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Evolution and metabolic significance of the urea cycle in photosynthetic diatoms

机译:光合硅藻中尿素循环的演变及其代谢意义

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Diatoms dominate the biomass of phytoplankton in nutrient-rich conditions and form the basis of some of the world's most productive marine food webs. The diatom nuclear genome contains genes with bacterial and plastid origins as well as genes of the secondary endosymbiotic host (the exosymbiont), yet little is known about the relative contribution of each gene group to diatom metabolism. Here we show that the exosymbiont-derived ornithine-urea cycle, which is similar to that of metazoans but is absent in green algae and plants, facilitates rapid recovery from prolonged nitrogen limitation. RN A-interference-mediated knockdown of a mitochon-drial carbamoyl phosphate synthase impairs the response of nitrogen-limited diatoms to nitrogen addition. Metabolomic analyses indicate that intermediates in the ornithine-urea cycle are particularly depleted and that both the tricarboxylic acid cycle and the glutamine synthetase/glutamate synthase cycles are linked directly with the ornithine-urea cycle. Several other depleted metabolites are generated from ornithine-urea cycle intermediates by the products of genes laterally acquired from bacteria. This metabolic coupling of bacterial- and exosymbiont-derived proteins seems to be fundamental to diatom physiology because the compounds affected include the major diatom osmolyte proline12 and the precursors for long-chain polyamines required for silica precipitation during cell wall formation. So far, the ornithine-urea cycle is only known for its essential role in the removal of fixed nitrogen in metazoans. In diatoms, this cycle serves as a distribution and repackaging hub for inorganic carbon and nitrogen and contributes significantly to the metabolic response of diatoms to episodic nitrogen availability. The diatom ornithine-urea cycle therefore represents a key pathway for anaplerotic carbon fixation into nitrogenous compounds that are essential for diatom growth and for the contribution of diatoms to marine productivity.
机译:硅藻在营养丰富的条件下主导着浮游植物的生物量,并构成了一些世界上生产力最高的海洋食物网的基础。硅藻核基因组包含具有细菌和质体起源的基因,以及次生共生共生宿主(外共生体)的基因,但每个基因组对硅藻代谢的相对贡献知之甚少。在这里,我们显示外胚轴衍生的鸟氨酸-尿素循环类似于后生动物,但在绿藻和植物中不存在,有助于从长期的氮限制中快速恢复。 RN A干扰介导的线粒体氨基甲酰磷酸磷酸合酶的敲低削弱了限氮硅藻对氮添加的响应。代谢组学分析表明,鸟氨酸-尿素循环中的中间体特别耗竭,并且三羧酸循环和谷氨酰胺合成酶/谷氨酸合酶循环都与鸟氨酸-尿素循环直接相关。鸟氨酸-尿素循环中间体是从细菌侧向获得的基因产物产生的其他几种消耗的代谢物。细菌和胞外共生蛋白的这种新陈代谢耦合似乎是硅藻生理学的基础,因为受影响的化合物包括主要的硅藻渗透液脯氨酸12和长链多胺的前体,这些前体是细胞壁形成过程中二氧化硅沉淀所必需的。迄今为止,鸟氨酸-尿素循环仅以其在后生动物中固定氮的去除中的重要作用而闻名。在硅藻中,该循环充当无机碳和氮的分配和重新包装枢纽,并极大地促进了硅藻对氮的可利用性的代谢反应。因此,硅藻鸟氨酸-尿素循环代表了将过碳碳固定在含氮化合物中的关键途径,这对于硅藻的生长以及硅藻对海洋生产力的贡献至关重要。

著录项

  • 来源
    《Nature》 |2011年第7346期|p.203-207|共5页
  • 作者单位

    J. Craig Venter Institute, San Diego, California 92121k USA,CNRS UMR8197 INSERM U1024, Environmental and Evolutionary Genomics Section, Institute of Biology, Ecole Normale Superieure, 46 rue d'Ulm, 75005 Paris, France;

    J. Craig Venter Institute, San Diego, California 92121k USA;

    Biology Centre ASCR, Institute of Parasitology and University of Soutn Bohemia, Faculty of Science, Branisovska 31,370 05 Ceske Budejovice, Czech Republic;

    Biology Centre ASCR, Institute of Parasitology and University of Soutn Bohemia, Faculty of Science, Branisovska 31,370 05 Ceske Budejovice, Czech Republic;

    Max Planck partner group Departamento de Biologia Vegetal, Universidade Federal de Vicosa, 36570-000 Vicosa, MG, Brasil;

    J. Craig Venter Institute, San Diego, California 92121k USA;

    J. Craig Venter Institute, San Diego, California 92121k USA;

    J. Craig Venter Institute, San Diego, California 92121k USA;

    Institute of Hydrobiology, Chinese Academy of Sciences, Wuhan 430072, China;

    Max-Planck-Insitut fuer Molekulare Pfanzenphysiologie, 14476 Potsdam-Golm, Germany;

    CNRS UMR8197 INSERM U1024, Environmental and Evolutionary Genomics Section, Institute of Biology, Ecole Normale Superieure, 46 rue d'Ulm, 75005 Paris, France;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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