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模拟酸雨对大豆叶片的综合转录组分析。

Comprehensive transcriptome profiling of soybean leaves in response to simulated acid rain.

机构信息

State Key Laboratory of Crop Biology, Shandong Agricultural University, Tai'an, China.

State Key Laboratory of Crop Biology, Shandong Agricultural University, Tai'an, China.

出版信息

Ecotoxicol Environ Saf. 2018 Aug 30;158:18-27. doi: 10.1016/j.ecoenv.2018.04.015. Epub 2018 Apr 12.

Abstract

As a source of edible oil and protein, soybean is a major globally important economic crop; Improving its production has been an important objective of soybean breeding. Acid rain has been shown to influence soybean growth and productivity, with consequent adverse impacts on its production for use by human populations. In this study, RNA sequencing technology was utilized to examine changes in gene expression when soybean was exposed to simulated acid rain (SAR). We sampled soybean leaves at five time intervals (0, 6, 30, 54, 78, and 102 h), and built the cDNA library. In total, 54,175 expression genes were found, including 2016 genes with differential expression. A total of 416 genes were considered, as they were closely related to the response to SAR. Genes related to the regulation of sulfur and nitrogen metabolism, carbohydrate metabolism, photosynthesis, and reactive oxygen species were among those differentially expressed in response to SAR. In this study, we examined the response mechanisms of soybean under SAR exposure. Our findings will improve our understanding of the molecular mechanisms employed by soybean in responding to abiotic stress, and therefore provides important information in developing soybean breeding to improve tolerance to these stresses.

摘要

作为食用油和蛋白质的来源,大豆是一种重要的全球经济作物;提高其产量一直是大豆育种的重要目标。酸雨已被证明会影响大豆的生长和生产力,从而对其作为人类食用的生产产生不利影响。在这项研究中,我们利用 RNA 测序技术研究了大豆暴露于模拟酸雨 (SAR) 时基因表达的变化。我们在五个时间点(0、6、30、54、78 和 102 小时)采集了大豆叶片样本,并构建了 cDNA 文库。总共发现了 54175 个表达基因,其中有 2016 个基因表达存在差异。共有 416 个基因被认为与 SAR 反应密切相关。与硫和氮代谢、碳水化合物代谢、光合作用和活性氧调节相关的基因在 SAR 响应中差异表达。在这项研究中,我们研究了大豆在 SAR 暴露下的反应机制。我们的研究结果将提高我们对大豆应对非生物胁迫所采用的分子机制的理解,因此为开发提高大豆对这些胁迫的耐受性的育种提供了重要信息。

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