Aug 2026· Water Research· Vol 308 Pt A, pp.
126774
· 0 citations· 61 references
Medicine
TL;DR
Results indicate that functional differentiation and cooperative interactions contribute to enhanced LDPE degradation by Z123, which provides mechanistic insights into consortium-based plastic biodegradation and supports the rational design of microbial platforms for plastic waste management.
Abstract
Polyethylene (PE) remains environmentally persistent due to its inert backbone and high molecular weight, with biodegradation hindered by low efficiency and unclear community-level mechanisms. In this study, we reconstructed a synthetic consortium, Z123, comprising Nitratireductor sp. Z-1 and Gordonia spp. Z-2 and Z-3 isolated from a consistent enrichment system. Z123 achieved 9.98% weight loss and 50.88% molecular weight reduction within 30 days, outperforming most consortia degrading pristine low-density polyethylene (LDPE). Integrated genomic and proteomic analyses suggested functional differentiation among consortium members involving oxidative activation, chain scission, and downstream metabolism. Gas chromatography-mass spectrometry (GC-MS) analysis further detected putative LDPE-associated extracellular compounds consistent with oxidative polymer modification. Recombinant MCO1 and Lcp3 modified LDPE in vitro, and their combined application caused greater depolymerization than either enzyme at the corresponding half dose, suggesting complementary catalytic contributions. Collectively, these results indicate that functional differentiation and cooperative interactions contribute to enhanced LDPE degradation by Z123. This work provides mechanistic insights into consortium-based plastic biodegradation and supports the rational design of microbial platforms for plastic waste management.
Petroleum-derived plastic pollution has become increasingly severe, stimulating the application demand for biodegradable polylactic acid (PLA). Nevertheless, the slow natural degradation rate of PLA limits its large-scale practical application. In this study, two potential novel strains with PLLA-degrading capacity, Chryseobacterium sp. L42 and Pedobacter sp. D55, were successfully isolated based on microbial community analysis of soil from plastic-manufacturing plants, combined with transparent-circle assays and PLA-film degradation tests. Integrated transcriptomic analysis and RT-qPCR validation, together with functional verification via heterologous expression in E. coli BL21 (DE3), confirmed that enzymes 10_101 and 10_105 from strain L42 exhibit prominent PLA-degrading activity, and both possess dual esterase and protease activities. Results from AlphaFold3 protein-structure prediction and molecular docking revealed that these functional enzymes contain conserved active pockets of PHA depolymerase, which target the ester bonds of PLA trimers through hydrogen bonds and hydrophobic interactions. This study clarifies the multi-enzyme synergistic PLA-degradation pathway mediated by strain L42. It provides valuable novel bacterial strains and degrading enzymes for the efficient bioremediation of plastic waste, and offers theoretical basis and practical reference for overcoming the technical bottlenecks in PLA degradation.
Yuan Yuan, Guo-Ji Zhang, Wen-Xin Song et al.· Bioresource Technology· 0 citations
A theoretical Plastic-to-Fertilizer (P2F) framework that proposes an engineered four-member microbial consortium capable of partially depolymerizing mixed plastic waste, including polyethylene terephthalate (PET), high-density polyethylene (HDPE), polystyrene (PS), and polypropylene (PP), and channeling selected plastic-derived carbon intermediates toward biosynthesis of agronomically beneficial compounds is presented.
Krishnaraj Narayanan· Frontiers in Microbiology· 0 citations
The accumulation of biodegradable plastics (BPs) in wastewater treatment plants (WWTPs) presents a novel environmental concern, while carbon deficiency concurrently limits advanced biological denitrification. Herein, this research explored the fate of BPs and their viability as solid-phase carbon donors for denitrification. Six prevalent BPs were selected; results showed that microbially synthesized poly(3-hydroxybutyrate-co-3-hydroxyvalerate) (PHBV) was identified as the optimal solid-phase carbon source with superior DOC bioavailability, achieving a denitrification rate of 0.72 mg/(g·h). Light irradiation and pH variations accelerated DOC release via surface micro-cleavage, predominantly yielding highly active aliphatic oligomers without disrupting the primary polymeric backbone. Furthermore, macromolecular depolymerization genes (cellulase, hexosaminidase) and nitrous oxide reductase genes (nosZ, nosD) were strongly temperature-dependent, which induced the directional enrichment of the core denitrifying genus Thauera and upregulated expression at 25 °C, which promoted NO3− reduction. This research provides the theoretical basis for the in situ resource utilization of BPs for advanced wastewater denitrification.
Overall, ZY1 and G1B exhibited overlapping functions with relative functional differences and potential complementarity, supporting the use of synthetic microbial consortia to enhance PET depolymerization and downstream product conversion.
Jiarong Qiu, Yufeng Jin, Liang-Qing Zhang et al.· Journal of Environmental Man...· 0 citations
Results support the hypothesis that SNBT005 actively facilitates metal recovery and reveal some localized pitting and surface degradation of the PCB matrix as the result of microbial activity.
Aastha Srivastava, Banhi Halder, V. Nigam et al.· 3 Biotech· 0 citations
Reframing plastic degradation as a multi-scale, designable system rather than a single-enzyme process highlights opportunities for coupling protein engineering with controlled deployment, including biofilm-based localization and metabolic pathway integration, to enable more effective and environmentally relevant microplastic remediation.
Debashrita Majumder, Anushree Dutta, D. Lahiri et al.· Preparative Biochemistry & B...· 0 citations
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