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Greater Biofilm Formation and Increased Biodegradation of Polyethylene Film by a Microbial Consortium of Arthrobacter sp. and Streptomyces sp.

机译:通过促花杆菌的微生物联盟的微生物联盟形成更大的生物膜形成和增加聚乙烯膜的生物降解。和streptomyces sp。

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摘要

The widespread use of polyethylene (PE) mulch films has led to a significant accumulation of plastic waste in agricultural soils. The biodegradation of plastic waste by microorganisms promises to provide a cost-effective and environmentally-friendly alternative for mitigating soil plastic pollution. A large number of microorganisms capable of degrading PE have been reported, but degradation may be further enhanced by the cooperative activity of multiple microbial species. Here, two novel strains of Arthrobacter sp. and Streptomyces sp. were isolated from agricultural soils and shown to grow with PE film as a sole carbon source. Arthrobacter sp. mainly grew in the suspension phase of the culture, and Streptomyces sp. formed substantial biofilms on the surface of the PE film, indicating that these strains were of different metabolic types and occupied different microenvironments with contrasting nutritional access. Individual strains were able to degrade the PE film to some extent in a 90-day inoculation experiment, as indicated by decreased hydrophobicity, increased carbonyl index and CO2 evolution, and the formation of biofilms on the film surface. However, a consortium of both strains had a much greater effect on these degradation properties. Together, these results provide new insights into the mechanisms of PE biodegradation by a microbial consortium composed of different types of microbes with possible metabolic complementarities.
机译:聚乙烯(PE)覆盖膜的广泛使用导致农业土壤中的塑料废物积累。微生物的塑料废物的生物降解承诺为减轻土壤塑料污染提供了一种成本效益和环保的替代品。已经报道了能够降解PE的大量微生物,但通过多种微生物物种的协同活性可以进一步增强降解。在这里,两种新菌株的花分脉SP。和streptomyces sp。从农业土壤中分离,并显示与PE膜一起生长为唯一的碳源。关节杆菌sp。主要在培养的悬浮阶段生长,并链霉菌SP。在PE膜的表面上形成了实质性生物膜,表明这些菌株具有不同的代谢类型,并占用不同的微环境,具有对比营养接入。单个菌株能够在90天接种实验中降解PE膜,如通过降低的疏水性,增加的羰基指数和CO 2进化所示,以及在膜表面上形成生物膜的形成。然而,两种菌株的联盟对这些降解特性产生了更大的影响。这些结果在一起,对由不同类型的微生物组成的微生物联盟具有可能的代谢互补性的微生物联盟的PE生物降解机制提供了新的见解。

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