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From the Eukaryotic Molybdenum Cofactor Biosynthesis to the Moonlighting Enzyme mARC

钼辅因子 亚硫酸盐氧化酶 化学 醛氧化酶 硝酸还原酶 还原酶 氧化还原酶 生物化学 辅因子 生物合成 立体化学 黄嘌呤氧化酶
作者
Manuel Tejada‐Jiménez,Alejandro Chamizo‐Ampudia,Victoria Calatrava,Aurora Galván,Emilio Muñoz Fernández,Ángel Llamas
出处
期刊:Molecules [Multidisciplinary Digital Publishing Institute]
卷期号:23 (12): 3287-3287 被引量:38
标识
DOI:10.3390/molecules23123287
摘要

All eukaryotic molybdenum (Mo) enzymes contain in their active site a Mo Cofactor (Moco), which is formed by a tricyclic pyranopterin with a dithiolene chelating the Mo atom. Here, the eukaryotic Moco biosynthetic pathway and the eukaryotic Moco enzymes are overviewed, including nitrate reductase (NR), sulfite oxidase, xanthine oxidoreductase, aldehyde oxidase, and the last one discovered, the moonlighting enzyme mitochondrial Amidoxime Reducing Component (mARC). The mARC enzymes catalyze the reduction of hydroxylated compounds, mostly N-hydroxylated (NHC), but as well of nitrite to nitric oxide, a second messenger. mARC shows a broad spectrum of NHC as substrates, some are prodrugs containing an amidoxime structure, some are mutagens, such as 6-hydroxylaminepurine and some others, which most probably will be discovered soon. Interestingly, all known mARC need the reducing power supplied by different partners. For the NHC reduction, mARC uses cytochrome b5 and cytochrome b5 reductase, however for the nitrite reduction, plant mARC uses NR. Despite the functional importance of mARC enzymatic reactions, the structural mechanism of its Moco-mediated catalysis is starting to be revealed. We propose and compare the mARC catalytic mechanism of nitrite versus NHC reduction. By using the recently resolved structure of a prokaryotic MOSC enzyme, from the mARC protein family, we have modeled an in silico three-dimensional structure of a eukaryotic homologue.
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