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September 20, 2025Discover Environment6 citationsOpen Access

Microbial mechanisms and applications of polyurethane biodegradation

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KAKomal AntaliyaSPSanjana PathakMGManoj Godhaniya

Key Points

  • Microbial degradation of polyurethane shows potential, yet industrial challenges hinder large-scale implementation.
  • Current advancements include genetic engineering improving degradation efficiency by 2.3 times and retaining 82% activity in nanobiocatalysts.
  • Key enzymatic mechanisms involve biofilm formation and hydrolysis of ester and urethane bonds via various enzymes.
  • Future research should focus on discovering novel microorganisms and enhancing enzyme efficacy to mitigate global polyurethane pollution.

Abstract

This comprehensive review examines the current state and future prospects of microbial polyurethane (PU) biodegradation as a sustainable waste management strategy. We systematically analyse bacterial and fungal species with demonstrated PU-degrading capabilities. The review elucidates key enzymatic mechanisms, including colonization-dependent biofilm formation and targeted hydrolysis of ester and urethane bonds by cutinases, esterases, and novel urethanases. Critical analysis of degradation assessment methods reveals thermogravimetric analysis and chromatographic techniques as primary evaluation tools, while omics approaches have revolutionized understanding of microbial community dynamics and metabolic pathways. Despite promising laboratory results, industrial implementation faces significant challenges including slow degradation kinetics, environmental sensitivity, and regulatory uncertainties. Emerging solutions through genetic engineering demonstrate 2.3-fold improvements in degradation efficiency, while nanobiocatalysts offer 82% activity retention across multiple cycles. The integration of chemical pretreatments with biological processes and the development of synthetic microbial consortia represents promising strategies to enhance polyurethane biodegradation. This review highlights critical research gaps and outlines future directions for developing economically viable, large-scale bioremediation systems. Key areas for advancement include the discovery of novel PU-degrading microorganisms, enzyme engineering to improve degradation efficiency, and the implementation of sustainable microbial strategies within waste management frameworks to mitigate global PU pollution.

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Cite This Study

Antaliya et al. (2025) studied this question.

synapsesocial.com/papers/68d46abb31b076d99fa68039https://doi.org/10.1007/s44274-025-00351-2
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