Journal
INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES
Volume 22, Issue 7, Pages -Publisher
MDPI
DOI: 10.3390/ijms22073491
Keywords
polylactide; poly(ethylene terephthalate); Trichoderma viride; hydrophobin; hydrophobin film; bioremediation
Funding
- statutory operations of Nicolaus Copernicus University in Torun
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Plastic pollution is a major global challenge, and biodegradation using a high pectinolytic fungus has shown promising results in laboratory conditions. The fungus was found to produce hydrophobin proteins and adhere to the plastic surface, forming a hydrophobin film. These findings open the door to further research and potential practical applications in environmental conditions.
Plastic pollution is one of the crucial global challenges nowadays, and biodegradation is a promising approach to manage plastic waste in an environment-friendly and cost-effective way. In this study we identified the strain of fungus Trichoderma viride GZ1, which was characterized by particularly high pectinolytic activity. Using differential scanning calorimetry, Fourier-transform infrared spectroscopy techniques, and viscosity measurements we showed that three-month incubation of polylactide and polyethylene terephthalate in the presence of the fungus lead to significant changes of the surface of polylactide. Further, to gain insight into molecular mechanisms underneath the biodegradation process, western blot hybridization was used to show that in the presence of poly(ethylene terephthalate) (PET) in laboratory conditions the fungus produced hydrophobin proteins. The mycelium adhered to the plastic surface, which was confirmed by scanning electron microscopy, possibly due to the presence of hydrophobins. Further, using atomic force microscopy we demonstrated for the first time the formation of hydrophobin film on the surface of aliphatic polylactide (PLA) and PET by T. viride GZ1. This is the first stage of research that will be continued under environmental conditions, potentially leading to a practical application.
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