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Dissecting the features of TGA gene family in Saccharum and the functions of ScTGA1 under biotic stresses

茉莉酸 生物 生物逆境 茉莉酸甲酯 基因 基因家族 植物抗病性 烟草 转录因子 非生物胁迫 遗传学 WRKY蛋白质结构域 茉莉酸 基因表达 植物 拟南芥 转录组 突变体
作者
Zhennan Zhao,Renren Zhang,Dongjiao Wang,Jing Zhang,Shoujian Zang,Wenhui Zou,Aoyin Feng,Chuihuai You,Yachun Su,Qibin Wu,Youxiong Que
出处
期刊:Plant Physiology and Biochemistry [Elsevier]
卷期号:200: 107760-107760 被引量:12
标识
DOI:10.1016/j.plaphy.2023.107760
摘要

Sugarcane is an important sugar and energy crop and smut disease caused by Sporisorium scitamineum is a major fungal disease which can seriously reduce the yield and quality of sugarcane. In plants, TGACG motif binding (TGA) transcription factors are involved in the regulation of salicylic acid (SA) and methyl jasmonate (MeJA) signaling pathways, as well as in response to various biotic and abiotic stresses. However, no TGA-related transcription factor has been reported in Saccharum. In the present study, 44 SsTGA genes were identified from Saccharum spontaneum, and were assorted into three clades (I, II, III). Cis-regulatory elements (CREs) analysis revealed that SsTGA genes may be involved in hormone and stress response. RNA-seq data and RT-qPCR analysis indicated that SsTGAs were constitutively expressed in different tissues and induced by S. scitamineum stress. In addition, a ScTGA1 gene (GenBank accession number ON416997) was cloned from the sugarcane cultivar ROC22, which was homologous to SsTGA1e in S. spontaneum and encoded a nucleus protein. It was constitutively expressed in sugarcane tissues and up-regulated by SA, MeJA and S. scitamineum stresses. Furthermore, transient overexpression of ScTGA1 in Nicotiana benthamiana could enhance its resistance to the infection of Ralstonia solanacearum and Fusarium solani var. coeruleum, by regulating the expression of immune genes related to hypersensitive response (HR), ethylene (ET), SA and jasmonic acid (JA) pathways. This study should contribute to our understanding on the evolution and function of the SsTGA gene family in Saccharum, and provide a basis for the functional identification of ScTGA1 under biotic stresses.
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