College of Environmental Science and Engineering, Hubei Polytechnic University, Huangshi, Hubei, 435003, China.
Hubei Key Laboratory of Mine Environmental Pollution Control and Remediation, Hubei Polytechnic University, Huangshi, Hubei, 435003, China.
Environ Sci Pollut Res Int. 2017 Oct;24(29):22852-22860. doi: 10.1007/s11356-017-9062-x. Epub 2017 Apr 25.
The transformation of phosphorus added to the soil environment has been proven to be influenced by the Fe biochemical process, which thereby may affect the transformation of organic chlorinated contaminants. However, the amount of related literatures regarding this topic is limited. This study aimed to determine the effects of phosphorus addition on pentachlorophenol (PCP) anaerobic transformation, iron reduction, and paddy soil microbial community structure. Results showed that the transformation of phosphorus, iron, and PCP were closely related to the microorganisms. Moreover, phosphorus addition significantly influenced PCP transformation and iron reduction, which promoted and inhibited these processes at low and high concentrations, respectively. Both the maximum reaction rate of PCP transformation and the maximum Fe(II) amount produced were obtained at 1 mmol/L phosphorus concentration. Among the various phosphorus species, dissolved P and NaOH-P considerably changed, whereas only slight changes were observed for the remaining phosphorus species. Microbial community structure analysis demonstrated that adding low concentration of phosphorus promoted the growth of Clostridium bowmanii, Clostridium hungatei, and Clostridium intestinale and Pseudomonas veronii. By contrast, high-concentration phosphorus inhibited growth of these microorganisms, similar to the curves of PCP transformation and iron reduction. These observations indicated that Clostridium and P. veronii, especially Clostridium, played a vital role in the transformation of related substances in the system. All these findings may serve as a reference for the complicated reactions among the multiple components of soils.
土壤环境中添加的磷的形态转化已被证实受到铁生化过程的影响,从而可能影响有机氯化污染物的转化。然而,关于这一主题的相关文献数量有限。本研究旨在确定添加磷对五氯苯酚(PCP)厌氧转化、铁还原和稻田土壤微生物群落结构的影响。结果表明,磷、铁和 PCP 的转化与微生物密切相关。此外,磷的添加显著影响 PCP 的转化和铁的还原,分别在低浓度和高浓度下促进和抑制这些过程。PCP 转化的最大反应速率和产生的最大 Fe(II)量均在 1 mmol/L 磷浓度下获得。在各种磷形态中,溶解磷和 NaOH-P 变化较大,而其余磷形态仅略有变化。微生物群落结构分析表明,添加低浓度的磷促进了 Clostridium bowmanii、Clostridium hungatei 和 Clostridium intestinale 和 Pseudomonas veronii 的生长。相比之下,高浓度的磷抑制了这些微生物的生长,这与 PCP 转化和铁还原的曲线相似。这些观察结果表明,Clostridium 和 P. veronii,特别是 Clostridium,在该系统中相关物质的转化中起着至关重要的作用。所有这些发现都可能为土壤中多种成分之间的复杂反应提供参考。