Molybdenum and Tungsten Cofactors and the Reactions They Catalyze.

Martin L Kirk, Khadanand Kc
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引用次数: 6

Abstract

The last 20 years have seen a dramatic increase in our mechanistic understanding of the reactions catalyzed by pyranopterin Mo and W enzymes. These enzymes possess a unique cofactor (Moco) that contains a novel ligand in bioinorganic chemistry, the pyranopterin ene-1,2-dithiolate. A synopsis of Moco biosynthesis and structure is presented, along with our current understanding of the role Moco plays in enzymatic catalysis. Oxygen atom transfer (OAT) reactivity is discussed in terms of breaking strong metal-oxo bonds and the mechanism of OAT catalyzed by enzymes of the sulfite oxidase (SO) family that possess dioxo Mo(VI) active sites. OAT reactivity is also discussed in members of the dimethyl sulfoxide (DMSO) reductase family, which possess des-oxo Mo(IV) sites. Finally, we reveal what is known about hydride transfer reactivity in xanthine oxidase (XO) family enzymes and the formate dehydrogenases. The formal hydride transfer reactivity catalyzed by xanthine oxidase family enzymes is complex and cleaves substrate C-H bonds using a mechanism that is distinct from monooxygenases. The chapter primarily highlights developments in the field that have occurred since ~2000, which have contributed to our collective structural and mechanistic understanding of the three canonical pyranopterin Mo enzymes families: XO, SO, and DMSO reductase.

钼和钨辅因子及其催化的反应。
在过去的20年里,我们对pyranopterin Mo和W酶催化反应的机理理解有了显著的提高。这些酶具有独特的辅助因子(Moco),它含有一种生物无机化学中的新型配体,pyranopterin -1,2-二硫酸酯。简要介绍了Moco的生物合成和结构,以及我们目前对Moco在酶催化中的作用的了解。从破坏强金属-氧键的角度讨论了氧原子转移(OAT)反应活性,并讨论了具有二氧Mo(VI)活性位点的亚硫酸盐氧化酶(SO)家族酶催化OAT反应的机理。对二甲基亚砜(DMSO)还原酶家族成员的OAT反应性也进行了讨论,这些成员具有去氧Mo(IV)位点。最后,我们揭示了黄嘌呤氧化酶(XO)家族酶和甲酸脱氢酶的氢化物转移反应性。由黄嘌呤氧化酶家族酶催化的形式氢化物转移反应性是复杂的,并且使用与单加氧酶不同的机制切割底物的C-H键。本章主要强调了自2000年以来该领域的发展,这些发展有助于我们对三个典型的pyranopterin Mo酶家族:XO, SO和DMSO还原酶的结构和机制的理解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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