The role of the Arabidopsis tandem zinc-finger C3H15 protein in metal homeostasis

IF 6.1 2区 生物学 Q1 PLANT SCIENCES Plant Physiology and Biochemistry Pub Date : 2024-09-11 DOI:10.1016/j.plaphy.2024.109123
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Abstract

Living organisms have developed finely regulated homeostatic networks to mitigate the effects of environmental fluctuations in transition metal micronutrients, including iron, zinc, and copper. In Saccharomyces cerevisiae, the tandem zinc-finger protein Cth2 post-transcriptionally regulates gene expression under conditions of iron deficiency by controlling the levels of mRNAs that code for non-essential ferroproteins. The molecular mechanism involves Cth2 binding to AU-rich elements present in the 3′ untranslated region of target mRNAs, negatively affecting their stability and translation. Arabidopsis thaliana has two TZF proteins homologous to yeast Cth2, C3H14 and C3H15, which participate in cell wall remodelling. The present work examines the expression of representative metal homeostasis genes with putative AREs in plants with altered levels of C3H14 and C3H15 grown under varying metal availabilities. The results suggest that C3H15 may act as a post-transcriptional plant modulator of metal adequacy, as evidenced by the expression of SPL7, the main transcriptional regulator under copper deficiency, and PETE2, which encodes plastocyanin. In contrast to S. cerevisiae, the plant C3H15 affects copper and zinc homeostasis rather than iron. When grown under copper-deficient conditions, adult C3H15OE plants exhibit lower chlorophyll content and photosynthetic efficiency compared to control plants, suggesting accelerated senescence. Likewise, metal content in C3H15OE plants under copper deficiency shows altered mobilization of copper and zinc to seeds. These data suggest that the C3H15 protein plays a role in modulating both cell wall remodelling and metal homeostasis. The interaction between these processes may be the cause of altered metal translocation.

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拟南芥串联锌指 C3H15 蛋白在金属平衡中的作用
生物体已经发展出精细调节的平衡网络,以减轻过渡金属微量营养素(包括铁、锌和铜)环境波动的影响。在酿酒酵母(Saccharomyces cerevisiae)中,串联锌指蛋白 Cth2 通过控制编码非必需铁蛋白的 mRNA 的水平,在缺铁条件下对基因表达进行转录后调节。其分子机制是 Cth2 与目标 mRNA 的 3′非翻译区中富含 AU 的元件结合,从而对其稳定性和翻译产生负面影响。拟南芥有两个与酵母 Cth2 同源的 TZF 蛋白,即 C3H14 和 C3H15,它们参与细胞壁重塑。本研究考察了在不同金属利用率条件下生长的 C3H14 和 C3H15 水平改变的植物中,具有推定 AREs 的代表性金属稳态基因的表达情况。结果表明,C3H15 可作为植物金属充足性的转录后调节因子,这一点可从铜缺乏条件下的主要转录调节因子 SPL7 和编码质体花青素的 PETE2 的表达得到证明。与 S. cerevisiae 不同,植物 C3H15 影响的是铜和锌的平衡,而不是铁。在缺铜条件下生长时,成年 C3H15OE 植物的叶绿素含量和光合效率均低于对照植物,表明衰老加速。同样,缺铜条件下 C3H15OE 植物体内的金属含量也显示出铜和锌向种子的迁移发生了改变。这些数据表明,C3H15 蛋白在调节细胞壁重塑和金属平衡方面发挥了作用。这些过程之间的相互作用可能是改变金属转运的原因。
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来源期刊
Plant Physiology and Biochemistry
Plant Physiology and Biochemistry 生物-植物科学
CiteScore
11.10
自引率
3.10%
发文量
410
审稿时长
33 days
期刊介绍: Plant Physiology and Biochemistry publishes original theoretical, experimental and technical contributions in the various fields of plant physiology (biochemistry, physiology, structure, genetics, plant-microbe interactions, etc.) at diverse levels of integration (molecular, subcellular, cellular, organ, whole plant, environmental). Opinions expressed in the journal are the sole responsibility of the authors and publication does not imply the editors'' agreement. Manuscripts describing molecular-genetic and/or gene expression data that are not integrated with biochemical analysis and/or actual measurements of plant physiological processes are not suitable for PPB. Also "Omics" studies (transcriptomics, proteomics, metabolomics, etc.) reporting descriptive analysis without an element of functional validation assays, will not be considered. Similarly, applied agronomic or phytochemical studies that generate no new, fundamental insights in plant physiological and/or biochemical processes are not suitable for publication in PPB. Plant Physiology and Biochemistry publishes several types of articles: Reviews, Papers and Short Papers. Articles for Reviews are either invited by the editor or proposed by the authors for the editor''s prior agreement. Reviews should not exceed 40 typewritten pages and Short Papers no more than approximately 8 typewritten pages. The fundamental character of Plant Physiology and Biochemistry remains that of a journal for original results.
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