在实验室和实际垃圾填埋场条件下,聚对苯二甲酸乙二醇酯塑料表面风化形成的生物膜

IF 5.4 Q2 ENGINEERING, ENVIRONMENTAL
Laura Žorža , Andreia S. Azevedo , Dita Gudrā , Igor Resende , Edmunds Skinderskis , Ance Roga , Dāvids Fridmanis , Ineta Kalniņa , Kārlis Vonda , Nuno Filipe Azevedo , Olga Muter
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引用次数: 0

摘要

塑料在环境中迅速定植,导致形成进一步生物降解所必需的生物膜。本研究考察了在垃圾渗滤液中培养3个月(PL-3)的聚对苯二甲酸乙二醇酯(PET)塑料表面形成的生物膜的富集机会,然后在复合培养基(PLE1-6和PLE2-6)中培养3个月。生物膜的宏基因组分析揭示了微生物群落结构的明显差异。在渗滤液(PL-3)中孵育以亚硝化单胞菌为主(31.66%),而在富集PLE1-6和PLE2-6的生物膜中分别含有41.89%和33.22%的假单胞菌。荧光原位杂交(FISH)显微镜分析使用假单胞菌特异性探针设计,与宏基因组数据一致,并探索了该属在生物膜中的分布。在真实垃圾填埋场条件下风化的PET瓶也含有假单胞菌,但与实验室富集相比,其程度较低(10.67% - 14.52%)。两个风化的PET标本,在不同的垃圾填埋场取样,古细菌的丰度明显不同。用双醋酸荧光素水解法测定生物膜的总酶活性。通过阐明营养添加剂对PET塑料表面生物膜形成的影响,可以更深入地了解塑料表面生物膜形成的机制。这反过来又与垃圾填埋场环境中的塑料生物降解过程密切相关。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Biofilm formation on the polyethylene terephthalate plastic surface weathered under laboratory and real landfill conditions

Biofilm formation on the polyethylene terephthalate plastic surface weathered under laboratory and real landfill conditions
Plastic undergoes rapid colonisation in the environment, resulting in the formation of a biofilm necessary for further biodegradation. This study investigates the enrichment opportunities of biofilms formed on polyethylene terephthalate (PET) plastic surfaces incubated in landfill leachate for three months (PL-3), followed by three-month incubation in complex media (PLE1–6 and PLE2–6). The metagenomic analysis of biofilms revealed distinct differences in the microbial community structure. Incubation in leachate (PL-3) resulted in Nitrosomonas prevailing (31.66 %), while biofilms enriched in PLE1–6 and PLE2–6 contained Pseudomonas spp. at 41.89 % and 33.22 %, respectively. Fluorescence in situ hybridisation (FISH) microscopy analysis, using a probe design specific for Pseudomonas spp., was in line with metagenomic data and explored the distribution of this genus in the biofilms. PET bottles weathered under real landfill conditions also contained Pseudomonas spp., but to a lesser extent (10.67 % – 14.52 %) compared to laboratory enrichment. Two weathered PET specimens, sampled at different landfill sites, differed markedly in an abundance of Archaea. The overall enzymatic activity of the biofilm was measured by the fluorescein diacetate hydrolysis assay. By elucidating the impacts of nutrient additives on biofilm formation on PET plastic surfaces, one can gain a deeper comprehension of the mechanisms underlying biofilm development on plastic surfaces. That, in turn, is closely related to plastic biodegradation processes in landfill environments.
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来源期刊
Journal of hazardous materials advances
Journal of hazardous materials advances Environmental Engineering
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