Plastic-degrading microbial communities reveal novel microorganisms, pathways, and biocatalysts for polymer degradation and bioplastic production

生物塑料 微生物 降级(电信) 微生物降解 生化工程 生物降解 化学 生物 细菌 工程类 生态学 有机化学 遗传学 电信
作者
Ellen Karen Barreto Román,Murilo Antonio Ramos,Geizecler Tomazetto,Bruno B. Foltran,Matheus Henrique Galvão,Iara Ciancaglini,Robson Tramontina,Felipe de Almeida Rodrigues,Larissa Soares da Silva,Ana Luiza Hernandes Sandano,Diógenes G da S Fernandes,Dnane Vieira Almeida,Denicezar Ângelo Baldo,José Martins de Oliveira,Wanius García,André Damásio,Fábio M. Squina
出处
期刊:Science of The Total Environment [Elsevier]
卷期号:949: 174876-174876
标识
DOI:10.1016/j.scitotenv.2024.174876
摘要

Plastics derived from fossil fuels are used ubiquitously owing to their exceptional physicochemical characteristics. However, the extensive and short-term use of plastics has caused environmental challenges. The biotechnological plastic conversion can help address the challenges related to plastic pollution, offering sustainable alternatives that can operate using bioeconomic concepts and promote socioeconomic benefits. In this context, using soil from a plastic-contaminated landfill, two consortia were established (ConsPlastic-A and -B) displaying versatility in developing and consuming polyethylene or polyethylene terephthalate as the carbon source of nutrition. The ConsPlastic-A and -B metagenomic sequencing, taxonomic profiling, and the reconstruction of 79 draft bacterial genomes significantly expanded the knowledge of plastic-degrading microorganisms and enzymes, disclosing novel taxonomic groups associated with polymer degradation. Finally, the microbial consortium was utilized to obtain a novel Pseudomonas putida strain (BR4), presenting a striking metabolic arsenal for aromatic compound degradation and assimilation, confirmed by genomic analyses. The BR4 displays the inherent capacity to degrade polyethylene terephthalate (PET) and produce polyhydroxybutyrate (PHB) containing hydroxyvalerate (HV) units that contribute to enhanced copolymer properties, such as increased flexibility and resistance to breakage, compared with pure PHB. Therefore, BR4 is a promising strain for developing a bioconsolidated plastic depolymerization and upcycling process. Collectively, our study provides insights that may extend beyond the artificial ecosystems established during our experiments and supports future strategies for effectively decomposing and valorizing plastic waste. Furthermore, the functional genomic analysis described herein serves as a valuable guide for elucidating the genetic potential of microbial communities and microorganisms in plastic deconstruction and upcycling.
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