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Transcriptomic studies reveal a key metabolic pathway contributing to a well-maintained photosynthetic system under drought stress in foxtail millet (Setaria italica L.)

机译:转录组研究揭示了在福克斯小米(Setaria Italica L.)的干旱胁迫下有助于保持良好的光合体系的关键代谢途径

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摘要

Drought stress is one of the most important abiotic factors limiting crop productivity. A better understanding of the effects of drought on millet (Setaria italica L.) production, a model crop for studying drought tolerance, and the underlying molecular mechanisms responsible for drought stress responses is vital to improvement of agricultural production. In this study, we exposed the drought resistant F1 hybrid, M79, and its parental lines E1 and H1 to drought stress. Subsequent physiological analysis demonstrated that M79 showed higher photosynthetic energy conversion efficiency and drought tolerance than its parents. A transcriptomic study using leaves collected six days after drought treatment, when the soil water content was about ∼20%, identified 3066, 1895, and 2148 differentially expressed genes (DEGs) in M79, E1 and H1 compared to the respective untreated controls, respectively. Further analysis revealed 17 Gene Ontology (GO) enrichments and 14 Kyoto Encyclopedia of Genes and Genomes (KEGG) pathways in M79, including photosystem II (PSII) oxygen-evolving complex, peroxidase (POD) activity, plant hormone signal transduction, and chlorophyll biosynthesis. Co-regulation analysis suggested that these DEGs in M79 contributed to the formation of a regulatory network involving multiple biological processes and pathways including photosynthesis, signal transduction, transcriptional regulation, redox regulation, hormonal signaling, and osmotic regulation. RNA-seq analysis also showed that some photosynthesis-related DEGs were highly expressed in M79 compared to its parental lines under drought stress. These results indicate that various molecular pathways, including photosynthesis, respond to drought stress in M79, and provide abundant molecular information for further analysis of the underlying mechanism responding to this stress.
机译:干旱压力是限制作物生产率最重要的非生物因素之一。更好地了解干旱对小米(Setaria Italica L.)生产的影响,研究耐旱性的模型作物,以及负责干旱应激反应的潜在分子机制对于改善农业生产至关重要。在这项研究中,我们暴露了抗旱F1杂交,M79及其亲本系E1和H1的抗旱胁迫。随后的生理分析表明M79显示出比父母更高的光合能量转换效率和耐旱耐受性。在干旱处理后六天收集的叶片的转录组研究,当土壤含水量约为20%,鉴定的3066,1895和2148次M79,E1和H1中的鉴定的3066,1895和2148次差异表达基因(DEGS)与相应的未处理对照相比。进一步的分析揭示了M79中的17个基因本体(GO)富集和14 kyoto百科全书(Kegg)途径(Kegg)途径,包括光束II(PSII)氧化复合物,过氧化物酶(POD)活性,植物激素信号转导和叶绿素生物合成。共调控分析表明,M79中的这些参数促成了涉及多种生物学过程和途径的监管网络的形成,包括光合作用,信号转导,转录调节,氧化还原,激素信号和渗透调节。 RNA-SEQ分析还表明,与干旱胁迫下的父母线相比,M79中有一些与光合作用的果汁高度表达。这些结果表明,各种分子途径,包括光合作用,响应M79中的干旱胁迫,并提供了丰富的分子信息,以进一步分析响应这种应力的潜在机制。

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