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盐胁迫下大豆幼苗中GmMYB46的转录组分析与功能鉴定

Transcriptome analysis and functional identification of GmMYB46 in soybean seedlings under salt stress.

作者信息

Liu Xun, Yang Xinxia, Zhang Bin

机构信息

College of Chemistry and Bioengineering, Hunan University of Science and Engineering, Yongzhou, China.

College of Life Sciences, Nanjing Agricultural University, Nanjing, China.

出版信息

PeerJ. 2021 Nov 11;9:e12492. doi: 10.7717/peerj.12492. eCollection 2021.

Abstract

Salinity is one of the major abiotic stress that limits crop growth and productivity. We investigated the transcriptomes of salt-treated soybean seedlings versus a control using RNA-seq to better understand the molecular mechanisms of the soybean ( L.) response to salt stress. Transcriptome analysis revealed 1,235 differentially expressed genes (DEGs) under salt stress. Several important pathways and key candidate genes were identified by KEGG enrichment. A total of 116 differentially expressed transcription factors (TFs) were identified, and 17 TFs were found to belong to MYB families. Phylogenetic analysis revealed that these TFs may be involved in salt stress adaptation. Further analysis revealed that was up-regulated by salt and mannitol and was localized in the nucleus. The salt tolerance of transgenic overexpressing GmMYB46 was significantly enhanced compared to wild-type (WT). GmMYB46 activates the expression of salt stress response genes () in under salt stress, indicating that the GmMYB46 protein mediates the salt stress response through complex regulatory mechanisms. This study provides information with which to better understand the molecular mechanism of salt tolerance in soybeans and to genetically improve the crop.

摘要

盐度是限制作物生长和生产力的主要非生物胁迫之一。我们使用RNA测序技术研究了盐处理大豆幼苗与对照的转录组,以更好地了解大豆对盐胁迫响应的分子机制。转录组分析揭示了盐胁迫下1235个差异表达基因(DEG)。通过KEGG富集鉴定了几个重要途径和关键候选基因。共鉴定出116个差异表达转录因子(TF),其中17个TF属于MYB家族。系统发育分析表明,这些TF可能参与盐胁迫适应。进一步分析发现,[此处原文缺失具体基因名称]受盐和甘露醇上调,并定位于细胞核。与野生型(WT)相比,过表达GmMYB46的转基因[此处原文缺失具体受体材料]的耐盐性显著增强。GmMYB46在盐胁迫下激活了[此处原文缺失具体受体材料]中盐胁迫响应基因([此处原文缺失具体基因名称])的表达,表明GmMYB46蛋白通过复杂的调控机制介导盐胁迫响应。本研究为更好地理解大豆耐盐分子机制和对该作物进行遗传改良提供了信息。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a331/8590805/4e57fe5b74e7/peerj-09-12492-g001.jpg

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