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March 14, 2026Polymers0 citationsOpen Access

Phenotypic and Genomic Characterization of Polyethylene-Degrading Bacillus cereus PE-1 Enriched from Landfill Microbial Consortium

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WWWeijun WangSYShunyu YaoZLZhimin Liu

Key Points

  • The aim is to characterize a bacterial strain, Bacillus cereus PE-1, for its ability to degrade polyethylene.
  • Enriched a microbial consortium from landfill soil using polyethylene as the sole carbon source.
  • Isolated Bacillus cereus PE-1 for analysis.
  • Conducted scanning electron microscopy, thermogravimetric analysis, and contact angle measurements.
  • Performed genome sequencing to identify relevant degradation-related genes.
  • Bacillus cereus PE-1 exhibited significant surface erosion of polyethylene over 30 days.
  • Weight loss of polyethylene reached up to 4.57%.
  • TGA indicated a 5.88% decrease in onset degradation temperature.
  • Contact angle measurements revealed increased hydrophilicity of the polymer.
  • Genome sequencing identified genes related to biofilm formation, oxidation, hydrolysis, and degradation pathways.

Abstract

Polyethylene (PE) is one of the most persistent pollutants in the environment. Here, we enriched a microbial consortium (PEH) and isolated a bacterial strain, Bacillus cereus PE-1, capable of degrading PE from landfill soil using PE as the sole carbon source. Scanning electron microscopy revealed significant surface erosion, while weight loss reached up to 4.57% after 30 days. TGA showed a 5.88% decrease in onset degradation temperature, and contact angle measurements indicated increased hydrophilicity. Elemental analysis confirmed oxygen incorporation into the polymer matrix. Genome sequencing revealed genes associated with biofilm formation (epsA, epsB, pgaC), oxidation (laccase, copper oxidase), hydrolysis (esterase, lipase, PHB depolymerase), and β-oxidation pathways. While these genomic findings indicate a predicted capacity for assimilation, no transcriptomic or proteomic validation was performed in this study. These findings suggest that PE-1 can colonize PE, initiate oxidative cleavage, and potentially assimilate breakdown products. This study provides new insights into the microbial degradation of polyolefins and identifies a promising bacterial candidate for plastic bioremediation.

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Cite This Study

Wang et al. (2026) studied this question.

synapsesocial.com/papers/69b4fc44b39f7826a300d00dhttps://doi.org/10.3390/polym18060695
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