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Complex molecular mechanisms underlying seedling salt tolerance in rice revealed by comparative transcriptome and metabolomic profiling

机译:比较转录组和代谢组学分析揭示了水稻幼苗耐盐性的复杂分子机制

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摘要

To understand the physiological and molecular mechanisms underlying seedling salt tolerance in rice (Oryza sativa L.), the phenotypic, metabolic, and transcriptome responses of two related rice genotypes, IR64 and PL177, with contrasting salt tolerance were characterized under salt stress and salt+abscisic acid (ABA) conditions. PL177 showed significantly less salt damage, lower Na+/K+ ratios in shoots, and Na+ translocation from roots to shoots, attributed largely to better salt exclusion from its roots and salt compartmentation of its shoots. Exogenous ABA was able to enhance the salt tolerance of IR64 by selectively decreasing accumulation of Na+ in its roots and increasing K+ in its shoots. Salt stress induced general and organ-specific increases of many primary metabolites in both rice genotypes, with strong accumulation of several sugars plus proline in shoots and allantoin in roots. This was due primarily to ABA-mediated repression of genes for degradation of these metabolites under salt. In PL177, salt specifically upregulated genes involved in several pathways underlying salt tolerance, including ABA-mediated cellular lipid and fatty acid metabolic processes and cytoplasmic transport, sequestration by vacuoles, detoxification and cell-wall remodeling in shoots, and oxidation-reduction reactions in roots. Combined genetic and transcriptomic evidence shortlisted relatively few candidate genes for improved salt tolerance in PL177.
机译:为了了解水稻(Oryza sativa L.)幼苗耐盐性的生理和分子机制,在盐胁迫和盐胁迫下,对两种相关水稻基因型IR64和PL177的表型,代谢和转录组反应进行了表征,形成了相反的耐盐性。脱落酸(ABA)条件。 PL177的盐害明显减少,芽中的Na + / K +比降低,并且Na +从根到芽的转运,这主要归因于其根部更好的排盐能力以及芽的盐分室。外源ABA能够通过选择性减少根中Na +的积累和增加芽中K +的含量来增强IR64的耐盐性。盐胁迫诱导了两种水稻基因型中许多主要代谢产物的一般和器官特异性增加,其中芽中的几种糖和脯氨酸的累积量很大,而根中的尿囊素的累积量很大。这主要是由于ABA介导的盐抑制这些代谢产物降解的基因的抑制。在PL177中,盐特别上调了基因,参与了耐盐性的几种途径,包括ABA介导的细胞脂质和脂肪酸代谢过程和细胞质运输,液泡固着,芽中的解毒和细胞壁重塑以及根中的氧化还原反应。遗传和转录组学证据相结合,入围了相对较少的候选基因以提高PL177的耐盐性。

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