Borrelle, S. B. et al. Predicted growth in plastic waste exceeds efforts to mitigate plastic pollution. Science 369, 1515–1518 (2020). Article ADS CAS PubMed Google Scholar Stubbins, A., Law, K. L., Munoz, S. E., Bianchi, T. S. & Zhu, L. Plastics in the Earth system. Science 373, 51–55 (2021). Article ADS CAS PubMed Google Scholar
Borrelle, S. B. et al. Predicted growth in plastic waste exceeds efforts to mitigate plastic pollution. Science 369, 1515–1518 (2020).
Google Scholar
Stubbins, A., Law, K. L., Munoz, S. E., Bianchi, T. S. & Zhu, L. Plastics in the Earth system. Science 373, 51–55 (2021).
Google Scholar
Chamas, A. et al. Degradation rates of plastics in the environment. ACS Sustain. Chem. Eng. 8, 3494–3511 (2020).
Google Scholar
Walsh, A. N. et al. Plastic formulation is an emerging control of its photochemical fate in the ocean. Environ. Sci. Technol. 55, 12383–12392 (2021).
Google Scholar
Danso, D., Chow, J. & Streit, W. R. Plastics: environmental and biotechnological perspectives on microbial degradation. Appl. Environ. Microbiol. 85, e01095-19 (2019).
Google Scholar
Wei, R. & Zimmermann, W. Microbial enzymes for the recycling of recalcitrant petroleum-based plastics: how far are we? Microb. Biotechnol. 10, 1308–1322 (2017).
Google Scholar
Müller, R. J., Schrader, H., Profe, J., Dresler, K. & Deckwer, W. D. Enzymatic degradation of poly(ethylene terephthalate): rapid hydrolyse using a hydrolase from T. fusca. Macromol. Rapid Commun. 26, 1400–1405 (2005).
Google Scholar
Vertommen, M. A., Nierstrasz, V. A., Veer, M. & Warmoeskerken, M. M. Enzymatic surface modification of poly(ethylene terephthalate). J. Biotechnol. 120, 376–386 (2005).
Google Scholar
Sulaiman, S. et al. Isolation of a novel cutinase homolog with polyethylene terephthalate-degrading activity from leaf-branch compost by using a metagenomic approach. Appl. Environ. Microbiol. 78, 1556–1562 (2012).
Google Scholar
Tournier, V. et al. An engineered PET depolymerase to break down and recycle plastic bottles. Nature 580, 216–219 (2020).
Google Scholar
Murphy, N. P. et al. Process innovations to enable viable enzymatic poly(ethylene terephthalate) recycling. Nat. Chem. Eng. 2, 309–320 (2025).
Google Scholar
Oda, K. & Wlodawer, A. Development of enzyme-based approaches for recycling PET on an industrial scale. Biochemistry 63, 369–401 (2024).
Google Scholar
Wei, R. et al. Possibilities and limitations of biotechnological plastic degradation and recycling. Nat. Catal. 3, 867–871 (2020).
Google Scholar
Tournier, V. et al. Enzymes’ power for plastics degradation. Chem. Rev. 123, 5612–5701 (2023).
Google Scholar
Bell, E. L. et al. Natural diversity screening, assay development, and characterization of nylon-6 enzymatic depolymerization. Nat. Commun. 15, 1217 (2024).
Google Scholar
Seidel, J., Schmitt, G., Hoffmann, M., Jendrossek, D. & Einsle, O. Structure of the processive rubber oxygenase RoxA from Xanthomonas sp. Proc. Natl Acad. Sci. USA 110, 13833–13838 (2013).
Google Scholar
Martinez, A. T. et al. Biodegradation of lignocellulosics: microbial, chemical, and enzymatic aspects of the fungal attack of lignin. Int. Microbiol. 8, 195–204 (2005).
Google Scholar
Vaaje-Kolstad, G. et al. An oxidative enzyme boosting the enzymatic conversion of recalcitrant polysaccharides. Science 330, 219–222 (2010).
