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白菜(芸薹属白菜亚种)转录组分析为响应干旱胁迫中硫代葡萄糖苷代谢的作用提供了依据。

Transcriptome Analysis in Chinese Cabbage (Brassica rapa ssp. pekinensis) Provides the Role of Glucosinolate Metabolism in Response to Drought Stress.

机构信息

Department of Industrial Plant Science and Technology, College of Agricultural, Life and Environmental Sciences, Chungbuk National University, Cheongju 28644, Korea.

Division of Life Sciences and Convergence Research Center for Insect Vectors, Incheon National University, Incheon 22012, Korea.

出版信息

Molecules. 2018 May 15;23(5):1186. doi: 10.3390/molecules23051186.

Abstract

Although drought stress is one of the most limiting factors in growth and production of Chinese cabbage ( L. ssp. pekinensis), the underlying biochemical and molecular causes are poorly understood. In the present study, to address the mechanisms underlying the drought responses, we analyzed the transcriptome profile of Chinese cabbage grown under drought conditions. Drought stress transcriptionally activated several transcription factor genes, including /, , and , and was found to possibly result in transcriptional variation in genes involved in organic substance metabolic processes. In addition, comparative expression analysis of selected under different stress conditions suggested that drought-induced BrbZIPs are important for improving drought tolerance. Further, drought stress in Chinese cabbage caused differential acclimation responses in glucosinolate metabolism in leaves and roots. Analysis of stomatal aperture indicated that drought-induced accumulation of glucosinolates in leaves directly or indirectly controlled stomatal closure to prevent water loss, suggesting that organ-specific responses are essential for plant survival under drought stress condition. Taken together, our results provide information important for further studies on molecular mechanisms of drought tolerance in Chinese cabbage.

摘要

虽然干旱胁迫是大白菜( L. ssp. pekinensis)生长和生产的最主要限制因素之一,但人们对其潜在的生化和分子原因知之甚少。在本研究中,为了研究干旱响应的机制,我们分析了在干旱条件下生长的大白菜的转录组谱。干旱胁迫转录激活了几个转录因子基因,包括 / 、 、 和 ,可能导致参与有机物质代谢过程的基因发生转录变化。此外,对不同胁迫条件下选定的 进行比较表达分析表明,干旱诱导的 BrbZIPs 对提高耐旱性很重要。此外,干旱胁迫导致大白菜叶片和根系中硫代葡萄糖苷代谢的差异适应反应。气孔开度分析表明,干旱诱导的叶片硫代葡萄糖苷积累直接或间接控制气孔关闭以防止水分流失,这表明器官特异性反应对于植物在干旱胁迫条件下的生存至关重要。总之,我们的研究结果为进一步研究大白菜耐旱性的分子机制提供了重要信息。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/84f6/6099646/de74661cf0ca/molecules-23-01186-g001.jpg

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