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Lysine harvesting is an antioxidant strategy and triggers underground polyamine metabolism

机译:赖氨酸的收获是一种抗氧化剂策略,可引发地下多胺代谢

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摘要

Both single and multicellular organisms depend on anti-stress mechanisms that enable them to deal with sudden changes in the environment, including exposure to heat and oxidants. Central to the stress response are dynamic changes in metabolism, such as the transition from the glycolysis to the pentose phosphate pathway-a conserved first-line response to oxidative insults(1,2). Here we report a second metabolic adaptation that protects microbial cells in stress situations. The role of the yeast polyamine transporter Tpo1p(3-5) in maintaining oxidant resistance is unknown(6). However, a proteomic time-course experiment suggests a link to lysine metabolism. We reveal a connection between polyamine and lysine metabolism during stress situations, in the form of a promiscuous enzymatic reaction in which the first enzyme of the polyamine pathway, Spe1p, decarboxylates lysine and forms an alternative polyamine, cadaverine. The reaction proceeds in the presence of extracellular lysine, which is taken up by cells to reach concentrations up to one hundred times higher than those required for growth. Such extensive harvest is not observed for the other amino acids, is dependent on the polyamine pathway and triggers a reprogramming of redox metabolism. As a result, NADPH-which would otherwise be required for lysine biosynthesis-is channelled into glutathione metabolism, leading to a large increase in glutathione concentrations, lower levels of reactive oxygen species and increased oxidant tolerance. Our results show that nutrient uptake occurs not only to enable cell growth, but when the nutrient availability is favourable it also enables cells to reconfigure their metabolism to preventatively mount stress protection.
机译:单细胞和多细胞生物都依赖于抗应激机制,使它们能够应对环境的突然变化,包括暴露于热和氧化剂。应激反应的核心是代谢的动态变化,例如从糖酵解到戊糖磷酸途径的转变-保守的对氧化损伤的一线反应(1,2)。在这里,我们报告了第二种代谢适应性,可以在压力情况下保护微生物细胞。酵母多胺转运蛋白Tpo1p(3-5)在维持抗氧化性中的作用尚不清楚(6)。然而,蛋白质组学的时程实验表明与赖氨酸代谢有关。我们揭示了在应激情况下多胺和赖氨酸代谢之间的联系,其形式为混杂酶反应,其中多胺途径的第一个酶Spe1p使赖氨酸脱羧并形成另一种多胺尸胺。反应在细胞外赖氨酸的存在下进行,细胞内赖氨酸被细胞吸收,使其浓度达到生长所需浓度的一百倍。对于其他氨基酸,未观察到如此广泛的收获,其依赖于多胺途径并触发氧化还原代谢的重新编程。结果,赖氨酸生物合成原本需要的NADPH被导入谷胱甘肽代谢中,导致谷胱甘肽浓度大幅增加,活性氧含量降低和抗氧化剂耐受性提高。我们的结果表明,发生养分吸收不仅使细胞生长,而且当养分利用率高时,还使细胞能够重新配置其新陈代谢,从而预防性地保护应激。

著录项

  • 来源
    《Nature》 |2019年第7768期|249-253|共5页
  • 作者单位

    Univ Cambridge, Dept Biochem, Cambridge, England|Inst Nacl Ciencias Med & Nutr Salvador Zubiran, Dept Nutr Physiol, Mexico City, DF, Mexico;

    Francis Crick Inst, Mol Biol Metab Lab, London, England;

    Univ Cambridge, Dept Biochem, Cambridge, England|Univ Cambridge, Med Res Council, Mitochondrial Biol Unit, Cambridge, England;

    Univ Warwick, Warwick Med Sch, Coventry, W Midlands, England;

    Francis Crick Inst, Mol Biol Metab Lab, London, England|UCL, Dept Genet Evolut & Environm, London, England;

    Francis Crick Inst, Mol Biol Metab Lab, London, England;

    Univ Cambridge, Dept Biochem, Cambridge, England|Francis Crick Inst, Mol Biol Metab Lab, London, England;

    Francis Crick Inst, Mol Biol Metab Lab, London, England;

    BOKU Univ Nat Resources & Life Sci, Dept Biotechnol, Vienna, Austria;

    Francis Crick Inst, Mol Biol Metab Lab, London, England;

    Univ Nacl Autonoma Mexico, Fac Quim, Dept Farm, Mexico City, DF, Mexico;

    Univ Cambridge, Dept Biochem, Cambridge, England|Biognosys AG, Schlieren, Switzerland;

    Univ Cambridge, Dept Biochem, Cambridge, England|Francis Crick Inst, Mol Biol Metab Lab, London, England|Charite, Dept Biochem, Berlin, Germany;

    Univ Cambridge, Dept Biochem, Cambridge, England|Francis Crick Inst, Mol Biol Metab Lab, London, England|Charite, Dept Biochem, Berlin, Germany;

  • 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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  • 正文语种 eng
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  • 入库时间 2022-08-18 04:27:52

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