Google Scholar
Forsberg, Z. et al. Cleavage of cellulose by a CBM33 protein. Protein Sci. 20, 1479–1483 (2011).
Google Scholar
Jendrossek, D. Polyethylene and related hydrocarbon polymers (“plastics”) are not biodegradable. N. Biotechnol. 83, 231–238 (2024).A detailed analysis of experimental and mechanistic inconsistencies in the existing data on degradation of C–C-linked polymers.
Google Scholar
Sanluis-Verdes, A. et al. Wax worm saliva and the enzymes therein are the key to polyethylene degradation by Galleria mellonella. Nat. Commun. 13, 5568 (2022).
Google Scholar
Zhang, Z. et al. Polyvinyl chloride degradation by a bacterium isolated from the gut of insect larvae. Nat. Commun. 13, 5360 (2022).
Google Scholar
Stepnov, A. A. et al. Revisiting the activity of two poly(vinyl chloride)- and polyethylene-degrading enzymes. Nat. Commun. 15, 8501 (2024).An unsuccessful attempt to validate the high-impact reports of enzymatic depolymerization of PE and PVC by Sanluis-Verdes et al. and Zhang et al. (refs. 21 and 22).
Google Scholar
Holland, J. L. & Gee, G. Kinetic studies in the chemistry of rubber and related materials. II. The kinetics of oxidation of unconjugated olefins. Rubber Chem. Technol. 20, 609–617 (1947).
Google Scholar
Smith, L. M., Aitken, H. M. & Coote, M. L. The fate of the peroxyl radical in autoxidation: how does polymer degradation really occur? Acc. Chem. Res. 51, 2006–2013 (2018).
Google Scholar
Hartley, G. H. & Guillet, J. E. Photochemistry of ketone polymers. I. Studies of ethylene-carbon monoxide copolymers. Macromolecules 1, 165–170 (1968).
Google Scholar
Chan, C. M., Yim, S., Lant, P., Pratt, S. & Laycock, B. The impact of functional additives on biodegradable plastic biodegradation in natural terrestrial and composting environments. Crit. Rev. Environ. Sci. Technol. 55, 708–731 (2025).
Google Scholar
Luo, Y.-R. Handbook of Bond Dissociation Energies in Organic Compounds https://doi.org/10.1201/9781420039863 (CRC Press, 2002).
Groves, J. T., Feng, L. & Austin, R. N. Structure and function of alkane monooxygenase (AlkB). Acc. Chem. Res. 56, 3665–3675 (2023).
Google Scholar
Wang, L. et al. Recent insights into function, structure and modification of cytochrome P450 153 a family. Mol. Biol. Rep. 50, 6955–6961 (2023).
Google Scholar
Olmedo, A. et al. From alkanes to carboxylic acids: terminal oxygenation by a fungal peroxygenase. Angew. Chem. Int. Ed. 55, 12248–12251 (2016).
Google Scholar
Wentzel, A., Ellingsen, T. E., Kotlar, H. K., Zotchev, S. B. & Throne-Holst, M. Bacterial metabolism of long-chain n-alkanes. Appl. Microbiol. Biotechnol. 76, 1209–1221 (2007).A brief introduction to alkane catabolism in bacteria.
Google Scholar
Brzeszcz, J. & Kaszycki, P. Aerobic bacteria degrading both n-alkanes and aromatic hydrocarbons: an undervalued strategy for metabolic diversity and flexibility. Biodegradation 29, 359–407 (2018).
Google Scholar
Janusz, G. et al. Lignin degradation: microorganisms, enzymes involved, genomes analysis and evolution. FEMS Microbiol. Rev. 41, 941–962 (2017).
Google Scholar
Cribari, M. A., Unger, M. J. & Martell, J. D. A horseradish peroxidase-mediator system for benzylic C–H activation. ACS Catal. 12, 12246–12252 (2022).
