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在光照下暴露于过氧化氢中的铜绿微囊藻:细胞破裂的动力学模型及同时的微囊藻毒素降解。

Exposure of Microcystis aeruginosa to Hydrogen Peroxide under Light: Kinetic Modeling of Cell Rupture and Simultaneous Microcystin Degradation.

机构信息

†College of Environmental Science and Engineering, Tongji University, Shanghai 200092, China.

‡Department of Environmental Engineering, National Cheng Kung University, Tainan 70101, Taiwan.

出版信息

Environ Sci Technol. 2015 May 5;49(9):5502-10. doi: 10.1021/acs.est.5b00170. Epub 2015 Apr 22.

Abstract

The effect of hydrogen peroxide on the cell integrity of a cyanobacterium, Microcystis aeruginosa, and on the release and degradation of microcystins (MCs) under simulated sunlight was investigated. The cyanobacterium was exposed to H2O2 in the range of 0-60 mg·L(-1) for 3.5 h. Production of OH radical in the solution was estimated by a chemical probe method. More than 99% (2 log) of the M. aeruginosa cells were ruptured or damaged by 3 h for all the treatments. Loss of cell integrity over time revealed two distinct phases. Cells retained their integrity during the initial lag phase and rapidly ruptured following first-order reaction afterward. A linear relationship was found between the duration of the lag phase and the steady-state concentration of OH radical. Release of MCs was closely correlated with the loss of cell integrity. Sequential reaction models were developed to simulate the release and degradation of MCs. These models were able to quantitatively describe the kinetics of all reactions under different H2O2 doses and extended exposure time. In particular, the models successfully predicted the concentration change of MCs using independently measured parameters. These models provide a simple and quantitative means to estimate the interaction of oxidants and cells and the consequent release of metabolites during oxidation treatment of cyanobacterium-laden waters.

摘要

研究了过氧化氢在模拟阳光下对蓝藻铜绿微囊藻细胞完整性的影响,以及对微囊藻毒素(MCs)释放和降解的影响。将蓝藻在 0-60 mg·L(-1) 的 H2O2 中暴露 3.5 小时。通过化学探针法估计溶液中 OH 自由基的产生。所有处理中,3 小时内超过 99%(2 对数)的铜绿微囊藻细胞破裂或受损。随着时间的推移,细胞完整性的丧失呈现出两个明显的阶段。在初始迟滞期,细胞保持其完整性,随后迅速进行一级反应破裂。发现迟滞期的持续时间与 OH 自由基的稳态浓度之间存在线性关系。MCs 的释放与细胞完整性的丧失密切相关。建立了顺序反应模型来模拟 MCs 的释放和降解。这些模型能够定量描述在不同 H2O2 剂量和延长暴露时间下的所有反应动力学。特别是,这些模型使用独立测量的参数成功预测了 MCs 浓度的变化。这些模型为氧化处理含蓝藻水时氧化剂与细胞的相互作用以及随后代谢物的释放提供了一种简单和定量的估计方法。

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