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Effects of iron limitation on the expression of metabolic genes in the marine cyanobacterium Trichodesmium erythraeum IMS101

机译:铁限制对海洋蓝藻Trichodesmium erythraeum IMS101中代谢基因表达的影响

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Iron deficiency in axenic cultures of Trichodesmium erythraeum IMS101 led to significant declines in both nitrogen fixation rates and photochemical energy conversion efficiency, accompanied by downregulation of genes encoding the major iron-binding proteins, including psbA and psbE of photosystem II, psaA and psaC of photosystem I, petB and petC of the cytochrome b(6)f complex, and nifH. However, the iron-starved cultures remained viable and expression of the metalloprotein genes was partially or fully restored within 3 days following the addition of iron. Both physiological and molecular responses revealed that expression and synthesis of the nitrogen fixation and photosynthetic machinery follow the hierarchy of iron demand; that is, nitrogen fixation was far more susceptible to iron limitation than photosynthesis. Consequently, the nifH transcript exhibited a 1-2 day shorter half-life and two to three times faster degradation rate than that of the photosynthetic genes. Our results suggest that the changes in gene expression are related to the redox state in the shared photosynthetic/respiratory pathway which, when faced with short-term iron deficiency, signals Trichodesmium to selectively sacrifice nitrogen fixation to conserve iron for photosynthetic and respiratory electron transport. The observed functional and compositional alterations represent the compromises in gene expression and acclimation capacity between two basic metabolic pathways competing for iron when it is limiting.
机译:赤霉菌IMS101的无性培养中的铁缺乏导致固氮率和光化学能转化效率均显着下降,同时伴随着编码主要铁结合蛋白的基因的下调,其中包括光系统II的psbA和psbE,光系统II的psaA和psaC我,细胞色素b(6)f复合物的petB和petC,以及nifH。然而,铁缺乏的培养物仍然可行,并且在添加铁后3天内金属蛋白基因的表达部分或完全恢复。生理和分子反应都表明,固氮和光合作用机制的表达和合成遵循铁需求的层次。也就是说,固氮比光合作用更容易受到铁的限制。因此,与光合作用基因相比,nifH转录本的半衰期缩短了1-2天,降解速率加快了2至3倍。我们的结果表明,基因表达的变化与共享的光合/呼吸途径中的氧化还原状态有关,当面临短期铁缺乏时,该信号通知毛线虫选择性地牺牲了固氮,以保留铁用于光合作用和呼吸电子的运输。观察到的功能和组成变化代表了在铁受限制时竞争铁的两个基本代谢途径之间基因表达和适应能力的折衷。

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