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Editorial
. 2024 Apr;17(4):e14459.
doi: 10.1111/1751-7915.14459.

Plastics and the Sustainable Development Goals: From waste to wealth with microbial recycling and upcycling

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Editorial

Plastics and the Sustainable Development Goals: From waste to wealth with microbial recycling and upcycling

Marco A Pereyra-Camacho et al. Microb Biotechnol. 2024 Apr.

Abstract

Plastics pollution has become one of the greatest concerns of the 21st century. To date, around 10 billion tons of plastics have been produced almost exclusively from non-renewable sources, and of these, <10% have been recycled. The majority of discarded plastic waste (>70%) is accumulating in landfills or the environment, causing severe impacts to natural ecosystems and human health. Considering how plastics are present in every aspect of our daily lives, it is evident that a transition towards a Circular Economy of plastics is essential to achieve several of the Sustainable Development Goals. In this editorial, we highlight how microbial biotechnology can contribute to this shift, with a special focus on the biological recycling of conventional plastics and the upcycling of plastic-waste feedstocks into new value-added products. Although important hurdles will need to be overcome in this endeavour, recent success stories highlight how interdisciplinary approaches can bring us closer to a bio-based economy for the sustainable management of plastics.

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Conflict of interest statement

I.P. is co‐inventor of patent applications US20210285019 and US20220089654, which describe the use of engineered bacteria for the conversion of PET.

References

    1. Arnold, S. , Moss, K. , Henkel, M. & Hausmann, R. (2017) Biotechnological perspectives of pyrolysis oil for a bio‐based economy. Trends in Biotechnology, 35, 925–936. - PubMed
    1. Bao, T. , Qian, Y. , Xin, Y. , Collins, J.J. & Lu, T. (2023) Engineering microbial division of labor for plastic upcycling. Nature Communications, 14, 5712. - PMC - PubMed
    1. Bell, E.L. , Rosetto, G. , Ingraham, M.A. , Ramirez, K.J. , Lincoln, C. , Clarke, R.W. et al. (2024) Natural diversity screening, assay development, and characterization of nylon‐6 enzymatic depolymerization. Nature Communications, 15, 1217. - PMC - PubMed
    1. Boll, M. , Geiger, R. , Junghare, M. & Schink, B. (2020) Microbial degradation of phthalates: biochemistry and environmental implications. Environmental Microbiology Reports, 12, 3–15. - PubMed
    1. Branson, Y. , Söltl, S. , Buchmann, C. , Wei, R. , Schaffert, L. , Badenhorst, C.P.S. et al. (2023) Urethanases for the enzymatic hydrolysis of low molecular weight carbamates and the recycling of polyurethanes. Angewandte Chemie International Edition, 62, e202216220. - PubMed

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