Google Scholar
Barber-Zucker, S. et al. Designed high-redox potential laccases exhibit high functional diversity. ACS Catal. 12, 13164–13173 (2022).
Google Scholar
Miller, L. L., Nordblom, G. D. & Mayeda, E. A. Simple, comprehensive correlation of organic oxidation and ionization potentials. J. Org. Chem. 37, 916–918 (1972).
Google Scholar
Kawamata, Y. et al. Scalable, electrochemical oxidation of unactivated C–H bonds. J. Am. Chem. Soc. 139, 7448–7451 (2017).
Google Scholar
Pujol, M. et al. Harnessing colloidal dispersion for laccase-driven enzymatic depolymerization of polystyrene. Angew. Chem. Int. Ed. 65, e13937 (2026).A successful demonstration of depolymerization of PS by a laccase-mediator system.
Google Scholar
Nutting, J. E., Rafiee, M. & Stahl, S. S. Tetramethylpiperidine N-oxyl (TEMPO), phthalimide N-oxyl (PINO), and related N-oxyl species: electrochemical properties and their use in electrocatalytic reactions. Chem. Rev. 118, 4834–4885 (2018).
Google Scholar
Yan, B., Shi, C., Beckham, G. T., Chen, E. Y. & Roman-Leshkov, Y. Electrochemical activation of C–C bonds through mediated hydrogen atom transfer reactions. ChemSusChem. 15, e202102317 (2022).
Google Scholar
Astolfi, P. et al. New mediators for the enzyme laccase: mechanistic features and selectivity in the oxidation of non-phenolic substrates. N. J. Chem. https://doi.org/10.1039/b507657a (2005).
Ghatge, S., Yang, Y., Ahn, J.-H. & Hur, H.-G. Biodegradation of polyethylene: a brief review. Appl. Biol. Chem. https://doi.org/10.1186/s13765-020-00511-3 (2020).
GC, D. S. et al. Fungal biodegradation of low-density polyethylene using consortium of Aspergillus species under controlled conditions. Heliyon 7, e07008 (2021).
Google Scholar
Isha, Ali, S. & Chang, Y.-C. Biodegradation of polyethylene using Bacillus tropicus isolated from sewage wastewater treatment plant. Processes https://doi.org/10.3390/pr12112516 (2024).
Rong, Z., Ding, Z. H., Wu, Y. H. & Xu, X. W. Degradation of low-density polyethylene by the bacterium Rhodococcus sp. C-2 isolated from seawater. Sci. Total Environ. 907, 167993 (2024).
Google Scholar
Xu, X. et al. Novel Pantoea brenneri CYD50–1 enables nitrogen-synergized enzymatic depolymerization of low-density polyethylene. Chem. Eng. J. https://doi.org/10.1016/j.cej.2025.169692 (2025).
Yavasoglu, A., Cinarli, H., Aras, T. & Zor Alpugan, Z. Isolation and MALDI-TOF MS-based identification of new bacterial isolates from greenhouse and mulch film fields in Izmir (Turkiye) for LDPE biodegradation. Biodegradation https://doi.org/10.1007/s10532-026-10301-1 (2026).
Asfaw, T. D., Muleta, A. & Awlachew, Z. T. Biodegradation of low-density polyethylene (LDPE) bags using fungal isolates from Gondar municipal solid waste disposal soil. Discov. Environ. https://doi.org/10.1007/s44274-026-00540-7 (2026).
Albertsson, A. & Karlsson, S. The influence of biotic and abiotic environments on the degradation of polyethylene. Prog. Polym. Sci. 15, 177–192 (1990). A landmark study performed with 14C-labelled PE showing negligible bioconversion over multiple years of observations.
Google Scholar
Albertsson, A. C. The shape of the biodegradation curve for low and high density polyethenes in prolonged series of experiments. Eur. Polym. J. 16, 623–630 (1980).
