Triggering and identifying the polyurethane and polyethylene-degrading machinery of filamentous fungi secretomes

G Taxeidis, E Nikolaivits, R Siaperas, C Gkountela… - Environmental …, 2023 - Elsevier
G Taxeidis, E Nikolaivits, R Siaperas, C Gkountela, S Vouyiouka, B Pantelic…
Environmental Pollution, 2023Elsevier
The uncontrollable disposal of plastic waste has raised the concern of the scientific
community, which tries to face this environmental burden by discovering and applying new
techniques. Regarding the biotechnology field, several important microorganisms
possessing the necessary enzymatic arsenal to utilize recalcitrant synthetic polymers as an
energy source have been discovered. In the present study, we screened various fungi for
their ability to degrade intact polymers, such as ether-based polyurethane (PU) and low …
Abstract
The uncontrollable disposal of plastic waste has raised the concern of the scientific community, which tries to face this environmental burden by discovering and applying new techniques. Regarding the biotechnology field, several important microorganisms possessing the necessary enzymatic arsenal to utilize recalcitrant synthetic polymers as an energy source have been discovered. In the present study, we screened various fungi for their ability to degrade intact polymers, such as ether-based polyurethane (PU) and low-density polyethylene (LDPE). For this, ImpranIil® DLN-SD and a mixture of long-chain alkanes were used as sole carbon sources, indicating not only the most promising strains in agar plate screening but also inducing the secretion of depolymerizing enzymatic activities, useful for polymer degradation. The agar plate screening revealed three fungal strains belonging to Fusarium and Aspergillus genera, whose secretome was further studied for its ability to degrade the aforementioned non-treated polymers. Specifically for ether-based PU, the secretome of a Fusarium species reduced the sample mass and the average molecular weight of the polymer by 24.5 and 20.4%, respectively, while the secretome of an Aspergillus species caused changes in the molecular structure of LDPE, as evidenced by FTIR. The proteomics analysis revealed that the enzymatic activities induced in presence of Impranil® DLN-SD can be associated with urethane bond cleavage, a fact which was also supported by the observed degradation of the ether-based PU. Although, the mechanism of LDPE degradation was not completely elucidated, the presence of oxidative enzymes could be the main factor contributing to polymer modification.
Elsevier
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