的机制见解。