College of Environmental Science and Engineering, Hunan University and Key Laboratory of Environmental Biology and Pollution Control (Hunan University), Ministry of Education, Changsha 410082, PR China.
College of Environmental Science and Engineering, Hunan University and Key Laboratory of Environmental Biology and Pollution Control (Hunan University), Ministry of Education, Changsha 410082, PR China.
J Hazard Mater. 2023 Jan 15;442:130078. doi: 10.1016/j.jhazmat.2022.130078. Epub 2022 Sep 27.
Microplastics (MPs) are substrates available for biofilms colonization in natural water environments. The biofilms formation may enhance the ability of MPs to adsorb harmful contaminants. Herein, we investigated the biofilms formation of three different MPs (PVC, PA and HDPE) in simulated natural environment, and observed the chemical structure, charge property, hydrophobicity and other properties of MPs affect microbial biomass and community composition. More importantly, potential pathogens were found in all three MPs biofilms. Furthermore, the adsorption capacities of original MPs and biological aging MPs for norfloxacin (NOR) was compared. HDPE has the largest adsorption capacity for NOR, while PA has the smallest adsorption capacity for NOR. It was concluded that the formation of biofilms enhanced the adsorption of NOR by 50.60 %, 24.17 % and 46.02 % for PVC, PA and HDPE, respectively. In addition, hydrogen-bond interaction, electrostatic interaction and hydrophobic interaction were found to dominate the adsorption of NOR by MPs. Our study contributed to improve the understanding of the interactions between aging MPs and contaminants in the natural water environments, and provided essential information for ecological risk assessment of MPs.
微塑料(MPs)是天然水环境中生物膜定植的基质。生物膜的形成可能会增强 MPs 吸附有害污染物的能力。本研究在模拟的天然环境中考察了三种不同 MPs(聚氯乙烯、PA 和高密度聚乙烯)的生物膜形成,并观察 MPs 的化学结构、电荷特性、疏水性等性质对微生物生物量和群落组成的影响。更重要的是,在所有三种 MPs 生物膜中都发现了潜在的病原体。此外,还比较了原始 MPs 和生物老化 MPs 对诺氟沙星(NOR)的吸附能力。HDPE 对 NOR 的吸附容量最大,而 PA 对 NOR 的吸附容量最小。结果表明,生物膜的形成分别使 PVC、PA 和 HDPE 对 NOR 的吸附增强了 50.60%、24.17%和 46.02%。此外,氢键相互作用、静电相互作用和疏水相互作用被发现主导了 MPs 对 NOR 的吸附。本研究有助于提高对天然水环境中老化 MPs 和污染物相互作用的认识,并为 MPs 的生态风险评估提供了必要的信息。