Green diatom mutants reveal an intricate biosynthetic pathway of fucoxanthin

岩藻黄质 三角褐指藻 叶黄素 生物 紫黄质 互补 玉米黄质 生物化学 硅藻 突变体 光合作用 植物 类胡萝卜素 叶黄素 基因
作者
Yu Bai,Tianjun Cao,Oliver Dautermann,Paul Buschbeck,Michael Cantrell,Yinjuan Chen,Christopher D. Lein,Xiaohuo Shi,Maxwell A. Ware,Fenghua Yang,Huan Zhang,Lihan Zhang,Graham Peers,Xiaobo Li,Martin Lohr
出处
期刊:Proceedings of the National Academy of Sciences of the United States of America [National Academy of Sciences]
卷期号:119 (38): e2203708119-e2203708119 被引量:105
标识
DOI:10.1073/pnas.2203708119
摘要

Fucoxanthin is a major light-harvesting pigment in ecologically important algae such as diatoms, haptophytes, and brown algae (Phaeophyceae). Therefore, it is a major driver of global primary productivity. Species of these algal groups are brown colored because the high amounts of fucoxanthin bound to the proteins of their photosynthetic machineries enable efficient absorption of green light. While the structure of these fucoxanthin-chlorophyll proteins has recently been resolved, the biosynthetic pathway of fucoxanthin is still unknown. Here, we identified two enzymes central to this pathway by generating corresponding knockout mutants of the diatom Phaeodactylum tricornutum that are green due to the lack of fucoxanthin. Complementation of the mutants with the native genes or orthologs from haptophytes restored fucoxanthin biosynthesis. We propose a complete biosynthetic path to fucoxanthin in diatoms and haptophytes based on the carotenoid intermediates identified in the mutants and in vitro biochemical assays. It is substantially more complex than anticipated and reveals diadinoxanthin metabolism as the central regulatory hub connecting the photoprotective xanthophyll cycle and the formation of fucoxanthin. Moreover, our data show that the pathway evolved by repeated duplication and neofunctionalization of genes for the xanthophyll cycle enzymes violaxanthin de-epoxidase and zeaxanthin epoxidase. Brown algae lack diadinoxanthin and the genes described here and instead use an alternative pathway predicted to involve fewer enzymes. Our work represents a major step forward in elucidating the biosynthesis of fucoxanthin and understanding the evolution, biogenesis, and regulation of the photosynthetic machinery in algae.
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