Google Scholar
Zampolli, J. et al. Oxidative degradation of polyethylene by two novel laccase-like multicopper oxidases from Rhodococcus opacus R7. Environ. Technol. Innov. https://doi.org/10.1016/j.eti.2023.103273 (2023).
Zhang, Y. et al. Screening of polyethylene-degrading bacteria from Rhyzopertha dominica and evaluation of its key enzymes degrading polyethylene. Polymers https://doi.org/10.3390/polym14235127 (2022).
Zhang, A., Hou, Y., Wang, Q. & Wang, Y. Characteristics and polyethylene biodegradation function of a novel cold-adapted bacterial laccase from Antarctic sea ice psychrophile Psychrobacter sp. NJ228. J. Hazard. Mater. 439, 129656 (2022).
Google Scholar
Zhang, Y. et al. Computer-aided discovery of a novel thermophilic laccase for low-density polyethylene degradation. J. Hazard. Mater. 458, 131986 (2023).
Google Scholar
Son, J. S. et al. Enzymatic oxidation of polyethylene by Galleria mellonella intestinal cytochrome P450s. J. Hazard. Mater. 480, 136264 (2024).
Google Scholar
Gyung Yoon, M., Jeong Jeon, H. & Nam Kim, M. Biodegradation of polyethylene by a soil bacterium and AlkB cloned recombinant cell. J. Bioremediat. Biodegrad. https://doi.org/10.4172/2155-6199.1000145 (2012).
Jeon, H. J. & Kim, M. N. Functional analysis of alkane hydroxylase system derived from Pseudomonas aeruginosa E7 for low molecular weight polyethylene biodegradation. Int. Biodeterior. Biodegrad. 103, 141–146 (2015).
Google Scholar
Kim, H. R. et al. Characterization of a low-density polyethylene-oxidizing enzyme in Pseudomonas aeruginosa via transcriptomic and proteomic analysis. J. Hazard. Mater. Adv. https://doi.org/10.1016/j.hazadv.2025.100726 (2025).
Meng, Q. et al. Isolation of marine polyethylene (PE)-degrading bacteria and its potential degradation mechanisms. Mar. Pollut. Bull. 207, 116875 (2024).
Google Scholar
Hou, L. et al. Biodegradability of polyethylene mulching film by two Pseudomonas bacteria and their potential degradation mechanism. Chemosphere 286, 131758 (2022).
Google Scholar
Maroof, L., Khan, I., Hassan, H., Azam, S. & Khan, W. Microbial degradation of low density polyethylene by Exiguobacterium sp. strain LM-IK2 isolated from plastic dumped soil. World J. Microbiol. Biotechnol. 38, 197 (2022).
Google Scholar
Kavitha, R. & Bhuvaneswari, V. Assessment of polyethylene degradation by biosurfactant producing ligninolytic bacterium. Biodegradation 32, 531–549 (2021).
Google Scholar
Yang, W. K. et al. Biodegradation of low-density polyethylene by mixed fungi composed of Alternaria sp. and Trametes sp. isolated from landfill sites. BMC Microbiol. 24, 321 (2024).
Google Scholar
Lou, H. et al. Biodegradation of polyethylene by Meyerozyma guilliermondii and Serratia marcescens isolated from the gut of waxworms (larvae of Plodia interpunctella). Sci. Total Environ. 853, 158604 (2022).
Google Scholar
Zadjelovic, V. et al. A mechanistic understanding of polyethylene biodegradation by the marine bacterium Alcanivorax. J. Hazard. Mater. 436, 129278 (2022).
Google Scholar
Rejasse, A. et al. Plastic biodegradation: do Galleria mellonella larvae bioassimilate polyethylene? A spectral histology approach using isotopic labeling and infrared microspectroscopy. Environ. Sci. Technol. 56, 525–534 (2022).
Google Scholar
Kim, Y.-J. et al. Biodegradation of low-density polyethylene by Acinetobacter guillouiae PL211 isolated from the waste treatment facility. Microbiol. Biotechnol. Lett. 52, 189–194 (2024).
