Harnessing bacterial power and omics technologies for sustainable plastic waste biodegradation

生物降解 生化工程 塑料污染 生物可分解塑胶 微生物代谢 生物技术 生物塑料 环境科学 微塑料 环境修复 细菌 环境污染 生物 废物管理 生物膜 微生物降解 污染 塑料废料 环境生物技术 合成生物学 环境退化 有机体 基因组学 降级(电信) 代谢组学 聚乙烯 生物量(生态学) 计算机科学 生物修复
作者
Ahmed R. Henawy,Salma M. Ismail,Sama Gharib,Nagwa I. Elarabi,Abdelhadi A. Abdelhadi,Asmaa A. Halema
出处
期刊:Biodegradation [Springer Science+Business Media]
卷期号:37 (2)
标识
DOI:10.1007/s10532-026-10258-1
摘要

Plastic pollution constitutes a critical environmental concern of this era, with synthetic polymers, i.e., polyethylene (PE), polyethylene terephthalate (PET), polystyrene (PS), and polyurethane (PU), accumulating in terrestrial and aquatic ecosystems at alarming rates. One of the promising solutions to this worldwide problem is microbial plastic degradation, particularly by bacteria that can convert polymeric materials into less toxic compounds. With an emphasis on enzymatic mechanisms, critical environmental and biochemical factors influencing degradation, and the wide variety of bacteria responsible for breaking down synthetic polymers, this review focuses on the enzymatic and genetic aspects underlying bacterial plastic degradation, highlighting key enzymes such as PETase, METase, esterase, and oxidoreductase, as well as representative plastic-degrading bacteria i.e. Thermobifida, Ideonella, Bacillus, Agromyces, Pseudomonas, Schlegelella species. The significance of multi-omics tools, such as transcriptomics, proteomics, metabolomics, and genomics was demonstrated here in deepening our understanding of microbial plastic degradation without depending on pure culture. It explores the key genes and metabolic pathways that facilitate this process. Moreover, how advanced biotechnological techniques and artificial intelligence (AI) can participate in plastic biodegradation through enzyme engineering, activity-enhancing mutation design, predictive modeling, and omics data analysis was illustrated. Furthermore, this review underscores the necessity for integrative and interdisciplinary approaches to effectively harness bacterial metabolism for long-term reduction of plastic pollution. Also, it outlines future research directions and technological priorities for translating bacterial plastic degradation into practical and sustainable remediation solutions.
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