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通过时间和组织分辨转录组学及代谢组学揭示发芽高粱籽粒中特殊代谢的物种特异性动态变化。

Species-specific dynamics of specialized metabolism in germinating sorghum grain revealed by temporal and tissue-resolved transcriptomics and metabolomics.

作者信息

Liu Huijun, Micic Nikola, Miller Sara, Crocoll Christoph, Bjarnholt Nanna

机构信息

Plant Biochemistry Laboratory, Department of Plant and Environmental Sciences, University of Copenhagen, Frederiksberg, 1871, Denmark; Copenhagen Plant Science Center, Department of Plant and Environmental Sciences, University of Copenhagen, Frederiksberg, 1871, Denmark.

DynaMo Center, Department of Plant and Environmental Sciences, University of Copenhagen, Frederiksberg, 1871, Denmark.

出版信息

Plant Physiol Biochem. 2023 Mar;196:807-820. doi: 10.1016/j.plaphy.2023.02.031. Epub 2023 Feb 18.

Abstract

Seed germination is crucial for plant productivity, and the biochemical changes during germination affect seedling survival, plant health and yield. While the general metabolism of germination is extensively studied, the role of specialized metabolism is less investigated. We therefore analyzed the metabolism of the defense compound dhurrin during sorghum (Sorghum bicolor) grain germination and early seedling development. Dhurrin is a cyanogenic glucoside, which is catabolized into different bioactive compounds at other stages of plant development, but its fate and role during germination is unknown. We dissected sorghum grain into three different tissues and investigated dhurrin biosynthesis and catabolism at the transcriptomic, metabolomic and biochemical level. We further analyzed transcriptional signature differences of cyanogenic glucoside metabolism between sorghum and barley (Hordeum vulgare), which produces similar specialized metabolites. We found that dhurrin is de novo biosynthesized and catabolized in the growing embryonic axis as well as the scutellum and aleurone layer, two tissues otherwise mainly acknowledged for their involvement in release and transport of general metabolites from the endosperm to the embryonic axis. In contrast, genes encoding cyanogenic glucoside biosynthesis in barley are exclusively expressed in the embryonic axis. Glutathione transferase enzymes (GSTs) are involved in dhurrin catabolism and the tissue-resolved analysis of GST expression identified new pathway candidate genes and conserved GSTs as potentially important in cereal germination. Our study demonstrates a highly dynamic tissue- and species-specific specialized metabolism during cereal grain germination, highlighting the importance of tissue-resolved analyses and identification of specific roles of specialized metabolites in fundamental plant processes.

摘要

种子萌发对植物生产力至关重要,萌发过程中的生化变化会影响幼苗存活、植株健康和产量。虽然对萌发的一般代谢进行了广泛研究,但对特殊代谢的作用研究较少。因此,我们分析了高粱(Sorghum bicolor)籽粒萌发和幼苗早期发育过程中防御化合物蜀黍苷的代谢。蜀黍苷是一种生氰糖苷,在植物发育的其他阶段会分解为不同的生物活性化合物,但其在萌发过程中的命运和作用尚不清楚。我们将高粱籽粒分为三种不同组织,并在转录组学、代谢组学和生化水平上研究了蜀黍苷的生物合成和分解代谢。我们还进一步分析了高粱和大麦(Hordeum vulgare)之间生氰糖苷代谢的转录特征差异,大麦会产生类似的特殊代谢产物。我们发现蜀黍苷在生长中的胚轴以及盾片和糊粉层中从头合成并分解代谢,盾片和糊粉层这两个组织通常主要因其参与将一般代谢产物从胚乳释放和运输到胚轴而被认可。相比之下,大麦中编码生氰糖苷生物合成的基因仅在胚轴中表达。谷胱甘肽转移酶(GSTs)参与蜀黍苷的分解代谢,对GST表达的组织解析分析确定了新的途径候选基因,并且保守的GSTs在谷物萌发中可能具有重要作用。我们的研究表明,谷物籽粒萌发过程中存在高度动态的组织特异性和物种特异性特殊代谢,突出了组织解析分析以及确定特殊代谢产物在植物基本过程中的特定作用的重要性。

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