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鉴定三角褐指藻中非光化学猝灭逆转的相关基因。

Identifying the gene responsible for non-photochemical quenching reversal in Phaeodactylum tricornutum.

作者信息

Ware Maxwell A, Paton Andrew J, Bai Yu, Kassaw Tessema, Lohr Martin, Peers Graham

机构信息

Department of Biology, Colorado State University, Fort Collins, Colorado, 80523, USA.

Fachbereich Physik, Freie Universität Berlin, Berlin, 14195, Germany.

出版信息

Plant J. 2024 Dec;120(5):2113-2126. doi: 10.1111/tpj.17104. Epub 2024 Oct 30.

Abstract

Algae such as diatoms and haptophytes have distinct photosynthetic pigments from plants, including a novel set of carotenoids. This includes a primary xanthophyll cycle comprised of diadinoxanthin and its de-epoxidation product diatoxanthin that enables the switch between light harvesting and non-photochemical quenching (NPQ)-mediated dissipation of light energy. The enzyme responsible for the reversal of this cycle was previously unknown. Here, we identified zeaxanthin epoxidase 3 (ZEP3) from Phaeodactylum tricornutum as the candidate diatoxanthin epoxidase. Knocking out the ZEP3 gene caused a loss of rapidly reversible NPQ following saturating light exposure. This correlated with the maintenance of high concentrations of diatoxanthin during recovery in low light. Xanthophyll cycling and NPQ relaxation were restored via complementation of the wild-type ZEP3 gene. The zep3 knockout strains showed reduced photosynthetic rates at higher light fluxes and reduced specific growth rate in variable light regimes, likely due to the mutant strains becoming locked in a light energy dissipation state. We were able to toggle the level of NPQ capacity in a time and dose dependent manner by placing the ZEP3 gene under the control of a β-estradiol inducible promoter. Identification of this gene provides a deeper understanding of the diversification of photosynthetic control in algae compared to plants and suggests a potential target to improve the productivity of industrial-scale cultures.

摘要

硅藻和定鞭藻等藻类具有与植物不同的光合色素,包括一组新的类胡萝卜素。这包括一个由二环氧甲藻黄素及其脱环氧化产物硅藻黄素组成的主要叶黄素循环,该循环能够在光能捕获和非光化学猝灭(NPQ)介导的光能耗散之间进行转换。此前,负责该循环逆转的酶尚不清楚。在这里,我们鉴定出三角褐指藻中的玉米黄质环氧化酶3(ZEP3)是候选的硅藻黄素环氧化酶。敲除ZEP3基因会导致在饱和光照后快速可逆的NPQ丧失。这与在弱光恢复期间高浓度硅藻黄素的维持相关。通过野生型ZEP3基因的互补,叶黄素循环和NPQ弛豫得以恢复。zep3敲除菌株在较高光通量下光合速率降低,在可变光照条件下比生长速率降低,这可能是由于突变菌株陷入了光能耗散状态。通过将ZEP3基因置于β-雌二醇诱导型启动子的控制下,我们能够以时间和剂量依赖的方式调节NPQ能力水平。该基因的鉴定为深入了解藻类与植物相比光合控制的多样性提供了帮助,并提示了一个提高工业规模培养物生产力的潜在靶点。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7664/11629738/3705dadec9d3/TPJ-120-2113-g003.jpg

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