C4禾草狗尾草长期热胁迫响应的系统分析

Peng Zhang, Robert Sharwood, Adam Carroll, Gonzalo M Estavillo, Susanne von Caemmerer, Robert T Furbank
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摘要

许多C4植物被用作食物和饲料作物,与C3植物相比,通常显示出更高的资源利用效率。然而,C4植物对未来极端条件(如热浪)的反应尚不清楚。在这里,在长期高温胁迫下生长两周(42°C,与28°C相比),一种新兴的C4模式草Setaria viridis。这导致生长发育迟缓,但令人惊讶的是,对叶片厚度、叶面积光合速率和束鞘渗漏率几乎没有影响。热胁迫下植物暗呼吸速率增加,碳氮代谢发生重大变化。脱落酸和吲哚-乙酸-氨基酸偶联物在高温胁迫下积累,与转录变化一致。通过叶片转录组学、蛋白质组学和代谢组学分析,绘制了光合作用、呼吸作用、碳/氮代谢和植物激素生物合成和信号转导等代谢途径。对转录本及其相应蛋白质之间的相关性进行了深入分析,发现两组之间在相关性的强度和迹象方面存在巨大差异。总体而言,许多胁迫信号通路上调,与导致植物生长减少的多重信号一致。基于氧化应激、植物激素和糖信号通路,提出了植物对长期热胁迫反应的系统模型。
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Systems analysis of long-term heat stress responses in the C4 grass Setaria viridis
Many C4 plants are used as food and fodder crops and often display improved resource use efficiency compared to C3 plants. However, the response of C4 plants to future extreme conditions such as heatwaves is less understood. Here, Setaria viridis, an emerging C4 model grass, was grown under long-term high temperature stress for two weeks (42°C, compared to 28°C). This resulted in stunted growth, but surprisingly had little impact on leaf thickness, leaf area-based photosynthetic rates and bundle sheath leakiness. Dark respiration rates increased and there were major alterations in carbon and nitrogen metabolism in the heat-stressed plants. Abscisic acid and indole-acetic acid–amino acid conjugates accumulated in the heat-stressed plants, consistent with transcriptional changes. Leaf transcriptomics, proteomics and metabolomics analyses were carried out and mapped onto the metabolic pathways of photosynthesis, respiration, carbon/nitrogen metabolism and phytohormone biosynthesis and signaling. An in-depth analysis of correlations between transcripts and their corresponding proteins revealed strong differences between groups in the strengths and signs of correlations. Overall, many stress signaling pathways were upregulated, consistent with multiple signals leading to reduced plant growth. A systems-based model of the plant response to long-term heat stress is presented based on the oxidative stress, phytohormone and sugar signaling pathways.
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