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Computer-aided discovery of a novel thermophilic laccase for low-density polyethylene degradation

npj Emerging Contaminants 2023 34 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count.
Yan Zhang, Thea Jess Plesner, Yi Ouyang, Yu‐Cong Zheng, Etienne Bouhier, Emilie Ingemann Berentzen, Mingliang Zhang, Pengfei Zhou, Wolfgang Zimmermann, G.R. Andersen, Bekir Engin Eser, Zheng Guo

Summary

Researchers used computer-aided screening to identify a novel thermophilic laccase enzyme from a polyethylene-degrading bacterium, demonstrating that this enzyme can degrade low-density polyethylene films and decolorize industrial dyes, making it a promising candidate for simultaneous plastic and textile pollutant remediation.

Polymers

Polyethylene (PE) and industrial dyes are recalcitrant pollutants calling for the development of sustainable solutions for their degradation. Laccases have been explored for removal of contaminants and pollutants, including dye decolorization and plastic degradation. Here, a novel thermophilic laccase from PE-degrading Lysinibaccillus fusiformis (LfLAC3) was identified through a computer-aided and activity-based screening. Biochemical studies of LfLAC3 indicated its high robustness and catalytic promiscuity. Dye decolorization experiments showed that LfLAC3 was able to degrade all the tested dyes with decolorization percentage from 39% to 70% without the use of a mediator. LfLAC3 was also demonstrated to degrade low-density polyethylene (LDPE) films after eight weeks of incubation with either crude cell lysate or purified enzyme. The formation of a variety of functional groups was detected using Fourier transform infrared spectroscopy (FTIR) and X-ray photoelectron spectroscopy (XPS). Damage on the surfaces of PE films was observed via scanning electron microscopy (SEM). The potential catalytic mechanism of LfLAC3 was disclosed by structure and substrate-binding modes analysis. These findings demonstrated that LfLAC3 is a promiscuous enzyme that has promising potential for dye decolorization and PE degradation.

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