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Revisiting the chlorophyll biosynthesis pathway using genome scale metabolic model of Oryza sativa japonica

机译:利用水稻基因组规模代谢模型重新探讨叶绿素的生物合成途径

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Chlorophyll is one of the most important pigments present in green plants and rice is one of the major food crops consumed worldwide. We curated the existing genome scale metabolic model (GSM) of rice leaf by incorporating new compartment, reactions and transporters. We used this modified GSM to elucidate how the chlorophyll is synthesized in a leaf through a series of bio-chemical reactions spanned over different organelles using inorganic macronutrients and light energy. We predicted the essential reactions and the associated genes of chlorophyll synthesis and validated against the existing experimental evidences. Further, ammonia is known to be the preferred source of nitrogen in rice paddy fields. The ammonia entering into the plant is assimilated in the root and leaf. The focus of the present work is centered on rice leaf metabolism. We studied the relative importance of ammonia transporters through the chloroplast and the cytosol and their interlink with other intracellular transporters. Ammonia assimilation in the leaves takes place by the enzyme glutamine synthetase (GS) which is present in the cytosol (GS1) and chloroplast (GS2). Our results provided possible explanation why GS2 mutants show normal growth under minimum photorespiration and appear chlorotic when exposed to air.
机译:叶绿素是绿色植物中最重要的色素之一,大米是全世界消费的主要粮食作物之一。我们通过整合新的区室,反应和转运蛋白,对水稻叶片的现有基因组规模代谢模型(GSM)进行了策划。我们使用这种改良的GSM来阐明如何利用无机大量营养素和光能,通过跨越不同细胞器的一系列生化反应,在叶片中合成叶绿素。我们预测了叶绿素合成的基本反应和相关基因,并针对现有的实验证据进行了验证。此外,已知氨是稻田中优选的氮源。进入植物的氨在根和叶中被吸收。当前工作的重点是稻米的新陈代谢。我们研究了叶绿体和细胞质中氨转运蛋白及其与其他细胞内转运蛋白的相互联系的相对重要性。叶片中的氨吸收是通过谷氨酰胺合成酶(GS)发生的,谷氨酰胺合成酶存在于细胞质(GS1)和叶绿体(GS2)中。我们的结果提供了可能的解释,为什么GS2突变体在最小的光呼吸作用下显示正常生长,而暴露于空气中却显示出褪绿。

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