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拟南芥中二醇环裂解双加氧酶LigB与产甜菜红素植物中3,4-二羟基苯丙氨酸双加氧酶的比较分析

Comparative Analysis of the Extradiol Ring-Cleavage Dioxygenase LigB from Arabidopsis and 3,4-Dihydroxyphenylalanine Dioxygenase from Betalain-Producing Plants.

作者信息

Kasei Akane, Watanabe Hanako, Ishiduka Natsumi, Noda Kyoko, Murata Masatsune, Sakuta Masaaki

机构信息

Department of Biological Sciences, Ochanomizu University, 2-1-1 Otsuka, Bunkyo-ku, Tokyo, 112-8610 Japan.

Department of Nutrition and Food Science, Ochanomizu University, 2-1-1 Otsuka, Bunkyo-ku, Tokyo, 112-8610 Japan.

出版信息

Plant Cell Physiol. 2021 Sep 24;62(4):732-740. doi: 10.1093/pcp/pcab031.

Abstract

Diverse arrays of naturally occurring compounds in plants are synthesized by specialized metabolic enzymes, many of which are distributed taxonomically. Although anthocyanin pigments are widely distributed and ubiquitous, betalains have replaced anthocyanins in most families in Caryophyllales. Anthocyanins and betalains never occur together in the same plant. The formation of betalamic acid, catalyzed by 3,4-dihydroxyphenylalanine (DOPA) 4,5-extradiol dioxygenase (DOD), is a key step in betalain biosynthesis. DODs in betalain-producing plants are coded by LigB genes, homologs of which have been identified in a wide range of higher plant orders, as well as in certain fungi and bacteria. Two classes of LigB homologs have been reported: those found in anthocyanin-producing species and those found in betalain-producing species, which contain DOD. To gain insight into the evolution of specialized metabolic enzymes involved in betalain biosynthesis, we performed a comparative biochemical analysis of Arabidopsis LigB, an extradiol ring-cleavage dioxygenase in anthocyanin-producing Arabidopsis and Phytolacca DOD1 of betalain-producing Phytolacca americana. We show that Arabidopsis LigB catalyzes 2,3-extradiol cleavage of DOPA to synthesize muscaflavin, whereas Phytolacca DOD1 converts DOPA to betalamic acid via 4,5-extradiol cleavage. Arabidopsis LigB also converts caffeic acid, a ubiquitous phenolic compound in higher plants, to iso-arabidopic acid in vitro via 2,3-extradiol cleavage of the aromatic ring. Amino-acid substitution in Arabidopsis LigB and Phytolacca DOD1 led to variable extradiol ring-cleavage function, supporting the suggestion that catalytic promiscuity serves as a starting point for the divergence of new enzymatic activities.

摘要

植物中各种各样的天然化合物是由专门的代谢酶合成的,其中许多酶按分类学分布。尽管花青素色素分布广泛且普遍存在,但在石竹目大多数科中,甜菜色素已取代了花青素。花青素和甜菜色素从不共存于同一植物中。由3,4 - 二羟基苯丙氨酸(DOPA)4,5 - 外二醇双加氧酶(DOD)催化形成甜菜醛氨酸是甜菜色素生物合成的关键步骤。产生甜菜色素的植物中的DOD由LigB基因编码,其同源物已在广泛的高等植物目以及某些真菌和细菌中被鉴定出来。已报道了两类LigB同源物:一类存在于产生花青素的物种中,另一类存在于含有DOD的产生甜菜色素的物种中。为了深入了解参与甜菜色素生物合成的专门代谢酶的进化,我们对拟南芥LigB(一种在产生花青素的拟南芥中参与外二醇环裂解的双加氧酶)和产生甜菜色素的商陆美洲商陆的商陆DOD1进行了比较生化分析。我们发现拟南芥LigB催化DOPA的2,3 - 外二醇裂解以合成蝇蕈黄素,而商陆DOD1通过4,5 - 外二醇裂解将DOPA转化为甜菜醛氨酸。拟南芥LigB在体外还通过芳香环的2,3 - 外二醇裂解将高等植物中普遍存在的酚类化合物咖啡酸转化为异阿拉伯芥酸。拟南芥LigB和商陆DOD1中的氨基酸取代导致了可变的外二醇环裂解功能,支持了催化多效性作为新酶活性分化起点的观点。

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