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Isotopic Fractionation by a Fungal P450 Nitric Oxide Reductase during the Production of N_2O

机译:N_2O产生过程中真菌P450一氧化氮还原酶的同位素分馏

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Nitrous oxide (N_2O) is a potent greenhouse gas with a 100-year global warming potential approximately 300 times that of CO_2. Because microbes account for over 75% of the N_2O released in the U.S., understanding the biochemical processes by which N_2O is produced is critical to our efforts to mitigate climate change. In the current study, we used gas chromatography-isotope ratio mass spectrometry (GC-IRMS) to measure the δ~(15)N, δ~(18)O, δ~(15)N~α, and δ~(15)N~β of N_2O generated by purified fungal nitric oxide reductase (P450nor) from Histoplasma capsulatum. The isotope values were used to calculate site preference (SP) values (difference in δ~(15)N between the central (α) and terminal (β) N atoms in N_2O), enrichment factors (ε), and kinetic isotope effects (KIEs). Both oxygen and N" displayed normal isotope effects during enzymatic NO reduction with ε values of -25.7‰ (KIE = 1.0264) and -12.6‰ (KIE = 1.0127), respectively. However, bulk nitrogen (average δ~(15)N of N~α and N~β) and N~β exhibited inverse isotope effects with e values of 14.0‰ (KIE = 0.9862) and 36.1‰ (KIE = 0.9651), respectively. The observed inverse isotope effect in δ~(15)N~β is consistent with reversible binding of the first NO in the P450nor reaction mechanism. In contrast to the constant SP observed during NO reduction in microbial cultures, the site preference measured for purified H. capsulatum P450nor was not constant, increasing from ~15‰ to ~29‰ during the course of the reaction. This indicates that SP for microbial cultures can vary depending on the growth conditions, which may complicate source tracing during microbial denitrification.
机译:一氧化二氮(N_2O)是一种有力的温室气体,具有100年的全球变暖潜能,约为CO_2的300倍。由于微生物占美国释放的N_2O的75%以上,因此了解生产N_2O的生化过程对于我们缓解气候变化的努力至关重要。在目前的研究中,我们使用气相色谱-同位素比质谱(GC-IRMS)测量δ〜(15)N,δ〜(18)O,δ〜(15)N〜α和δ〜(15荚膜组织胞浆中纯化的真菌一氧化氮还原酶(P450nor)产生的N_2O的N〜β。同位素值用于计算位点偏好(SP)值(N_2O中中心(α)和末端(β)N原子之间的δ〜(15)N差异),富集因子(ε)和动力学同位素效应( KIEs)。在酶促NO还原过程中,氧和N“均表现出正常的同位素效应,其ε值分别为-25.7‰(KIE = 1.0264)和-12.6‰(KIE = 1.0127)。但是,氮的体积分数(平均δ〜(15)N N〜α和N〜β)和N〜β表现出反同位素效应,e值分别为14.0‰(KIE = 0.9862)和36.1‰(KIE = 0.9651),在δ〜(15)N中观察到的反同位素效应〜β与P450nor反应机理中第一个NO的可逆结合一致,与微生物培养物中NO还原过程中观察到的恒定SP相比,纯化的荚膜H. P450nor的位点偏好不是恒定的,从〜15‰增加在反应过程中达到〜29‰,这表明微生物培养物的SP会根据生长条件而变化,这可能会使微生物反硝化过程中的源追踪变得复杂。

著录项

  • 来源
    《Environmental Science & Technology》 |2014年第18期|10707-10715|共9页
  • 作者单位

    Department of Biochemistry & Molecular Biology, Michigan State University, East Lansing, Michigan 48824, United States;

    Department of Zoology, Michigan State University, East Lansing, Michigan 48824, United States;

    Department of Zoology, Michigan State University, East Lansing, Michigan 48824, United States;

    Department of Biochemistry & Molecular Biology, Michigan State University, East Lansing, Michigan 48824, United States;

  • 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);
  • 原文格式 PDF
  • 正文语种 eng
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  • 入库时间 2022-08-17 14:01:23

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