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Genome-Wide Association of Carbon and Nitrogen Metabolism in the Maize Nested Association Mapping Population

机译:玉米巢状关联图种群中碳氮代谢的全基因组关联

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Carbon (C) and nitrogen (N) metabolismare critical to plant growth and development and are at the basis of crop yield and adaptation. We performed high-throughput metabolite analyses on over 12,000 samples from the nested association mapping population to identify genetic variation in C and N metabolism in maize (Zea mays ssp. mays). All samples were grown in the same field and used to identify natural variation controlling the levels of 12 key C and N metabolites, namely chlorophyll a, chlorophyll b, fructose, fumarate, glucose, glutamate, malate, nitrate, starch, sucrose, total amino acids, and total protein, along with the first two principal components derived from them. Our genome-wide association results frequently identified hits with single-gene resolution. In addition to expected genes such as invertases, natural variation was identified in key C-4 metabolism genes, including carbonic anhydrases and a malate transporter. Unlike several prior maize studies, extensive pleiotropy was found for C and N metabolites. This integration of field-derived metabolite data with powerful mapping and genomics resources allows for the dissection of key metabolic pathways, providing avenues for future genetic improvement.
机译:碳(C)和氮(N)代谢对于植物的生长和发育至关重要,并且是作物产量和适应能力的基础。我们对巢式关联作图群体的12,000多个样品进行了高通量代谢物分析,以鉴定玉米(Zea mays ssp。mays)中C和N代谢的遗传变异。所有样品均在同一田里生长,并用于鉴定控制12种主要C和N代谢产物(即叶绿素a,叶绿素b,果糖,富马酸酯,葡萄糖,谷氨酸,苹果酸,硝酸盐,淀粉,蔗糖,总氨基)水平的自然变异。酸和总蛋白,以及从中衍生的前两个主要成分。我们在全基因组范围内的关联结果经常可以识别出具有单基因解析的命中。除了诸如转化酶的预期基因外,在关键的C-4代谢基因中还发现了自然变异,包括碳酸酐酶和苹果酸转运蛋白。与先前的几项玉米研究不同,C和N代谢物具有广泛的多效性。野外代谢物数据与强大的作图和基因组学资源的这种整合,可以解剖关键的代谢途径,为将来的遗传改良提供了途径。

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