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The Lycopene Cyclase CrtY from Pantoea ananatis (Formerly Erwinia uredovora) Catalyzes an FADred-dependent Non-redox Reaction*

机译:Pantoea ananatis(以前称为Erwinia uredovora)的番茄红素环化酶CrtY催化一个依赖FADred的非氧化还原反应*

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摘要

The cyclization of lycopene generates provitamin A carotenoids such as β-carotene and paves the way toward the formation of cyclic xanthophylls playing distinct roles in photosynthesis and as precursors for regulatory molecules in plants and animals. The biochemistry of lycopene cyclization has been enigmatic, as the previously proposed acid-base catalysis conflicted with the possibility of redox catalysis as predicted by the presence of a dinucleotide binding site. We show that reduced FAD is the essential lycopene cyclase (CrtY) cofactor. Using flavin analogs, mass spectrometry, and mutagenesis, evidence was obtained based on which a catalytic mechanism relying on cryptic (net) electron transfer can be refuted. The role of reduced FAD is proposed to reside in the stabilization of a transition state carrying a (partial) positive charge or of a positively charged intermediate via a charge transfer interaction, acid-base catalysis serving as the underlying catalytic principle. Lycopene cyclase, thus, ranks among the novel class of non-redox flavoproteins, such as isopentenyl diphosphate:dimethylallyl diphosphate isomerase type 2 (IDI-2) that requires the reduced form of the cofactor.
机译:番茄红素的环化生成维生素原A类胡萝卜素,例如β-胡萝卜素,为形成环状叶黄素铺平了道路,这些叶黄素在光合作用中起着独特的作用,并作为动植物调节分子的前体。番茄红素环化的生物化学是难以置信的,因为先前提出的酸碱催化与通过二核苷酸结合位点的存在所预测的氧化还原催化的可能性相冲突。我们表明,降低的FAD是必需的番茄红素环化酶(CrtY)辅助因子。使用黄素类似物,质谱和诱变,获得了可以反驳依赖秘密(净)电子转移的催化机制的证据。提出减少的FAD的作用在于通过电荷转移相互作用来稳定带有(部分)正电荷的过渡态或带正电荷的中间体,酸碱催化作用作为基本的催化原理。因此,番茄红素环化酶属于新型非氧化还原黄素蛋白,例如需要还原形式的辅因子的异戊烯基二磷酸:二甲基烯丙基二磷酸异构酶(IDI-2)。

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