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由叶绿素代谢平衡调控的叶绿素合成与降解的遗传分析

Genetic analysis of chlorophyll synthesis and degradation regulated by BALANCE of CHLOROPHYLL METABOLISM.

作者信息

Yamatani Hiroshi, Ito Takeshi, Nishimura Kenji, Yamada Tetsuya, Sakamoto Wataru, Kusaba Makoto

机构信息

Graduate School of Integrated Sciences for Life, Hiroshima University, Hiroshima 739-8526, Japan.

Institute of Plant Science and Resources, Okayama University, Kurashiki 710-0046, Japan.

出版信息

Plant Physiol. 2022 May 3;189(1):419-432. doi: 10.1093/plphys/kiac059.

Abstract

Chlorophyll (Chl) serves a number of essential functions, capturing and converting light energy as a component of photosystem supercomplexes. Chl degradation during leaf senescence is also required for adequate degeneration of chloroplasts and salvaging of nutrients from senescent leaves. In this study, we performed genetic analysis to determine the functions of BALANCE of CHLOROPHYLL METABOLISM1 (BCM1) and BCM2, which control Chl levels by regulating synthesis and degradation, and STAY-GREEN (SGR)1 (also known as NON-YELLOWING1 [NYE1]) and SGR2, which encode Mg-dechelatase and catalyze Chl a degradation in Arabidopsis (Arabidopsis thaliana). Analysis of bcm1 bcm2 revealed that both BCM1 and BCM2 are involved in the regulation of Chl levels in presenescent leaves and Chl degradation in senescing leaves. Analysis of bcm1 bcm2 nye1 nye2 suggested that BCMs repress Chl-degrading activity in both presenescent and senescing leaves by regulating SGR activity. Furthermore, transactivation analysis and chromatin immunoprecipitation (ChIP) assay revealed that GOLDEN2-LIKE1 (GLK1), a central transcription factor regulating the expression of genes encoding photosystem-related proteins, such as light-harvesting Chl a/b-binding proteins (LHCPs), directly regulates the transcription of BCM1. LHCPs are stabilized by Chl binding, suggesting that GLKs control the amount of LHCP through transcriptional and post-translational regulation via BCM-mediated Chl-level regulation. Meanwhile, we generated a mutant of the BCM ortholog in lettuce (Lactuca sativa) by genome editing and found that it showed an early yellowing phenotype, but only a slight reduction in Chl in presenescent leaves. Thus, this study revealed a conserved but slightly diversified regulation of Chl and LHCP levels via the GLK-BCM pathway in eudicots.

摘要

叶绿素(Chl)具有多种重要功能,作为光系统超复合体的组成部分捕获和转换光能。叶片衰老过程中的Chl降解对于叶绿体的充分退化以及从衰老叶片中回收养分也是必需的。在本研究中,我们进行了遗传分析,以确定叶绿素代谢平衡1(BCM1)和BCM2的功能,它们通过调节合成和降解来控制Chl水平,以及保持绿色(SGR)1(也称为不黄化1 [NYE1])和SGR2,它们编码镁脱螯合酶并催化拟南芥(Arabidopsis thaliana)中的Chl a降解。对bcm1 bcm2的分析表明,BCM1和BCM2都参与衰老前叶片中Chl水平的调节以及衰老叶片中Chl的降解。对bcm1 bcm2 nye1 nye2的分析表明,BCM通过调节SGR活性抑制衰老前和衰老叶片中的Chl降解活性。此外,反式激活分析和染色质免疫沉淀(ChIP)分析表明,黄金2样1(GLK1)是一种调节编码光系统相关蛋白(如捕光Chl a/b结合蛋白[LHCPs])的基因表达的核心转录因子,直接调节BCM1的转录。LHCPs通过Chl结合而稳定,这表明GLKs通过BCM介导的Chl水平调节,通过转录和翻译后调节来控制LHCP的量。同时,我们通过基因组编辑产生了生菜(Lactuca sativa)中BCM直系同源基因的突变体,发现它表现出早期黄化表型,但衰老前叶片中的Chl仅略有减少。因此,本研究揭示了在双子叶植物中通过GLK-BCM途径对Chl和LHCP水平进行保守但略有差异的调节。

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