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首页> 外文期刊>Proceedings of the National Academy of Sciences of the United States of America >Phosphoeno/pyruvate carboxylase intrinsically located in the chloroplast of rice plays a crucial role in ammonium assimilation
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Phosphoeno/pyruvate carboxylase intrinsically located in the chloroplast of rice plays a crucial role in ammonium assimilation

机译:固有位于水稻叶绿体中的磷酸/丙酮酸羧化酶在氨同化中起关键作用

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摘要

Phosphoeno/pyruvate carboxylase (PEPC) is a key enzyme of primary metabolism in bacteria, algae, and vascular plants, and is believed to be cytosolic. Here we show that rice (Oryza sativa L.) has a plant-type PEPC, Osppc4, that is targeted to the chloroplast. Osppc4 was expressed in all organs tested and showed high expression in the leaves. Its expression in the leaves was confined to mesophyll cells, and Osppc4 accounted for approximately one-third of total PEPC protein in the leaf blade. Recombinant Osppc4 was active in the PEPC reaction, showing V_(max) comparable to cytosolic isozymes. Knockdown of Osppc4 expression by the RNAi technique resulted in stunting at the vegetative stage, which was much more marked when rice plants were grown with ammonium than with nitrate as the nitrogen source. Comparison of leaf metabolomes of ammonium-grown plants suggested that the knockdown suppressed ammonium assimilation and subsequent amino acid synthesis by reducing levels of organic acids, which are carbon skeleton donors for these processes. We also identified the chloroplastic PEPC gene in other Oryza species, all of which are adapted to waterlogged soil where the major nitrogen source is ammonium. This suggests that, in addition to glycolysis, the genus Oryza has a unique route to provide organic acids for ammonium assimilation that involves a chloroplastic PEPC, and that this route is crucial for growth with ammonium. This work provides evidence for diversity of primary ammonium assimilation in the leaves of vascular plants.
机译:磷酸/丙酮酸羧化酶(PEPC)是细菌,藻类和维管植物中主要代谢的关键酶,被认为是胞质的。在这里,我们显示水稻(Oryza sativa L.)具有植物型PEPC Osppc4,其靶向叶绿体。 Osppc4在所有测试的器官中表达,并在叶片中显示高表达。它在叶片中的表达仅限于叶肉细胞,Osppc4约占叶片中PEPC蛋白总量的三分之一。重组Osppc4在PEPC反应中具有活性,显示V_(max)与胞质同工酶相当。通过RNAi技术抑制Osppc4表达会导致营养期发育迟缓,这在水稻植株中以铵盐而非硝酸盐为氮源生长时表现得更为明显。铵态植物叶片代谢组的比较表明,敲低可以通过降低有机酸水平抑制铵同化作用和随后的氨基酸合成,而有机酸是这些过程的碳骨架供体。我们还鉴定了其他Oryza物种中的叶绿体PEPC基因,所有这些基因都适合于主要氮源为铵的涝渍土壤。这表明,除了糖酵解,稻曲属还具有独特的途径来提供有机酸,用于氨同化,涉及到一种氯塑料PEPC,并且该途径对于铵的生长至关重要。这项工作为维管植物叶片中初级铵同化的多样性提供了证据。

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  • 作者单位

    Photobiology and Photosynthesis Research Unit, National Institute of Agrobiological Sciences, Kannondai, Tsukuba 305-8602, Japan;

    rnPhotobiology and Photosynthesis Research Unit, National Institute of Agrobiological Sciences, Kannondai, Tsukuba 305-8602, Japan;

    rnPhotobiology and Photosynthesis Research Unit, National Institute of Agrobiological Sciences, Kannondai, Tsukuba 305-8602, Japan Faculty of Agriculture and Life Science, Hirosaki University, Hirosaki 036-8561, Japan;

    rnPhotobiology and Photosynthesis Research Unit, National Institute of Agrobiological Sciences, Kannondai, Tsukuba 305-8602, Japan;

    rnPhotobiology and Photosynthesis Research Unit, National Institute of Agrobiological Sciences, Kannondai, Tsukuba 305-8602, Japan National Institute of Crop Science, Tsukuba 305-8517, Japan;

    rnPhotobiology and Photosynthesis Research Unit, National Institute of Agrobiological Sciences, Kannondai, Tsukuba 305-8602, Japan National Agricultural Research Center for Hokkaido Region, Sapporo 062-8555, Japan;

    rnRIKEN Plant Science Center, Yokohama, Kanagawa 230-0045, Japan;

    rnRIKEN Plant Science Center, Yokohama, Kanagawa 230-0045, Japan;

    rnPhotobiology and Photosynthesis Research Unit, National Institute of Agrobiological Sciences, Kannondai, Tsukuba 305-8602, Japan Graduate School of Agriculture, Kobe University, Kobe 657-8501, Japan;

    rnPhotobiology and Photosynthesis Research Unit, National Institute of Agrobiological Sciences, Kannondai, Tsukuba 305-8602, Japan;

  • 收录信息 美国《科学引文索引》(SCI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    amino acid synthesis; glycolysis; nitrogen assimilation; organic acid synthesis; oryza;

    机译:氨基酸合成;糖酵解氮同化有机酸合成稻;

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