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Genome-Wide Association Mapping of Salinity Tolerance at the Seedling Stage in a Panel of Vietnamese Landraces Reveals New Valuable QTLs for Salinity Stress Tolerance Breeding in Rice

机译:越南地区小组幼苗阶段的盐度宽度的基因组 - 宽度尺寸揭示了大米盐度胁迫耐受育种的新有价值的QTL

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摘要

Rice tolerance to salinity stress involves diverse and complementary mechanisms, such as the regulation of genome expression, activation of specific ion-transport systems to manage excess sodium at the cell or plant level, and anatomical changes that avoid sodium penetration into the inner tissues of the plant. These complementary mechanisms can act synergistically to improve salinity tolerance in the plant, which is then interesting in breeding programs to pyramidize complementary QTLs (quantitative trait loci), to improve salinity stress tolerance of the plant at different developmental stages and in different environments. This approach presupposes the identification of salinity tolerance QTLs associated with different mechanisms involved in salinity tolerance, which requires the greatest possible genetic diversity to be explored. To contribute to this goal, we screened an original panel of 179 Vietnamese rice landraces genotyped with 21,623 SNP markers for salinity stress tolerance under 100 mM NaCl treatment, at the seedling stage, with the aim of identifying new QTLs involved in the salinity stress tolerance via a genome-wide association study (GWAS). Nine salinity tolerance-related traits, including the salt injury score, chlorophyll and water content, and K+ and Na+ contents were measured in leaves. GWAS analysis allowed the identification of 26 QTLs. Interestingly, ten of them were associated with several different traits, which indicates that these QTLs act pleiotropically to control the different levels of plant responses to salinity stress. Twenty-one identified QTLs colocalized with known QTLs. Several genes within these QTLs have functions related to salinity stress tolerance and are mainly involved in gene regulation, signal transduction or hormone signaling. Our study provides promising QTLs for breeding programs to enhance salinity tolerance and identifies candidate genes that should be further functionally studied to better understand salinity tolerance mechanisms in rice.
机译:大米耐受盐度胁迫涉及不同和互补的机制,如基因组表达的调节,特定的离子传输系统的激活来管理过量钠在细胞或植物的水平,和解剖学上的变化即渗透避免钠成的内部组织植物。这些互补机制可以协同作用,以改善植物中的盐度耐受性,然后在育种程序中有趣的是,以提高不同发展阶段和不同环境的植物的盐度应力耐受性。该方法预先识别与良性公差所涉及的不同机制相关的盐度耐受QTL,这需要探索最大可能的遗传多样性。为了促进这一目标,我们筛选了一个179个越南水稻样厂的原始面板,在幼苗阶段,在100mM NaCl处理下进行了21,623个SNP标记,用于盐度胁迫耐受性,目的是识别施放胁迫耐受性的新型QTLS一个基因组协会研究(GWAS)。在叶片中测量九个盐度耐受性相关的性状,包括盐损伤得分,叶绿素和含水量,K +和Na +含量。 GWAS分析允许识别26 QTL。有趣的是,其中十分之一与几种不同的特征有关,这表明这些QTLS对脂肪术术语来控制不同水平的植物对盐度应激的反应。二十一识别的QTL与已知QTL分开。这些QTL内的几种基因具有与盐度应力耐受性相关的功能,主要参与基因调控,信号转导或激素信号传导。我们的研究提供了有希望的QTL,用于培育计划以提高盐度耐受性,并鉴定应进一步在一起的候选基因,以更好地了解水稻中的盐度耐受机制。

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