Division of Biotechnology, College of Life Sciences, Korea University, Seoul, 02841, Republic of Korea.
Department of Clinical Laboratory Science, College of Health Sciences, Catholic University of Pusan, Busan, 46252, Republic of Korea.
Biochem Biophys Res Commun. 2018 Sep 3;503(1):330-337. doi: 10.1016/j.bbrc.2018.06.024. Epub 2018 Jun 11.
Nitroalkane oxidase (NAO) and nitronate monooxygenase (NMO) are two different types of nitroalkane oxidizing flavoenzymes identified in nature. A previous study suggested that the hypothetical protein PA4202 from Pseudomonas aeruginosa PAO1 is NMO and utilizes only anionic nitronates. However, the structural similarity between the PA4202 protein and Streptomyces ansochromogenes NAO has motivated investigation for what features of the two enzymes differentiate between the NAO and NMO activities. Herein, we report the crystal structure of PA4202 in a ternary complex with a neutral nitroethane (NE) and flavin mononucleotide (FMN) cofactor to elucidate the substrate recognition mechanism using a site-directed mutagenesis. The ternary complex structure indicates that the NE is bound with an orientation, which is poised for the proton transfer to H183 (which is the essential first catalytic step with nitroalkanes), and subsequent reactions with FMN. Moreover, a kinetic study reveals that the catalytic reactions of the wild type and H183 mutants PA4202s with nitroalkane substrates may yield the products of hydrogen peroxide and nitrite that are specified to NAO, although they show a low catalytic efficiency. Our results provide the first structure-based molecular insight into the substrate binding property of the hypothetical protein PA4202, including the interactions with neutral nitroalkanes as the substrate.
硝烷氧化酶 (NAO) 和硝酸盐单加氧酶 (NMO) 是两种在自然界中发现的不同类型的硝烷氧化黄素酶。先前的研究表明,铜绿假单胞菌 PAO1 中的假设蛋白 PA4202 是 NMO,仅利用阴离子硝酸盐。然而,PA4202 蛋白与链霉菌属的 NAO 之间的结构相似性促使人们研究区分这两种酶的 NAO 和 NMO 活性的特征。在此,我们报告了 PA4202 与中性硝基乙烷 (NE) 和黄素单核苷酸 (FMN) 辅因子形成的三元复合物的晶体结构,以通过定点突变阐明使用底物识别机制。三元复合物结构表明,NE 以一种取向结合,这种取向有利于质子转移到 H183(这是与硝基烷烃的第一个关键催化步骤),以及与 FMN 的后续反应。此外,动力学研究表明,尽管野生型和 H183 突变体 PA4202s 对硝基烷烃底物的催化反应可能产生指定为 NAO 的过氧化氢和亚硝酸盐产物,但它们表现出低催化效率。我们的结果提供了第一个基于结构的分子见解,了解假设蛋白 PA4202 的底物结合特性,包括与中性硝烷作为底物的相互作用。