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首页> 外文期刊>BMC Plant Biology >Characterization of wheat homeodomain-leucine zipper family genes and functional analysis of TaHDZ5-6A in drought tolerance in transgenic Arabidopsis
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Characterization of wheat homeodomain-leucine zipper family genes and functional analysis of TaHDZ5-6A in drought tolerance in transgenic Arabidopsis

机译:特征在转基因拟南芥中干旱耐受性耐旱性耐旱5-6A的小麦同源域 - 亮氨酸 - 亮氨酸植物基因和功能分析

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Many studies in Arabidopsis and rice have demonstrated that HD-Zip transcription factors play important roles in plant development and responses to abiotic stresses. Although common wheat (Triticum aestivum L.) is one of the most widely cultivated and consumed food crops in the world, the function of the HD-Zip proteins in wheat is still largely unknown. To explore the potential biological functions of HD-Zip genes in wheat, we performed a bioinformatics and gene expression analysis of the HD-Zip family. We identified 113 HD-Zip members from wheat and classified them into four subfamilies (I-IV) based on phylogenic analysis against proteins from Arabidopsis, rice, and maize. Most HD-Zip genes are represented by two to three homeoalleles in wheat, which are named as TaHDZX_ZA, TaHDZX_ZB, or TaHDZX_ZD, where X denotes the gene number and Z the wheat chromosome on which it is located. TaHDZs in the same subfamily have similar protein motifs and intron/exon structures. The expression profiles of TaHDZ genes were analysed in different tissues, at different stages of vegetative growth, during seed development, and under drought stress. We found that most TaHDZ genes, especially those in subfamilies I and II, were induced by drought stress, suggesting the potential importance of subfamily I and II TaHDZ members in the responses to abiotic stress. Compared with wild-type (WT) plants, transgenic Arabidopsis plants overexpressing TaHDZ5-6A displayed enhanced drought tolerance, lower water loss rates, higher survival rates, and higher proline content under drought conditions. Additionally, the transcriptome analysis identified a number of differentially expressed genes between 35S::TaHDZ5-6A transgenic and wild-type plants, many of which are involved in stress response. Our results will facilitate further functional analysis of wheat HD-Zip genes, and also indicate that TaHDZ5-6A may participate in regulating the plant response to drought stress. Our experiments show that TaHDZ5-6A holds great potential for genetic improvement of abiotic stress tolerance in crops.
机译:拟南芥和水稻的许多研究表明,HD-ZIP转录因子在植物发育和对非生物胁迫的反应中起重要作用。虽然常见的小麦(Triticum aestivum L.)是世界上最广泛种植和消耗的食物作物之一,但小麦中HD-ZIP蛋白的功能仍然很大程度上是未知的。为了探讨小麦中HD-ZIP基因的潜在生物功能,我们对HD-ZIP家族进行了生物信息学和基因表达分析。我们将113个HD-ZIP成员从小麦中鉴定为基于来自拟南芥,水稻和玉米蛋白质的系统发育分析,将它们分为四个亚属(I-IV)。大多数HD-ZIP基因在小麦中由两到三个Homeo和Tahdzx_za,Tahdzx__Zb或Tahdzx_zd表示,其中X表示其所在的基因数和Z Zheat染色体。在同一亚家族中的TAHDZ有类似的蛋白质主题和内含子/外显子结构。在不同组织中,在种子发育期间,在种子发育期间和干旱胁迫下,在不同组织中分析了TAHDZ基因的表达谱。我们发现,大多数Tahdz基因,特别是亚属I和II中的那些,受干旱胁迫引起的,表明亚家族I和II Tahdz成员在对非生物胁迫的反应中的潜在重要性。与野生型(WT)植物相比,过表达TAHDZ5-6A的转基因拟南芥植物显示出增强的干旱耐受性,降低水分率,更高的存活率,并在干旱条件下更高的脯氨酸含量。另外,转录组分析鉴定了35s :: Tahdz5-6a转基因和野生型植物之间的许多差异表达基因,其中许多涉及应力反应。我们的结果将促进对小麦HD-ZIP基因的进一步功能分析,并表明TAHDZ5-6A可以参与调节植物对干旱胁迫的反应。我们的实验表明,TAHDZ5-6A对作物中非生物胁迫耐受性的遗传改善具有巨大潜力。

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