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Degradation and metabolism of synthetic plastics and associated products by Pseudomonas sp.: capabilities and challenges

机译:SPS SP的合成塑料和相关产品的降解和代谢。:能力和挑战

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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.
机译:广泛存在于日常使用材料中的合成塑料是环境废物中普遍存在的和缓慢降解的聚合物。特别兴趣是微生物的能力加速其降解。由于其降解和代谢合成塑料的能力,代谢多样性的属Pseudomonas的成员特别感兴趣。已经鉴定了从环境基质中分离的伪霉素物种以降解聚乙烯,聚丙烯,聚氯乙烯,聚苯乙烯,聚氨酯,聚对苯二甲酸乙二醇酯,聚乙烯琥珀酸乙酯,聚乙二醇和聚乙烯醇以不同程度的效率。在这里,我们介绍了目前关于控制Pseudomonass SP能力的因素的知识。处理这些不同的塑料聚合物及其副产物。这些因素包括生物膜内的细胞表面附着,催化酶参与塑料聚合物的氧化或水解,代谢途径负责摄取和塑料片段的同化和具有有利或抑制的化学因素对生物降解过程。我们还突出了未来的研究方向,以充分利用假单胞菌SP的能力。生物化反战策略消除塑料废物。

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