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利用瞬时共激活分析鉴定大豆防御网络中的转录调控节点

Identification of transcriptional regulatory nodes in soybean defense networks using transient co-transactivation assays.

作者信息

Wang Yongli, Wang Hui, Ma Yujie, Du Haiping, Yang Qing, Yu Deyue

机构信息

National Center for Soybean Improvement, National Key Laboratory of Crop Genetics and Germplasm Enhancement, Nanjing Agricultural University Nanjing, China ; Biofuels Institute, School of the Environment, Jiangsu University Zhenjiang, China.

National Center for Soybean Improvement, National Key Laboratory of Crop Genetics and Germplasm Enhancement, Nanjing Agricultural University Nanjing, China.

出版信息

Front Plant Sci. 2015 Oct 27;6:915. doi: 10.3389/fpls.2015.00915. eCollection 2015.

Abstract

Plant responses to major environmental stressors, such as insect feeding, not only occur via the functions of defense genes but also involve a series of regulatory factors. Our previous transcriptome studies proposed that, in addition to two defense-related genes, GmVSPβ and GmN:IFR, a high proportion of transcription factors (TFs) participate in the incompatible soybean-common cutworm interaction networks. However, the regulatory mechanisms and effects of these TFs on those induced defense-related genes remain unknown. In the present work, we isolated and identified 12 genes encoding MYB, WRKY, NAC, bZIP, and DREB TFs from a common cutworm-induced cDNA library of a resistant soybean line. Sequence analysis of the promoters of three co-expressed genes, including GmVSPα, GmVSPβ, and GmN:IFR, revealed the enrichment of various TF-binding sites for defense and stress responses. To further identify the regulatory nodes composed of these TFs and defense gene promoters, we performed extensive transient co-transactivation assays to directly test the transcriptional activity of the 12 TFs binding at different levels to the three co-expressed gene promoters. The results showed that all 12 TFs were able to transactivate the GmVSPβ and GmN:IFR promoters. GmbZIP110 and GmMYB75 functioned as distinct regulators of GmVSPα/β and GmN:IFR expression, respectively, while GmWRKY39 acted as a common central regulator of GmVSPα/β and GmN:IFR expression. These corresponding TFs play crucial roles in coordinated plant defense regulation, which provides valuable information for understanding the molecular mechanisms involved in insect-induced transcriptional regulation in soybean. More importantly, the identified TFs and suitable promoters can be used to engineer insect-resistant plants in molecular breeding studies.

摘要

植物对主要环境应激源(如昆虫取食)的反应不仅通过防御基因的功能发生,还涉及一系列调控因子。我们之前的转录组研究表明,除了两个与防御相关的基因GmVSPβ和GmN:IFR外,高比例的转录因子(TFs)参与了大豆与普通夜蛾的不相容相互作用网络。然而,这些TFs对那些诱导的防御相关基因的调控机制和作用仍不清楚。在本研究中,我们从一个抗虫大豆品系的普通夜蛾诱导cDNA文库中分离并鉴定了12个编码MYB、WRKY、NAC、bZIP和DREB TFs的基因。对三个共表达基因(包括GmVSPα、GmVSPβ和GmN:IFR)的启动子进行序列分析,揭示了各种用于防御和应激反应的TF结合位点的富集。为了进一步确定由这些TFs和防御基因启动子组成的调控节点,我们进行了广泛的瞬时共转激活分析,以直接测试12个TFs在不同水平上与三个共表达基因启动子结合的转录活性。结果表明,所有12个TFs都能够转激活GmVSPβ和GmN:IFR启动子。GmbZIP110和GmMYB75分别作为GmVSPα/β和GmN:IFR表达的不同调控因子,而GmWRKY39作为GmVSPα/β和GmN:IFR表达的共同核心调控因子。这些相应的TFs在植物防御协同调控中起关键作用,为理解大豆中昆虫诱导的转录调控所涉及的分子机制提供了有价值的信息。更重要的是,鉴定出的TFs和合适的启动子可用于分子育种研究中培育抗虫植物。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bf7e/4621403/5e0110a5edb5/fpls-06-00915-g001.jpg

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