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Elucidation of the biosynthesis of the methane catalyst coenzyme F430.

机译:阐明甲烷催化剂辅酶F430的生物合成。

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摘要

Methane biogenesis in methanogens is mediated by methyl-coenzyme M reductase, an enzyme that is also responsible for the utilization of methane through anaerobic methane oxidation. The enzyme uses an ancillary factor called coenzyme F430, a nickel-containing modified tetrapyrrole that promotes catalysis through a methyl radical/Ni(II)-thiolate intermediate. However, it is unclear how coenzyme F430 is synthesized from the common primogenitor uroporphyrinogen III, incorporating 11 steric centres into the macrocycle, although the pathway must involve chelation, amidation, macrocyclic ring reduction, lactamization and carbocyclic ring formation. Here we identify the proteins that catalyse the biosynthesis of coenzyme F430 from sirohydrochlorin, termed CfbA–CfbE, and demonstrate their activity. The research completes our understanding of how the repertoire of tetrapyrrole-based pigments are constructed, permitting the development of recombinant systems to use these metalloprosthetic groups more widely.
机译:产甲烷菌中甲烷的生物发生是由甲基辅酶M还原酶介导的,该酶还负责通过厌氧甲烷氧化利用甲烷。该酶使用一种称为辅酶F430的辅助因子,它是一种含镍的改性四吡咯,可通过甲基自由基/ Ni(II)-硫醇盐中间体促进催化作用。但是,尚不清楚如何从常见的原发性尿卟啉原III合成辅酶F430,将大环中的11个空间中心并入,尽管该途径必须涉及螯合,酰胺化,大环还原,内酰胺化和碳环形成。在这里,我们确定了可催化由西罗盐酸素合成辅酶F430的蛋白质,称为CfbA–CfbE,并证明了它们的活性。该研究使我们对基于四吡咯的颜料库的构建方式有了更深入的了解,从而使重组体系的开发可以更广泛地使用这些金属茂基团。

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