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Degradation and metabolism of synthetic plastics and associated products by<i>Pseudomonas</i>sp.: capabilities and challenges

Journal of Applied Microbiology · 2017 · Vol. 123(3) · pp. 582–593
Rebecca A. WilkesLudmilla Aristilde

Abstract

Synthetic plastics, which are widely present in materials of everyday use, are ubiquitous and slowly-degrading polymers in environmental wastes. Of special interest are the capabilities of microorganisms to accelerate their degradation. Members of the metabolically diverse genus Pseudomonas are of particular interest due to their capabilities to degrade and metabolize synthetic plastics. Pseudomonas species isolated from environmental matrices have been identified to degrade polyethylene, polypropylene, polyvinyl chloride, polystyrene, polyurethane, polyethylene terephthalate, polyethylene succinate, polyethylene glycol and polyvinyl alcohol at varying degrees of efficiency. Here, we present a review of the current knowledge on the factors that control the ability of Pseudomonas sp. to process these different plastic polymers and their by-products. These factors include cell surface attachment within biofilms, catalytic enzymes involved in oxidation or hydrolysis of the plastic polymer, metabolic pathways responsible for uptake and assimilation of plastic fragments and chemical factors that are advantageous or inhibitory to the biodegradation process. We also highlight future research directions required in order to harness fully the capabilities of Pseudomonas sp. in bioremediation strategies towards eliminating plastic wastes.

Microplastics and Plastic Pollutionbiodegradable polymer synthesis and propertiesRecycling and Waste Management TechniquesBiodegradationPolyvinyl chloridePseudomonasPolymerPolyethyleneHydrolysisPolypropyleneDegradation (telecommunications)Microbial biodegradationPolyvinyl alcohol

MeSH terms

Biodegradation, EnvironmentalPlasticsPolyethylenesPolystyrenesPseudomonasSuccinates

Funding

  • College of Agriculture and Life Sciences, Cornell University
Citations
566
FWCI
7.78
field-weighted impact
References
73
Percentile
98%
vs. same field & year
Citations per year
References
Microbial degradation of low density polyethylene (LDPE): A review
Journal of environmental chemical engineering · 2015 · 439 citations
Mechanistic implications of plastic degradation
Polymer Degradation and Stability · 2007 · 1,499 citations
Biofilms: Microbial Life on Surfaces
Emerging infectious diseases · 2002 · 4,735 citations
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