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Singlet Oxygen in the Coupled Photochemical and Biochemical Oxidation of Dissolved Organic Matter

机译:溶解有机物的光化学和生化耦合氧化中的单重态氧

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摘要

Dissolved organic matter (DOM) is a significant (>700 Pg) global C pool. Transport of terrestrial DOM to the inland waters and coastal zones represents the largest flux of reduced C from land to water (215 Tg yr~(-1)) (Meybeck, M. Am. J. Sci. 1983, 282, 401-450). Oxidation of DOM by interdependent photochemical and biochemical processes largely controls the fate of DOM entering surface waters. Reactive oxygen species (ROS) have been hypothesized to play a significant role in the photooxidation of DOM, because they may oxidize the fraction of DOM that is inaccessible to direct photochemical degradation by sunlight We followed the effects of photo-chemically produced singlet oxygen (~1O_2) on DOM by mass spectrometry with ~(18)O-labeled oxygen, to understand how ~1O_2-mediated transformations of DOM may lead to altered DOM bioavailability. The photochemical oxygen uptake by DOM attributed to ~1O_2 increased with DOM concentration, yet it remained a minority contributor to photochemical oxygen uptake even at very high DOM concentrations. When DOM samples were exposed to ~1O_2-generating conditions (Rose Bengal and visible light), increases were observed in DOM constituents with higher oxygen content and release of H_2O_2 was detected. Differential effects of H_2O_2 and ~1O_2-treated DOM showed that ~1O_2-treated DOM led to slower bacterial growth rates relativernto unmodified DOM. Results of this study suggested that the net effect of the reactions between singlet oxygen and DOM may be production of partially oxidized substrates with correspondingly lower potential biological energy yield.
机译:溶解有机物(DOM)是重要的全球碳库(> 700 Pg)。陆地DOM向内陆水域和沿海地区的运输代表了还原碳从陆地到水的最大通量(215 Tg yr〜(-1))(Meybeck,M.Am.J.Sci.1983,282,401-450 )。相互依赖的光化学和生化过程对DOM的氧化在很大程度上控制了DOM进入地表水的命运。假设活性氧(ROS)在DOM的光氧化中起重要作用,因为它们可能会氧化DOM,该部分无法被阳光直接引导光化学降解。我们遵循了光化学产生的单线态氧的作用(〜通过使用〜(18)O标记的氧气通过质谱对DOM进行1O_2)分析,以了解〜1O_2介导的DOM转化如何导致DOM生物利用度的改变。 DOM的光化学需氧量归因于〜1O_2随DOM浓度的增加而增加,但即使在非常高的DOM浓度下,它仍然是光化学需氧量的少数贡献者。当DOM样品暴露于〜1O_2产生条件(玫瑰红和可见光)下时,观察到DOM成分中的含氧量更高,并且检测到H_2O_2的释放。 H_2O_2和〜1O_2处理的DOM的差异作用表明,〜1O_2处理的DOM导致细菌生长速率相对于未修饰的DOM慢。这项研究的结果表明,单线态氧与DOM之间反应的净效应可能是部分氧化的底物的产生,其潜在的生物能发电量也相应降低。

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  • 来源
    《Environmental Science & Technology》 |2010年第10期|P.3683-3689|共7页
  • 作者单位

    Department of Ecology, Evolution and Behavior, University of Minnesota, Twin Cities, Minneapolis, Minnesota 55455 Department of Chemistry, University of Minnesota, Twin Cities, Minneapolis, Minnesota 55455 Environmental Sciences & Engineering, University of North Carolina, Chapel Hill, NC 27599;

    rnDepartment of Chemistry, University of Minnesota, Twin Cities, Minneapolis, Minnesota 55455 Department of Environmental Sciences, ETH Zurich, Universitaetstrasse 16, Zurich, Switzerland;

    rnDepartment of Ecology, Evolution and Behavior, University of Minnesota, Twin Cities, Minneapolis, Minnesota 55455;

    rnDepartment of Ecology, Evolution and Behavior, University of Minnesota, Twin Cities, Minneapolis, Minnesota 55455 Programa de Pos-Graduacao em Ecologia, Universidade Federal do Rio de Janeiro, Tallahassee, Florida 32306 Programa de Pos-Graduacao em Ecologia, Universidade Federal do Rio Grande do Norte, Departamento de Oceanografia e Limnologia;

    rnNational High Magnetic Field Laboratory and Department of Chemistry & Biochemistry, Florida State University, Tallahassee, Florida 32306;

    rnNational High Magnetic Field Laboratory and Department of Chemistry & Biochemistry, Florida State University, Tallahassee, Florida 32306;

  • 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 2022-08-17 14:04:02

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