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WRKY45 转录因子在黑暗诱导的叶片衰老过程中的代谢调节中的意义。

The significance of WRKY45 transcription factor in metabolic adjustments during dark-induced leaf senescence.

机构信息

Departamento de Biologia Vegetal, Universidade Federal de Viçosa, Viçosa, Minas Gerais, Brazil.

Instituto de Educação, Agricultura e Ambiente, Universidade Federal do Amazonas, Humaitá, Amazonas, Brazil.

出版信息

Plant Cell Environ. 2022 Sep;45(9):2682-2695. doi: 10.1111/pce.14393. Epub 2022 Jul 25.

DOI:10.1111/pce.14393
PMID:35818668
Abstract

Plants are constantly exposed to environmental changes that affect their performance. Metabolic adjustments are crucial to controlling energy homoeostasis and plant survival, particularly during stress. Under carbon starvation, coordinated reprogramming is initiated to adjust metabolic processes, which culminate in premature senescence. Notwithstanding, the regulatory networks that modulate transcriptional control during low energy remain poorly understood. Here, we show that the WRKY45 transcription factor is highly induced during both developmental and dark-induced senescence. The overexpression of Arabidopsis WRKY45 resulted in an early senescence phenotype characterized by a reduction of maximum photochemical efficiency of photosystem II and chlorophyll levels in the later stages of darkness. The detailed metabolic characterization showed significant changes in amino acids coupled with the accumulation of organic acids in WRKY45 overexpression lines during dark-induced senescence. Furthermore, the markedly upregulation of alternative oxidase (AOX1a, AOX1d) and electron transfer flavoprotein/ubiquinone oxidoreductase (ETFQO) genes suggested that WRKY45 is associated with a dysregulation of mitochondrial signalling and the activation of alternative respiration rather than amino acids catabolism regulation. Collectively our results provided evidence that WRKY45 is involved in the plant metabolic reprogramming following carbon starvation and highlight the potential role of WRKY45 in the modulation of mitochondrial signalling pathways.

摘要

植物不断暴露在影响其性能的环境变化中。代谢调整对于控制能量同型平衡和植物生存至关重要,特别是在压力下。在碳饥饿下,会启动协调的重新编程以调整代谢过程,最终导致过早衰老。尽管如此,在低能量下调节转录控制的调控网络仍知之甚少。在这里,我们表明 WRKY45 转录因子在发育和黑暗诱导的衰老过程中高度诱导。拟南芥 WRKY45 的过表达导致早期衰老表型,其特征在于在黑暗后期最大光化学效率和叶绿素水平降低。详细的代谢特征表明,在黑暗诱导的衰老过程中,WRKY45 过表达系中氨基酸发生显著变化,同时有机酸积累。此外,替代氧化酶(AOX1a、AOX1d)和电子传递黄素蛋白/泛醌氧化还原酶(ETFQO)基因的显著上调表明,WRKY45 与线粒体信号的失调和替代呼吸的激活有关,而不是与氨基酸分解代谢的调节有关。总的来说,我们的结果提供了证据表明 WRKY45 参与了碳饥饿后植物的代谢重编程,并强调了 WRKY45 在调节线粒体信号通路中的潜在作用。

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