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Transcriptome-Wide Survey and Expression Profile Analysis of Putative Chrysanthemum HD-Zip I and II Genes

机译:假定的菊花HD-Zip I和II基因的转录组全范围调查和表达谱分析

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摘要

The homeodomain-leucine zipper (HD-Zip) transcription factor family is a key transcription factor family and unique to the plant kingdom. It consists of a homeodomain and a leucine zipper that serve in combination as a dimerization motif. The family can be classified into four subfamilies, and these subfamilies participate in the development of hormones and mediation of hormone action and are involved in plant responses to environmental conditions. However, limited information on this gene family is available for the important chrysanthemum ornamental species (Chrysanthemum morifolium). Here, we characterized 17 chrysanthemum HD-Zip genes based on transcriptome sequences. Phylogenetic analyses revealed that 17 CmHB genes were distributed in the HD-Zip subfamilies I and II and identified two pairs of putative orthologous proteins in Arabidopsis and chrysanthemum and four pairs of paralogous proteins in chrysanthemum. The software MEME was used to identify 7 putative motifs with E values less than 1e-3 in the chrysanthemum HD-Zip factors, and they can be clearly classified into two groups based on the composition of the motifs. A bioinformatics analysis predicted that 8 CmHB genes could be targeted by 10 miRNA families, and the expression of these 17 genes in response to phytohormone treatments and abiotic stresses was characterized. The results presented here will promote research on the various functions of the HD-Zip gene family members in plant hormones and stress responses.
机译:同源域-亮氨酸拉链(HD-Zip)转录因子家族是关键的转录因子家族,对于植物界是唯一的。它由一个Homeodomain和一个亮氨酸拉链组成,两者结合在一起用作二聚化基序。该科可分为四个亚科,这些亚科参与激素的发育和激素作用的介导,并参与植物对环境条件的反应。但是,对于重要的菊花观赏物种(Chrysanthemum morifolium),该基因家族的信息有限。在这里,我们基于转录组序列表征了17个菊花HD-Zip基因。系统发育分析表明,HD-Zip亚家族I和II中分布有17个CmHB基因,在拟南芥和菊花中鉴定出两对推定的直系同源蛋白,在菊花中鉴定出四对旁系同源蛋白。使用MEME软件在菊花HD-Zip因子中识别7个E值小于1e-3的推定基序,并且可以根据基序的组成将它们明确地分为两组。生物信息学分析预测10个miRNA家族可靶向8个CmHB基因,并表征了这17个基因在植物激素处理和非生物胁迫下的表达。本文介绍的结果将促进对HD-Zip基因家族成员在植物激素和胁迫响应中的各种功能的研究。

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