Biological Degradation of Plastics and Microplastics: A Recent Perspective on Associated Mechanisms and Influencing Factors
Abstract
:1. Introduction
2. The Challenges and Feasibility of MPs/Plastics in Biodegradation
2.1. The Challenges in Biodegradation of MPs/Plastics
2.2. The Feasibility in Biodegradation of Plastics/MPs
3. Mechanism of Plastics/MPs Biodegradation
4. Microorganisms and Their Enzymes in Plastics/MPs Degradation
4.1. Microbial Degradation of Commonly Used Plastics/MPs
4.1.1. Microbial Degradation of the Commonly Used Recalcitrant Plastics/MPs
4.1.2. Microbial Degradation of Toxic Components in Commonly Used Plastics/MPs
4.1.3. Microbial Degradation of Commonly Used Biodegradable Plastics/MPs
4.2. Enzymes Involved in Plastics/MPs Biodegradation
4.2.1. Enzymes Involved in Plastics/MPs Hydrolysis
4.2.2. Biodegradation Associated Enzymes Produced by Microorganisms in the Extreme Environments
5. Ways to Improve Biodegradation of Plastics/MPs
6. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Source | Enzyme | Major Mechanism of Degradation | Plastics/ Mircoplastics | Optimum Conditions | References |
---|---|---|---|---|---|
Ideonella sakaiensis 201-F | PETase | Hydrolysis | PET | Temperature 70–75 °C | [35] |
Ideonella sakaiensis 201-F | MHETase | Hydrolysis | PET | Temperature 70–75 °C | [35] |
Amycolaptosis sp. | —— | Hydrolysis | PLA | Temperature 50 °C | [54] |
Aspergillus oryzae | —— | Hydrolysis | PBS | Temperature 50 °C | [15] |
Penicillium funiculosum | —— | Hydrolysis | PHB | Temperature 50 °C | [15] |
Thermomonospora and curvata(cutinase homolog from leaf-branch compost) | LC-cutinase | Hydrolysis | PET | Temperature 50 °C | [65] |
Thermophilic, alkaliphilic, halophilic, and psychrophilic bacteria | Bacteriophilic enzyme | Hydrolysis | Various plastic | Salt, low, or high pH, temperatures | [67] |
Pseudomonas, Arthrobacter | PME hydrolases | Hydrolysis and oxidation | PVC, PP, PE, PS (PAEs) | Temperature 30–70 °C | [13] |
Bacillus sp. GZB | A spore-laccase | The expression of different functional genes | PC (BPA) | Adding electron donors and co-substrates | [69] |
Aspergillus sp. strain ST-01 | Catalase, Protease | Colonization | PCL | Temperature 50 °C | [56] |
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Cai, Z.; Li, M.; Zhu, Z.; Wang, X.; Huang, Y.; Li, T.; Gong, H.; Yan, M. Biological Degradation of Plastics and Microplastics: A Recent Perspective on Associated Mechanisms and Influencing Factors. Microorganisms 2023, 11, 1661. https://doi.org/10.3390/microorganisms11071661
Cai Z, Li M, Zhu Z, Wang X, Huang Y, Li T, Gong H, Yan M. Biological Degradation of Plastics and Microplastics: A Recent Perspective on Associated Mechanisms and Influencing Factors. Microorganisms. 2023; 11(7):1661. https://doi.org/10.3390/microorganisms11071661
Chicago/Turabian StyleCai, Zeming, Minqian Li, Ziying Zhu, Xiaocui Wang, Yuanyin Huang, Tianmu Li, Han Gong, and Muting Yan. 2023. "Biological Degradation of Plastics and Microplastics: A Recent Perspective on Associated Mechanisms and Influencing Factors" Microorganisms 11, no. 7: 1661. https://doi.org/10.3390/microorganisms11071661
APA StyleCai, Z., Li, M., Zhu, Z., Wang, X., Huang, Y., Li, T., Gong, H., & Yan, M. (2023). Biological Degradation of Plastics and Microplastics: A Recent Perspective on Associated Mechanisms and Influencing Factors. Microorganisms, 11(7), 1661. https://doi.org/10.3390/microorganisms11071661