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A gene regulatory network for antenna size control in carbon dioxide-deprived Chlamydomonas reinhardtii cells

机译:二氧化碳剥夺衣原体Reinhardtii细胞天线尺寸控制基因调节网络

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摘要

In green microalgae, prolonged exposure to inorganic carbon depletion requires long-term acclimation responses, involving modulated gene expression and the adjustment of photosynthetic activity to the prevailing supply of carbon dioxide. Here, we describe a microalgal regulatory cycle that adjusts the light-harvesting capacity at photosystem II (PSII) to the prevailing supply of carbon dioxide in Chlamydomonas (Chlamydomonas reinhardtii). It engages low carbon dioxide response factor (LCRF), a member of the squamosa promoter-binding protein (SBP) family of transcription factors, and the previously characterized cytosolic translation repressor nucleic acid-binding protein 1 (NAB1). LCRF combines a DNA-binding SBP domain with a conserved domain for protein-protein interaction. LCRF transcription is rapidly induced by carbon dioxide depletion. LCRF activates NAB1 transcription by specifically binding to tetranucleotide motifs present in its promoter. Accumulation of the NAB1 protein enhances translational repression of its prime target mRNA, encoding the PSII-associated major light-harvesting protein LHCBM6. The resulting truncation of the PSII antenna size helps maintaining a low excitation during carbon dioxide limitation. Analyses of low carbon dioxide acclimation in nuclear insertion mutants devoid of a functional LCRF gene confirm the essentiality of this novel transcription factor for the regulatory circuit.
机译:在绿色微藻中,长期暴露于无机碳耗尽需要长期的适应反应,包括调节基因表达和调节光合活性以适应二氧化碳的主要供应。在这里,我们描述了一个微藻调节周期,它调节光系统II(PSII)的采光能力,以适应衣藻(Chlamydomonas reinhardtii)中普遍存在的二氧化碳供应。它与低二氧化碳反应因子(LCRF)结合,LCRF是鳞片启动子结合蛋白(SBP)家族转录因子的一个成员,以及之前被鉴定的细胞溶质翻译阻遏物核酸结合蛋白1(NAB1)。LCRF结合了DNA结合SBP结构域和蛋白质相互作用的保守结构域。LCRF转录是由二氧化碳消耗快速诱导的。LCRF通过特异性结合其启动子中的四核苷酸基序激活NAB1转录。NAB1蛋白的积累增强了其主要靶mRNA的翻译抑制,编码与PSII相关的主要采光蛋白LHCBM6。PSII天线尺寸的截断有助于在二氧化碳限制期间保持低激励。缺乏功能性LCRF基因的核插入突变体的低二氧化碳适应分析证实了这种新型转录因子对调节回路的重要性。

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  • 来源
    《The Plant Cell》 |2021年第4期|共16页
  • 作者单位

    Bielefeld Univ Algae Biotechnol &

    Bioenergy Fac Biol Ctr Biotechnol CeBiTec Univ Str 27 D-33615 Bielefeld Germany;

    Bielefeld Univ Algae Biotechnol &

    Bioenergy Fac Biol Ctr Biotechnol CeBiTec Univ Str 27 D-33615 Bielefeld Germany;

    Bielefeld Univ Algae Biotechnol &

    Bioenergy Fac Biol Ctr Biotechnol CeBiTec Univ Str 27 D-33615 Bielefeld Germany;

    Bielefeld Univ Algae Biotechnol &

    Bioenergy Fac Biol Ctr Biotechnol CeBiTec Univ Str 27 D-33615 Bielefeld Germany;

    Bielefeld Univ Algae Biotechnol &

    Bioenergy Fac Biol Ctr Biotechnol CeBiTec Univ Str 27 D-33615 Bielefeld Germany;

    Bielefeld Univ Algae Biotechnol &

    Bioenergy Fac Biol Ctr Biotechnol CeBiTec Univ Str 27 D-33615 Bielefeld Germany;

    Bielefeld Univ Algae Biotechnol &

    Bioenergy Fac Biol Ctr Biotechnol CeBiTec Univ Str 27 D-33615 Bielefeld Germany;

    Bielefeld Univ Algae Biotechnol &

    Bioenergy Fac Biol Ctr Biotechnol CeBiTec Univ Str 27 D-33615 Bielefeld Germany;

    Bielefeld Univ Algae Biotechnol &

    Bioenergy Fac Biol Ctr Biotechnol CeBiTec Univ Str 27 D-33615 Bielefeld Germany;

    Bielefeld Univ Algae Biotechnol &

    Bioenergy Fac Biol Ctr Biotechnol CeBiTec Univ Str 27 D-33615 Bielefeld Germany;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 植物细胞学;
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