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    鲁黎明, 陈勇, 鲁逸飞, 李立芹. 低钾胁迫对烟草幼苗碳氮代谢基因表达谱的影响[J]. 中国烟草科学, 2015, 36(4): 12-17. DOI: 10.13496/j.issn.1007-5119.2015.04.002
    引用本文: 鲁黎明, 陈勇, 鲁逸飞, 李立芹. 低钾胁迫对烟草幼苗碳氮代谢基因表达谱的影响[J]. 中国烟草科学, 2015, 36(4): 12-17. DOI: 10.13496/j.issn.1007-5119.2015.04.002
    LU Liming, CHEN Yong, LU Yifei, LI Liqin. The Impact of Low Potassium Stress on Tobacco Gene Expression Profiles of Carbon and Nitrogen Metabolism[J]. CHINESE TOBACCO SCIENCE, 2015, 36(4): 12-17. DOI: 10.13496/j.issn.1007-5119.2015.04.002
    Citation: LU Liming, CHEN Yong, LU Yifei, LI Liqin. The Impact of Low Potassium Stress on Tobacco Gene Expression Profiles of Carbon and Nitrogen Metabolism[J]. CHINESE TOBACCO SCIENCE, 2015, 36(4): 12-17. DOI: 10.13496/j.issn.1007-5119.2015.04.002

    低钾胁迫对烟草幼苗碳氮代谢基因表达谱的影响

    The Impact of Low Potassium Stress on Tobacco Gene Expression Profiles of Carbon and Nitrogen Metabolism

    • 摘要: 为探索烟草响应低钾胁迫的分子机制,对K326烟草幼苗进行了0、6、12和24 h的低钾胁迫处理,并利用定制的烟草全基因组芯片,分析了烟草幼苗基因表达谱的变化。结果表明,与0 h相比,6、12和24 h的3个时间点差异表达在2倍以上(p<0.05)的基因总数为3790个。从功能方面看,这些差异表达基因广泛参与了烟草的各种生物学过程,包括抗氧化活性、应激反应、运输活性、发育过程、催化活性、生物调节、代谢过程等。其中包括了硝酸还原酶基因NIA2等10个参与烟草氮代谢的基因,以及UGP等44个参与烟草碳水化合物与糖代谢的基因。本研究结果说明,低钾胁迫对烟草的基因表达产生了广泛的影响,进而可能影响到烟草的碳氮等基础代谢。

       

      Abstract: In order to explore the molecular mechanism of tobacco potassium nutrition, tobacco seedlings of K326 were treated with low potassium stress for 0, 6, 12 and 24 h. Gene expression profiles of tobacco seedlings at each time point were analyzed. The results showed that a total of 3790 genes were detected with a change of two folds or more in expression level (p<0.05). GO analysis showed that these differentially expressed genes can be divided into functional classifications including antioxidant activity, stress response, transport activity, development process, catalytic activities, biological regulation, metabolism, etc. Among them, 10 genes, including the nitrate reductase gene NIA2, were involved in nitrogen metabolism, and 44 genes, such as UGP, were involved in the metabolism of carbohydrate and sugar. The results of this study indicate that low potassium stress has a broad impact on gene expression of tobacco, and it may affect the metabolism of carbon and nitrogen in tobacco.

       

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