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Enzymatic Potential of Schizophyllum commune BNT39 in BHET Hydrolysis and PET Biodegradation

Mendeley Data 2025 1 citation ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count.
Fernando Gabriel Martínez, Victor Martinez, Claudia Elizabeth Pereira, Federico Zannier, Víctor Gonzalo Arnau, Cintia M. Romero, Analía Álvarez

Summary

This research reviewed global ocean monitoring data for surface plastic concentrations, synthesizing trawl survey results from multiple oceanographic expeditions to estimate global ocean plastic mass. The review compiles spatial distribution patterns and examines discrepancies between modeled and measured plastic loads in different ocean basins.

Polymers

The accumulation of polyethylene terephthalate (PET) in the environment demands efficient microbial strategies for its degradation. This study evaluates the biodegradation potential of Schizophyllum commune BNT39 toward bis(2-hydroxyethyl) terephthalate (BHET), a major PET intermediate, and PET itself. Clear halos on BHET-agar plates indicated extracellular hydrolytic activity. In liquid culture, thin-layer chromatography (TLC) and high-performance liquid chromatography (HPLC) analyses revealed a three-phase degradation profile characterized by rapid BHET hydrolysis, transient dimer accumulation, and subsequent conversion to terephthalic acid (TPA). BHET was reduced by approximately 96% within seven days, while TPA accumulation reached 0.8 mg/mL after 30 days of incubation. Although PET degradation was limited, TPA was consistently detected as the principal product, with no BHET or MHET intermediates. To explore strategies for enhancing enzymatic activity, apple-derived cutin, PET, BHET, and polycaprolactone (PCL) were tested as inducers. Cutin markedly stimulated extracellular enzyme production, suggesting activation of cutinase-like enzymes. Overall, S. commune BNT39 demonstrates the ability to transform PET-related substrates, with cutin emerging as a promising natural stimulant to enhance enzymatic depolymerization. Future studies should focus on enzyme purification, activity profiling, and reaction optimization near PET’s glass transition temperature, where the polymer becomes more accessible for enzymatic attack.

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