Google Scholar
Kim, Y.-J. et al. Efficient biodegradation of low-density polyethylene by Pseudomonas plecoglossicida SYp2123 was observed through FT-IR and FE-SEM analysis. Biotechnol. Bioprocess Eng. 29, 743–750 (2024).
Google Scholar
Rong, Z., Xu, X. W. & Wu, Y. H. Biodegradation of low-density polyethylene film by two bacteria isolated from plastic debris in coastal beach. Ecotoxicol. Environ. Saf. 278, 116445 (2024).
Google Scholar
Tao, X. et al. Polyethylene degradation by a Rhodococcous strain isolated from naturally weathered plastic waste enrichment. Environ. Sci. Technol. 57, 13901–13911 (2023).
Google Scholar
Sandholm, R. M. et al. Microbial degradation of a widely used model polyethylene is restricted to medium- and long-chain alkanes and their oxidized derivatives. ISME J. https://doi.org/10.1093/ismejo/wraf276 (2025).
Gao, R., Liu, R. & Sun, C. A marine fungus Alternaria alternata FB1 efficiently degrades polyethylene. J. Hazard. Mater. 431, 128617 (2022).
Google Scholar
Spinola-Amilibia, M. et al. Plastic degradation by insect hexamerins: near-atomic resolution structures of the polyethylene-degrading proteins from the wax worm saliva. Sci. Adv. 9, eadi6813 (2023).
Google Scholar
Albertsson, A.-C., Andersson, S. O. & Karlsson, S. The mechanism of biodegradation of polyethylene. Polym. Degrad. Stab. 18, 73–87 (1987).
Google Scholar
Yamada-Onodera, K., Mukumoto, H., Katsuyaya, Y., Saiganji, A. & Tani, Y. Degradation of polyethylene by a fungus, Penicillium simplicissimum YK. Polym. Degrad. Stab. 72, 323–327 (2001).
Google Scholar
Hadad, D., Geresh, S. & Sivan, A. Biodegradation of polyethylene by the thermophilic bacterium Brevibacillus borstelensis. J. Appl. Microbiol. 98, 1093–1100 (2005).
Google Scholar
Jha, A. K. et al. Discovery and adaptation of microbes that degrade oxidized low-density polyethylene films. J. Ind. Microbiol. Biotechnol. 51, kuae050 (2024).
Google Scholar
Samat, A. F., Carter, D. & Abbas, A. Biodeterioration of pre-treated polypropylene by Aspergillus terreus and Engyodontium album. Npj Mater. Degrad. https://doi.org/10.1038/s41529-023-00342-9 (2023).
Gardette, M. et al. Photo- and thermal-oxidation of polyethylene: comparison of mechanisms and influence of unsaturation content. Polym. Degrad. Stab. 98, 2383–2390 (2013).
Google Scholar
Balke, K., Kadow, M., Mallin, H., Sass, S. & Bornscheuer, U. T. Discovery, application and protein engineering of Baeyer–Villiger monooxygenases for organic synthesis. Org. Biomol. Chem. 10, 6249–6265 (2012).
Google Scholar
Kong, D. M. et al. Chemical-biological degradation of polyethylene combining Baeyer–Villiger oxidation and hydrolysis reaction of cutinase. Green Chem. 24, 2203–2211 (2022).
Google Scholar
Kim, D. W. et al. Biodegradation of oxidized low density polyethylene by Pelosinus fermentans lipase. Bioresour. Technol. 403, 130871 (2024).
Google Scholar
Oiffer, T. et al. Chemo-enzymatic depolymerization of functionalized low-molecular-weight polyethylene. Angew. Chem. Int. Ed. 63, e202415012 (2024).
Google Scholar
Gugumus, F. Physico-chemical aspects of polyethylene processing in open mixers 1: review of published work. Polym. Degrad. Stab. 66, 161–172 (1999).
