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Spatiotemporal expression patterns of wheat amino acid transporters reveal their putative roles in nitrogen transport and responses to abiotic stress

机译:小麦氨基酸转运蛋白的时空表达模式揭示了其在氮转运和对非生物胁迫的响应中的推定作用

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摘要

Amino acid transporters have roles in amino acid uptake from soil, long-distance transport, remobilization from vegetative tissues and accumulation in grain. Critically, the majority of wheat grain nitrogen is derived from amino acids remobilized from vegetative organs. However, no systematic analysis of wheat AAT genes has been reported to date. Here, 283 full length wheat AAT genes representing 100 distinct groups of homeologs were identified and curated by selectively consolidating IWGSC CSSv2 and TGACv1 Triticum aestivum genome assemblies and reassembling or mapping of IWGSC CSS chromosome sorted reads to fill any gaps. Gene expression profiling was performed using public RNA-seq data from root, leaf, stem, spike, grain and grain cells (transfer cell (TC), aleurone cell (AL), and starchy endosperm (SE)). AATs highly expressed in roots are good candidates for amino acid uptake from soil whilst AATs highly expressed in senescing leaves and stems may be involved in translocation to grain. AATs in TC (TaAAP2 and TaAAP19) and SE (TaAAP13) may play important roles in determining grain protein content and grain yield. The expression levels of AAT homeologs showed unequal contributions in response to abiotic stresses and development, which may aid wheat adaptation to a wide range of environments.
机译:氨基酸转运蛋白在土壤中吸收氨基酸,长距离转运,从营养组织中迁移出来以及在谷物中积累等方面发挥着作用。至关重要的是,小麦籽粒中的大部分氮都来自营养器官中固定的氨基酸。但是,迄今尚未报道对小麦AAT基因的系统分析。在这里,通过选择性地整合IWGSC CSSv2和TGACv1普通小麦基因组装配体,并重组或定位IWGSC CSS染色体排序读段来鉴定和整理代表100个不同同源组的283个全长小麦AAT基因,并加以管理以填补任何空白。使用来自根,叶,茎,穗,谷物和谷物细胞(转移细胞(TC),糊粉细胞(AL)和淀粉质胚乳(SE))的公共RNA-seq数据进行基因表达谱分析。在根部高表达的AAT是从土壤中吸收氨基酸的良好候选者,而在衰老的叶片和茎中高表达的AAT可能参与向谷物的转运。 TC(TaAAP2和TaAAP19)和SE(TaAAP13)中的AAT可能在确定谷物蛋白质含量和产量中起重要作用。 AAT同源物的表达水平显示出对非生物胁迫和发育的不平等贡献,这可能有助于小麦适应广泛的环境。

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