Pan Haoyu, Chen Yu, Zhao Jingyi, Huang Jie, Shu Nana, Deng Hui, Song Cheng
College of Biological and Pharmaceutical Engineering, West Anhui University, Luan, China.
School of Life Science, Anhui Agricultural University, Hefei, China.
Front Genet. 2023 Jan 9;13:1104968. doi: 10.3389/fgene.2022.1104968. eCollection 2022.
With the rapid advancement of high-throughput sequencing technology, it is now possible to identify individual gene families from genomes on a large scale in order to study their functions. WRKY transcription factors are a key class of regulators that regulate plant growth and abiotic stresses. Here, a total of 74 genes were identified from Kimura et Migo genome. Based on the genome-wide analysis, an in-depth analysis of gene structure and conserved motif was performed. The phylogenetic analysis indicated that DoWRKYs could be classified into three main groups: I, II, and III, with group II divided into five subgroups: II-a, II-b, II-c, II-d, and II-e. The sequence alignment indicated that these WRKY transcriptional factors contained a highly conserved WRKYGQK heptapeptide. The localization analysis of chromosomes showed that genes were irregularly distributed across several chromosomes of . These genes comprised diverse patterns in both number and species, and there were certain distinguishing motifs among subfamilies. Moreover, the phylogenetic tree and chromosomal location results indicated that may have undergone a widespread genome duplication event. Based on an evaluation of expression profiles, we proposed that DoWRKY5, 54, 57, 21, etc. may be involved in the transcriptional regulation of the JA signaling pathway. These results provide a scientific reference for the study of family genes.
随着高通量测序技术的迅速发展,现在有可能从基因组中大规模鉴定单个基因家族,以研究其功能。WRKY转录因子是调节植物生长和非生物胁迫的一类关键调节因子。在此,从木村和沟口基因组中总共鉴定出74个基因。基于全基因组分析,对基因结构和保守基序进行了深入分析。系统发育分析表明,DoWRKYs可分为三个主要组:I、II和III,其中II组又分为五个亚组:II-a、II-b、II-c、II-d和II-e。序列比对表明,这些WRKY转录因子含有高度保守的七肽WRKYGQK。染色体定位分析表明,基因不规则地分布在若干条染色体上。这些基因在数量和种类上具有不同的模式,亚家族之间存在某些独特的基序。此外,系统发育树和染色体定位结果表明,可能经历了广泛的基因组复制事件。基于对表达谱的评估,我们提出DoWRKY5、54、57、21等可能参与茉莉酸信号通路的转录调控。这些结果为研究家族基因提供了科学参考。