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探究复合污染体系下老化苯乙烯-丁二烯橡胶微塑料对石油烃降解菌的毒性。

Exploring the toxicity of the aged styrene-butadiene rubber microplastics to petroleum hydrocarbon-degrading bacteria under compound pollution system.

机构信息

College of Urban Construction, Nanjing Tech University, Nanjing 211800, China.

Beijing Key Lab for Source Control Technology of Water Pollution, Beijing Forestry University, Beijing 100083, China.

出版信息

Ecotoxicol Environ Saf. 2021 Dec 20;227:112903. doi: 10.1016/j.ecoenv.2021.112903. Epub 2021 Oct 19.

Abstract

As a new pollutant, microplastics have increasingly drawn public attention to its toxic behavior in the environment. The aim was to investigate the effect of styrene-butadiene-rubber microplastics (mSBR) with different degrees of aging on petroleum hydrocarbon (PHC) degrading bacteria in an environment with simultaneously existing pollutants. A series of experiments were carried out to investigate the changes in the physical and chemical properties of mSBR with aging and to examine the influence of these changes on the inhibition of PHC-degrading bacteria by mSBR in the vicinity of coexisting pollutants. The results showed that in the early stage of ultraviolet aging (10d), the particle surface shows wrinkles, but the structure is intact. After reaching the late stage of aging (20d), nano-scale fragments were generated on the surface of mSBR, the average particle size decreased from 3.074 µm to 2.297 µm, and the zeta potential increased from - 25.1 mV to - 33.1 mV. The inhibitory effect of bacteria is greater. At the same time, these changes in the physicochemical properties increase the adsorption effect of Cd by 20%, and also improve the stability of mSBR in solution, whereby bacterial growth is inhibited by inhibiting the LPO activity and protein concentration of PHC degrading bacteria.

摘要

作为一种新型污染物,微塑料因其在环境中的毒性行为而日益引起公众关注。本研究旨在探讨同时存在污染物时,不同老化程度的苯乙烯-丁二烯橡胶微塑料(mSBR)对石油烃(PHC)降解菌的影响。进行了一系列实验来研究 mSBR 随老化而发生的物理化学性质变化,并检验这些变化对附近共存污染物中 mSBR 对 PHC 降解菌抑制作用的影响。结果表明,在紫外线老化的早期(10d),颗粒表面出现皱纹,但结构完整。达到老化后期(20d)后,mSBR 表面生成纳米级碎片,平均粒径从 3.074µm 减小至 2.297µm,zeta 电位从-25.1mV 增加至-33.1mV。对细菌的抑制效果更大。同时,这些物理化学性质的变化使 Cd 的吸附效果增加了 20%,并提高了 mSBR 在溶液中的稳定性,从而通过抑制 PHC 降解菌的 LPO 活性和蛋白质浓度来抑制细菌生长。

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