氧协同菱铁矿降解微囊藻毒素机理研究
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P578.4;P579

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国家自然科学基金(22076098,22136003,21972073,21677086);111引智项目(D20015);湖北省引智项目(2019BJH004);中国博士后基金(2018M640721)


Study on the mechanism of synergistic degradation of microcystin by oxygen and siderite
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    摘要:

    已知在无氧条件下天然矿物菱铁矿能成功水解微囊藻毒素-LR(MC-LR),然而实际应用过程中难以避免水中溶解氧(O2)的存在,因此有必要深入研究不同溶氧量(DOC)条件下菱铁矿对MC-LR降解的影响。本文通过在无氧和有氧条件下菱铁矿对MC-LR的降解实验,发现在有氧条件下(溶氧量1.62~21.87 mg/L),MC-LR的降解速率均比无氧条件(k0=0.030 16 mg·L-1·h-1)高且其降解速率随O2含量增加而依次增加,当O2加入量为1.0 mL(溶氧量21.87 mg/L)时,菱铁矿对MC-LR降解速率最大(0.083 34 mg·L-1·h-1),为无氧条件下的2.76倍。通过外加腐殖酸(humic acid,HA)和自由基进行捕获实验,发现FeCO3能直接活化O2产生超氧自由基(·O2-),以实现对MC-LR的氧化,但外加HA抑制了菱铁矿对MC-LR的选择性水解。MC-LR降解中间产物的液质联用(LC-ESI/MS)分析结果表明,在有氧条件下,MC-LR的水解位点先后发生在Mdha—D-Ala和Adda—L-Arg肽键,在菱铁矿表面Fe活化O2产生的·O2-的氧化作用下,水解产物继续发生羟基化及脱羧反应,最终转化为小分子醛。

    Abstract:

    It has been found that siderite (FeCO3) could directly hydrolyze microcystin -LR (MC-LR) under anaerobic conditions in previous studies. However, oxygen (O2) could not be completely avoided during application process. Therefore, it is urgent to study the effect of dissolved oxygen content (DOC) on the degradation efficiency of MC-LR by siderite. The results showed that the degradation rate of MC-LR under O2 conditions (DOC=1.62~21.87 mg/L) is higher than that under anaerobic conditions (k0=0.030 16 mg·L-1·h-1), and its degradation rate increased with the increase of O2 content. When the volume of O2 added was 1.0 mL (DOC=21.87 mg/L), siderite showed the highest degradation rate of MC-LR (0.083 34 mg·L-1·h-1), which was 2.76 times higher than that without O2. According to humic acid (HA) additions and radical capture experiments, it indicated that siderite could directly activate O2 to produce superoxide radical (·O2-), facilitating the oxidation of MC-LR. However, the addition of HA inhibits the selective hydrolysis of MC-LR by FeCO3. Finally, the LC-ESI/MS analysis of MC-LR degradation intermediates showed that under aerobic conditions, the hydrolysis sites of MC-LR occurred in Mdha-D-Ala and Adda-L-Arg peptides. Bond, under the oxidation of (·O2-) produced by the activation of O2 by Fe on the FeCO3 surface, the hydrolyzed product continues to undergo hydroxylation and decarboxylation reactions, and is finally converted into small molecular aldehydes.

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张静,孙文倩,黄佳,等, 2022. 氧协同菱铁矿降解微囊藻毒素机理研究[J]. 岩石矿物学杂志, 41(1):177~184.
ZHANG Jing, SUN Wen-qian, HUANG jia, et al, 2022. Study on the mechanism of synergistic degradation of microcystin by oxygen and siderite[J]. Acta Petrologica et Mineralogica, 41(1): 177~184.

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  • 收稿日期:2020-09-18
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  • 在线发布日期: 2022-01-21
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