Google Scholar
Gugumus, F. Physico-chemical aspects of polyethylene processing in an open mixer 2. Functional group formation on PE-LD processing. Polym. Degrad. Stab. 67, 35–47 (2000).
Google Scholar
Hinsken, H., Moss, S., Pauquet, J. R. & Zweifel, H. Degradation of polyolefins during melt processing. Polym. Degrad. Stab. 34, 279–293 (1991).
Google Scholar
Dey, S. et al. Comparative evaluation of polyethylene degradation efficiency by two Pseudomonas aeruginosa strains from urban waste disposal areas. Biotechnol. Lett. 48, 6 (2025).
Google Scholar
Weber, C., Pusch, S. & Opatz, T. Polyethylene bio-degradation by caterpillars? Curr. Biol. 27, R744–R745 (2017).An important discussion of the limitations of FTIR for assessing polymer degradation.
Google Scholar
Sandt, C., Waeytens, J., Deniset-Besseau, A., Nielsen-Leroux, C. & Rejasse, A. Use and misuse of FTIR spectroscopy for studying the bio-oxidation of plastics. Spectrochim. Acta A 258, 119841 (2021).
Google Scholar
Yao, Z., Seong, H. J. & Jang, Y.-S. Degradation of low density polyethylene by Bacillus species. Appl. Biol. Chem. https://doi.org/10.1186/s13765-022-00753-3 (2022).
Mirabella, F. M. Principles, theory and practice of internal reflection spectroscopy. In Internal Reflection Spectroscopy (eds Chalmers, J. M. & Griffiths, P. R.) https://doi.org/10.1002/0470027320.s2301 (Wiley, 2006).
Chytrosz-Wrobel, P., Golda-Cepa, M., Stodolak-Zych, E., Rysz, J. & Kotarba, A. Effect of oxygen plasma-treatment on surface functional groups, wettability, and nanotopography features of medically relevant polymers with various crystallinities. Appl. Surf. Sci. Adv. https://doi.org/10.1016/j.apsadv.2023.100497 (2023).
Zhang, Z., Tian, R., Zhang, P., Lu, C. & Duan, X. Three-dimensional visualization for early-stage evolution of polymer aging. ACS Cent. Sci. 6, 771–778 (2020).
Google Scholar
Klauer, R. R. et al. A high throughput assay to detect enzymatic polyethylene oxidation. Biochem. Eng. J. 226, 109978 (2026).
Song, J., Gunst, U., Arlinghaus, H. F. & Vancso, G. J. Flame treatment of low-density polyethylene: surface chemistry across the length scales. Appl. Surf. Sci. 253, 9489–9499 (2007).
Google Scholar
Cuthbertson, A. A. et al. Characterization of polymer properties and identification of additives in commercially available research plastics. Green Chem. 26, 7067–7090 (2024).A comprehensive study documenting multiple additives and contaminants in commercially available polymer samples commonly used in research.
Google Scholar
Ellis, L. D. et al. Chemical and biological catalysis for plastics recycling and upcycling. Nat. Catal. 4, 539–556 (2021).
Google Scholar
Beattie, M. & Jones, O. A. H. Rate of advancement of detection limits in mass spectrometry: is there a Moore’s law of mass spec? Mass Spectrom. 12, A0118 (2023).
Google Scholar
Xia, Y. Q., Patel, S., Bakhtiar, R., Franklin, R. B. & Doss, G. A. Identification of a new source of interference leached from polypropylene tubes in mass-selective analysis. J. Am. Soc. Mass. Spectrom. 16, 417–421 (2005).
Google Scholar
Law, K. L., Sobkowicz, M. J., Shaver, M. P. & Hahn, M. E. Untangling the chemical complexity of plastics to improve life cycle outcomes. Nat. Rev. Mater. 9, 657–667 (2024).
Google Scholar
Sangale, M. K., Shahnawaz, M. & Ade, A. B. Gas chromatography-mass spectra analysis and deleterious potential of fungal based polythene-degradation products. Sci. Rep. 9, 1599 (2019).
