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不同杀藻剂对铜绿微囊藻光合作用、细胞完整性和微囊藻毒素-LR 释放的影响。

Effects of different algaecides on the photosynthetic capacity, cell integrity and microcystin-LR release of Microcystis aeruginosa.

机构信息

State Key Laboratory of Pollution Control and Resource Reuse, Tongji University, Shanghai 200092, China.

出版信息

Sci Total Environ. 2013 Oct 1;463-464:111-9. doi: 10.1016/j.scitotenv.2013.05.064. Epub 2013 Jun 20.

DOI:10.1016/j.scitotenv.2013.05.064
PMID:23792253
Abstract

Bench scale tests were conducted to study the effects of four common algaecides, including copper sulfate, hydrogen peroxide, diuron and ethyl 2-methylacetoacetate (EMA) on the photosynthetic capacity, cell integrity and microcystin-LR (MC-LR) release of Microcystis aeruginosa. The release of potassium (K(+)) from cell membrane during algaecide exposure was also analyzed. The three typical photosynthetic parameters, including the effective quantum yield (Фe), photosynthetic efficiency (α) and maximal electron transport rate (rETRmax), were measured by a pulse amplitude modulated (PAM) fluorometry. Results showed that the photosynthetic capacity was all inhibited by the four algaecides, to different degrees, by limiting the energy capture in photosynthesis, and blocking the electron transfer chain in primary reaction. For example, at high diuron concentration (7.5 mg L(-1)), Фe, α and rETRmax decreased from 0.46 to 0.19 (p<0.01), from 0.20 to 0.01 (p<0.01) μmol electrons m(-2) s(-1)/μmol photons m(-2) s(-1), and from 160.7 to 0.1 (p<0.001) μmol m(-2) s(-1) compared with the control group after 96 h of exposure, respectively. Furthermore, the increase of algaecide dose could lead to the cell lysis, as well as release of intracellular MC-LR that enhanced the accumulation of extracellular MC-LR. The order of MC-LR release potential for the four algaecides was CuSO4>H2O2>diuron>EMA.

摘要

进行了台架规模测试,以研究四种常见杀藻剂,包括硫酸铜、过氧化氢、敌草隆和乙基 2-甲基乙酰乙酸酯(EMA)对铜绿微囊藻光合作用能力、细胞完整性和微囊藻毒素-LR(MC-LR)释放的影响。还分析了杀藻剂暴露期间细胞膜中钾(K(+))的释放情况。通过脉冲幅度调制(PAM)荧光仪测量了三个典型的光合作用参数,包括有效量子产率(Фe)、光合作用效率(α)和最大电子传递率(rETRmax)。结果表明,四种杀藻剂都不同程度地抑制了光合作用能力,通过限制光合作用中的能量捕获和阻断原初反应中的电子传递链。例如,在高敌草隆浓度(7.5 mg L(-1))下,Фe、α和 rETRmax 分别从 0.46 降至 0.19(p<0.01)、从 0.20 降至 0.01(p<0.01)μmol 电子 m(-2) s(-1)/μmol 光子 m(-2) s(-1)和从 160.7 降至 0.1(p<0.001)μmol m(-2) s(-1),与暴露 96 小时后的对照组相比。此外,杀藻剂剂量的增加会导致细胞裂解,并释放细胞内的 MC-LR,从而增加细胞外 MC-LR 的积累。四种杀藻剂的 MC-LR 释放潜力顺序为 CuSO4>H2O2>diuron>EMA。

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