Microbial Degradation of Plastics and Approaches to Make it More Efficient
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Published:2021-11
Issue:6
Volume:90
Page:671-701
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ISSN:0026-2617
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Container-title:Microbiology
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language:en
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Short-container-title:Microbiology
Author:
Kotova I. B.,Taktarova Yu. V.,Tsavkelova E. A.,Egorova M. A.,Bubnov I. A.,Malakhova D. V.,Shirinkina L. I.,Sokolova T. G.,Bonch-Osmolovskaya E. A.
Abstract
Abstract—
The growing worldwide production of synthetic plastics leads to increased amounts of plastic pollution. Even though microbial degradation of plastics is known to be a very slow process, this capacity has been found in many bacteria, including invertebrate symbionts, and microscopic fungi. Research in this field has been mostly focused on microbial degradation of polyethylene, polystyrene, and polyethylene terephthalate (PET). Quite an arsenal of different methods is available today for detecting processes of plastic degradation and measuring their rates. Given the lack of generally accepted protocols, it is difficult to compare results presented by different authors. PET degradation by recombinant hydrolases from thermophilic actinobacteria happens to be the most efficient among the currently known plastic degradation processes. Various approaches to accelerating microbial plastic degradation are also discussed.
Publisher
Pleiades Publishing Ltd
Subject
Applied Microbiology and Biotechnology,Microbiology
Reference231 articles.
1. Abrusci, C., Pablos, J.L., Corrales, T., López-Marín, J., Marín, I., and Catalina, F., Biodegradation of photo-degraded mulching films based on polyethylenes and stearates of calcium and iron as pro-oxidant additives, Int. Biodeterior. Biodegrad., 2011, vol. 65, pp. 451–459. 2. Abrusci, C., Pablos, J.L., Marin, I., Espi, E., Corrales, T., and Catalina, F., Comparative effect of metal stearates as pro-oxidant additives on bacterial biodegradation of thermal- and photo-degraded low density polyethylene mulching films, Int. Biodeterior. Biodegrad., 2013, vol. 83, pp. 25–32.
https://doi.org/10.1016/j.ibiod.2013.04.002 3. Acero, E.H., Ribitsch, D., Steinkellner, G., Gruber, K., Greimel, K., Eiteljoerg, I., Trotscha, E., Wei, R., Zimmermann, W., Zinn, M., Cavaco-Paulo, A., Freddi, G., Schwab, H., and Guebitz, G., Enzymatic surface hydrolysis of PET: Effect of structural diversity on kinetic properties of cutinases from Thermobifida,
Macromolecules, 2011, vol. 44, pp. 4632–4640. 4. Ahebnazar, Z., Shojaosadati, S.A., Mohammad-Taheri, M., and Nosrati, M., Biodegradation of low-density polyethylene (LDPE) by isolated fungi in solid waste medium, Waste Manag., 2010, vol. 30, pp. 396–401. 5. Albertsson, A.C. and Karlsson, S., The influence of biotic and abiotic environments on the degradation of polyethylene, Prog. Polym. Sci., 1990, vol. 15, pp. 177–192. https://doi.org/10.1016/0079-6700(90)90027-X
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