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Genome-Wide Identification and Transcriptional Regulation of Aquaporin Genes in Bread Wheat ( Triticum aestivum L.) under Water Stress

机译:水分胁迫下面包小麦水通道蛋白基因的全基因组鉴定和转录调控

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Aquaporins (AQPs) are transmembrane proteins essential for controlling the flow of water and other molecules required for development and stress tolerance in plants, including important crop species such as wheat ( Triticum aestivum ). In this study, we utilized a genomic approach for analyzing the information about AQPs available in public databases to characterize their structure and function. Furthermore, we validated the expression of a suite of AQP genes, at the transcriptional level, including accessions with contrasting responses to drought, different organs and water stress levels. We found 65 new AQP genes, from which 60% are copies expanded by polyploidization. Sequence analysis of the AQP genes showed that the purifying selection pressure acted on duplicate genes, which was related to a high conservation of the functions. This situation contrasted with the expression patterns observed for different organs, developmental stages or genotypes under water deficit conditions, which indicated functional divergence at transcription. Expression analyses on contrasting genotypes showed high gene transcription from Tonoplast Intrinsic Protein 1 (TIP1) and 2 (TIP2), and Plasma Membrane Intrinsic Protein 1 (PIP1) and 2 (PIP2) subfamilies in roots and from TIP1 and PIP1 subfamilies in leaves. Interestingly, during severe drought stress, 4 TIP genes analyzed in leaves of the tolerant accession reached up to 15-fold the level observed at the susceptible genotype, suggesting a positive relationship with drought tolerance. The obtained results extend our understanding of the structure and function of AQPs, particularly under water stress conditions.
机译:水通道蛋白(AQP)是跨膜蛋白,对于控制植物等重要农作物物种(小麦)的水和其他发育和胁迫耐受性所需的其他分子的流动至关重要。在这项研究中,我们利用一种基因组方法来分析有关公共数据库中可用的AQP的信息,以表征其结构和功能。此外,我们在转录水平上验证了一系列AQP基因的表达,包括对干旱,不同器官和水分胁迫水平具有相反反应的种质。我们发现了65个新的AQP基因,其中60%是通过多倍体化扩展的拷贝。对AQP基因的序列分析表明,纯化选择压力作用于重复的基因,这与功能的高度保守有关。这种情况与在缺水条件下观察到的不同器官,发育阶段或基因型的表达模式形成对比,这表明转录时的功能差异。对不同基因型的表达分析表明,根部的Tonoplast内在蛋白1(TIP1)和2(TIP2)以及血浆质膜内在蛋白1(PIP1)和2(PIP2)的亚家族以及叶中的TIP1和PIP1的亚家族都具有很高的基因转录率。有趣的是,在严重干旱胁迫下,在耐性种质的叶片中分析的4个TIP基因达到了易感基因型观察水平的15倍,表明与耐旱性呈正相关。获得的结果扩展了我们对AQPs的结构和功能的理解,尤其是在水分胁迫条件下。

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