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An InDel in the Promoter of Al-ACTIVATED MALATE TRANSPORTER9 Selected during Tomato Domestication Determines Fruit Malate Contents and Aluminum Tolerance

机译:番茄驯化过程中选择的Al活化苹果酸转运蛋白9启动子中的InDel决定了水果苹果酸含量和铝耐受性

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摘要

Deciphering the mechanism of malate accumulation in plants would contribute to a greater understanding of plant chemistry, which has implications for improving flavor quality in crop species and enhancing human health benefits. However, the regulation of malate metabolism is poorly understood in crops such as tomato (Solanum lycopersicum). Here, we integrated a metabolite-based genome-wide association study with linkage mapping and gene functional studies to characterize the genetics of malate accumulation in a global collection of tomato accessions with broad genetic diversity. We report that TFM6 (tomato fruit malate 6), which corresponds to Al-ACTIVATED MALATE TRANSPORTER9 (Sl-ALMT9 in tomato), is the major quantitative trait locus responsible for variation in fruit malate accumulation among tomato genotypes. A 3-bp indel in the promoter region of Sl-ALMT9 was linked to high fruit malate content. Further analysis indicated that this indel disrupts a W-box binding site in the Sl-ALMT9 promoter, which prevents binding of the WRKY transcription repressor Sl-WRKY42, thereby alleviating the repression of Sl-ALMT9 expression and promoting high fruit malate accumulation. Evolutionary analysis revealed that this highly expressed Sl-ALMT9 allele was selected for during tomato domestication. Furthermore, vacuole membrane-localized Sl-ALMT9 increases in abundance following Al treatment, thereby elevating malate transport and enhancing Al resistance.
机译:理解植物中苹果酸积累的机制将有助于对植物化学的深入了解,这对改善作物物种的风味质量和增强人类健康有益。但是,人们对诸如番茄(番茄)等农作物中苹果酸代谢的调控了解甚少。在这里,我们将基于代谢物的全基因组关联研究与连锁图谱和基因功能研究进行了整合,以表征具有广泛遗传多样性的全球番茄种质中苹果酸积累的遗传特性。我们报告说,TFM6(番茄果实苹果酸6),其对应于Al-活化苹果酸转运蛋白9(番茄中的S1-ALMT9),是负责番茄基因型中水果苹果酸积累变化的主要定量性状基因座。 S1-ALMT9的启动子区域中的3-bp插入缺失与水果高苹果酸含量相关。进一步的分析表明,该插入缺失干扰了S1-ALMT9启动子中的W-box结合位点,从而阻止了WRKY转录阻遏物S1-WRKY42的结合,从而减轻了对S1-ALMT9表达的抑制并促进了高的苹果酸积累。进化分析表明,此高表达的Sl-ALMT9等位基因是在番茄驯化过程中选择的。此外,在铝处理之后,液泡膜定位的Sl-ALMT9的丰度增加,从而提高了苹果酸的转运并增强了铝的抗性。

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