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A Coastal Cline in Sodium Accumulation in Arabidopsis thaliana Is Driven by Natural Variation of the Sodium Transporter AtHKT1;1

机译:钠转运蛋白AtHKT1; 1的自然变异驱动拟南芥中沿海积累的钠盐。

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摘要

The genetic model plant Arabidopsis thaliana, like many plant species, experiences a range of edaphic conditions across its natural habitat. Such heterogeneity may drive local adaptation, though the molecular genetic basis remains elusive. Here, we describe a study in which we used genome-wide association mapping, genetic complementation, and gene expression studies to identify cis-regulatory expression level polymorphisms at the AtHKT1;1 locus, encoding a known sodium (Na+) transporter, as being a major factor controlling natural variation in leaf Na+ accumulation capacity across the global A. thaliana population. A weak allele of AtHKT1;1 that drives elevated leaf Na+ in this population has been previously linked to elevated salinity tolerance. Inspection of the geographical distribution of this allele revealed its significant enrichment in populations associated with the coast and saline soils in Europe. The fixation of this weak AtHKT1;1 allele in these populations is genetic evidence supporting local adaptation to these potentially saline impacted environments.
机译:与许多植物物种一样,遗传模型植物拟南芥在其自然栖息地中经历了一系列的蒸发条件。尽管分子遗传学基础仍然难以捉摸,但这种异质性可能会推动局部适应。在这里,我们描述了一项研究,其中我们使用了全基因组关联映射,遗传互补和基因表达研究,以鉴定AtHKT1; 1位点的顺式调控表达水平多态性,该基因编码一个已知的钠(Na + )转运蛋白,是控制整个拟南芥种群叶片Na + 积累能力自然变化的主要因素。导致该种群中叶片Na + 升高的AtHKT1; 1弱等位基因先前与盐分耐受性升高有关。对等位基因地理分布的检查表明,其在欧洲沿海和盐渍土相关种群中的大量富集。这些弱的AtHKT1; 1等位基因在这些人群中的固定是遗传证据,支持局部适应这些可能受到盐碱影响的环境。

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