Genome-wide identification, expression analysis of WRKY transcription factors in Citrus ichangensis and functional validation of CiWRKY31 in response to cold stress

生物 WRKY蛋白质结构域 计算生物学 鉴定(生物学) 转录因子 基因组 冷应激 战斗或逃跑反应 遗传学 基因表达 基因 植物 转录组
作者
Jing Qu,Peng Xiao,Zeqi Zhao,Yilei Wang,Yi-Ke Zeng,Xi Zeng,Ji‐Hong Liu
出处
期刊:BMC Plant Biology [BioMed Central]
卷期号:24 (1) 被引量:8
标识
DOI:10.1186/s12870-024-05320-0
摘要

Abstract Background Ichang papeda ( Citrus ichangensis ), a wild perennial plant of the Rutaceae family, is a cold-hardy plant. WRKY transcription factors are crucial regulators of plant growth and development as well as abiotic stress responses. However, the WRKY genes in C. ichangensis ( CiWRKY ) and their expression patterns under cold stress have not been thoroughly investigated, hindering our understanding of their role in cold tolerance. Results In this study, a total of 52 CiWRKY genes identified in the genome of C. ichangensis were classified into three main groups and five subgroups based on phylogenetic analysis. Comprehensive analyses of motif features, conserved domains, and gene structures were performed. Segmental duplication plays a significant role in the CiWRKY gene family expansion. Cis -acting element analysis revealed the presence of various stress-responsive elements in the promoters of the majority of CiWRKYs . Gene ontology (GO) analysis and protein-protein interaction predictions indicate that the CiWRKYs exhibit crucial roles in regulation of both development and stress response. Expression profiling analysis demonstrates that 14 CiWRKYs were substantially induced under cold stress. Virus-induced gene silencing (VIGS) assay confirmed that CiWRKY31 , one of the cold-induced WRKYs, functions positively in regulation of cold tolerance. Conclusion Sequence and protein properties of CiWRKYs were systematically analyzed. Among the 52 CiWRKY genes 14 members exhibited cold-responsive expression patterns, and CiWRKY31 was verified to be a positive regulator of cold tolerance. These findings pave way for future investigations to understand the molecular functions of CiWRKYs in cold tolerance and contribute to unravelling WRKYs that may be used for engineering cold tolerance in citrus.
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