Google Scholar
Albertsson, A.-C. Biodegradation of synthetic polymers. II. A limited microbial conversion of 14C in polyethylene to 14CO2 by some soil fungi. J. Appl. Polym. Sci. 22, 3419–3433 (1978).
Google Scholar
Albertsson, A. C. & Karlsson, S. The three stages in degradation of polymers—polyethylene as a model substance. J. Appl. Polym. Sci. 35, 1289–1302 (1988).
Google Scholar
Patel, R. M. Polyethylene. In Multilayer Flexible Packaging (ed. Wagner, J. R. Jr.) 17–34 (William Andrew Publishing, 2016).
Malpass, D. B. Introduction to Industrial Polyethylene https://doi.org/10.1002/9780470900468 (Scrivener Publishing, 2010).
Goudriaan, M. et al. A stable isotope assay with 13C-labeled polyethylene to investigate plastic mineralization mediated by Rhodococcus ruber. Mar. Pollut. Bull. 186, 114369 (2023).
Google Scholar
Chen, Q. et al. Structural characterization of solution-crystallized 13C-labeled polyethylene over a wide range of temperatures by means of high-resolution 13C NMR spectroscopy. J. Mol. Struct. 263, 319–327 (1991).
Google Scholar
Mowery, D. M. et al. Solid-state 13C NMR investigation of the oxidative degradation of selectively labeled polypropylene by thermal aging and γ-irradiation. Macromolecules 38, 5035–5046 (2005).
Google Scholar
Mauel, A. et al. Quantification of photooxidative defects in weathered microplastics using 13C multiCP NMR spectroscopy. RSC Adv. 12, 10875–10885 (2022).
Google Scholar
Wiesinger, H. et al. Legacy and emerging plasticizers and stabilizers in PVC floorings and implications for recycling. Environ. Sci. Technol. 58, 1894–1907 (2024).
Google Scholar
Saeki, K., Funatsu, K. & Tanabe, K. Discrimination of poly(vinyl chloride) samples with different plasticizers and prediction of plasticizer contents in poly(vinyl chloride) using near-infrared spectroscopy and neural-network analysis. Anal. Sci. 19, 309–312 (2003).
Google Scholar
Hinton, Z. R. et al. Antioxidant-induced transformations of a metal-acid hydrocracking catalyst in the deconstruction of polyethylene waste. Green Chem. 24, 7332–7339 (2022).
Google Scholar
Andersen, M., Kari, J., Borch, K. & Westh, P. Michaelis–Menten equation for degradation of insoluble substrate. Math. Biosci. 296, 93–97 (2018).
Google Scholar
Kari, J., Andersen, M., Borch, K. & Westh, P. An inverse Michaelis–Menten approach for interfacial enzyme kinetics. ACS Catal. 7, 4904–4914 (2017).
Google Scholar
Yoshida, S. et al. A bacterium that degrades and assimilates poly(ethylene terephthalate). Science 351, 1196–1199 (2016).A classic study demonstrating an integrated approach towards identification of a plastic-degrading organism and the corresponding enzymes and pathways.
Google Scholar
Bornscheuer, U. T. Feeding on plastic. Science 351, 1154–1155 (2016).
Google Scholar
Bissaro, B., Varnai, A., Rohr, A. K. & Eijsink, V. G. H. Oxidoreductases and reactive oxygen species in conversion of lignocellulosic biomass. Microbiol. Mol. Biol. Rev. https://doi.org/10.1128/MMBR.00029-18 (2018).
Guzik, M. W. et al. Robust process for high yield conversion of non-degradable polyethylene to a biodegradable plastic using a chemo-biotechnological approach. Waste Manag. 135, 60–69 (2021).
Google Scholar
Sullivan, K. P. et al. Mixed plastics waste valorization through tandem chemical oxidation and biological funneling. Science 378, 207–211 (2022).
Google Scholar
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