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Salt-Induced Tissue-Specific Cytosine Methylation Downregulates Expression of HKT Genes in Contrasting Wheat (Triticum aestivum L.) Genotypes

机译:盐诱导的组织特异性胞嘧啶甲基化作用下调了小麦(HK)基因型HKT基因的表达

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摘要

Plants have evolved several strategies, including regulation of genes through epigenetic modifications, to cope with environmental stresses. DNA methylation is dynamically regulated through the methylation and demethylation of cytosine in response to environmental perturbations. High-affinity potassium transporters (HKTs) have accounted for the homeostasis of sodium and potassium ions in plants under salt stress. Wheat (Triticum aestivum L.) is sensitive to soil salinity, which impedes its growth and development, resulting in decreased productivity. The differential expression of HKTs has been reported to confer tolerance to salt stress in plants. In this study, we investigated variations in cytosine methylation and their effects on the expression of HKT genes in contrasting wheat genotypes under salt stress. We observed a genotype- and tissue-specific increase in cytosine methylation induced by NaCl stress that downregulated the expression of TaHKT2;1 and TaHKT2;3 in the shoot and root tissues of Kharchia-65, thereby contributing to its improved salt-tolerance ability. Although TaHKT1;4 was expressed only in roots and was downregulated under the stress in salt-tolerant genotypes, it was not regulated through variations in cytosine methylation. Thus, understanding epigenetic regulation and the function of HKTs would enable an improvement in salt tolerance and the development of salt-tolerant crops.
机译:植物已经进化出几种策略,包括通过表观遗传修饰来调控基因,以应对环境压力。通过响应于环境扰动,胞嘧啶的甲基化和去甲基化来动态调节DNA甲基化。高亲和力钾转运蛋白(HKTs)解释了盐胁迫下植物体内钠和钾离子的稳态。小麦(Triticum aestivum L.)对土壤盐分敏感,这会阻碍其生长发育,导致生产力下降。据报道,HKT的差异表达赋予植物对盐胁迫的耐受性。在这项研究中,我们研究了盐胁迫下小麦基因型中胞嘧啶甲基化的变化及其对HKT基因表达的影响。我们观察到基因型和组织特异性的NaCl胁迫诱导的胞嘧啶甲基化增加,从而下调了Kharchia-65芽和根组织中TaHKT2; 1和TaHKT2; 3的表达,从而有助于提高其耐盐性。尽管TaHKT1; 4仅在根中表达,并且在耐盐基因型的胁迫下被下调,但它不受胞嘧啶甲基化程度的调节。因此,了解表观遗传调控和HKTs的功能将有助于提高耐盐性和耐盐作物的发展。

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