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Genetic regulation of salt stress tolerance revealed by RNA-Seq in cotton diploid wild species Gossypium davidsonii

机译:RNA-Seq揭示的棉二倍体野生物种盐色抗盐胁迫的遗传调控

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摘要

Cotton is an economically important crop throughout the world, and is a pioneer crop in salt stress tolerance research. Investigation of the genetic regulation of salinity tolerance will provide information for salt stress-resistant breeding. Here, we employed next-generation RNA-Seq technology to elucidate the salt-tolerant mechanisms in cotton using the diploid cotton species Gossypium davidsonii which has superior stress tolerance. A total of 4744 and 5337 differentially expressed genes (DEGs) were found to be involved in salt stress tolerance in roots and leaves, respectively. Gene function annotation elucidated salt overly sensitive (SOS) and reactive oxygen species (ROS) signaling pathways. Furthermore, we found that photosynthesis pathways and metabolism play important roles in ion homeostasis and oxidation balance. Moreover, our studies revealed that alternative splicing also contributes to salt-stress responses at the posttranscriptional level, implying its functional role in response to salinity stress. This study not only provides a valuable resource for understanding the genetic control of salt stress in cotton, but also lays a substantial foundation for the genetic improvement of crop resistance to salt stress.
机译:棉花是全世界经济上重要的作物,并且是耐盐胁迫研究的先驱作物。耐盐性遗传调控的研究将为耐盐胁迫育种提供信息。在这里,我们使用下一代RNA-Seq技术来阐明棉花的耐盐机理,该技术使用的二倍体棉花品种Gossypium davidsonii具有较高的胁迫耐受性。发现总共4744和5337个差异表达基因(DEG)分别参与了根和叶的盐胁迫耐受性。基因功能注释阐明了盐过度敏感(SOS)和活性氧(ROS)信号传导途径。此外,我们发现光合作用途径和代谢在离子稳态和氧化平衡中起着重要作用。此外,我们的研究表明,选择性剪接也有助于转录后水平的盐胁迫响应,这暗示其在盐分胁迫响应中的功能作用。该研究不仅为了解棉花盐胁迫的遗传调控提供了宝贵的资源,而且为遗传改良作物对盐胁迫的抗性奠定了坚实的基础。

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