<p>Plastic contamination poses a severe environmental threat through the time persistence of synthetic polymers in the ecosystem. Fungal enzymes, especially those from <i>Aspergillus tubingensis</i>, have shown great potential as biocatalysts for plastic waste breakdown. In this work, the possibility of a genetically engineered cutinase enzyme for degrading the commonly used and environmentally stable plastic polyethylene terephthalate (PET) was examined. The cutinase was engineered to increase its catalytic efficiency and PET-degrading performance. To gain insights into the molecular interactions between the enzyme and PET, molecular docking and dynamics simulations were performed. The computational studies gave insights into the binding affinity and structural integrity of the enzyme–PET complex and the identification of key residues participating in the degradation process. This research offers a new method for plastic waste management through the use of engineered fungal enzymes, opening avenues for more efficient and sustainable PET bioremediation methods. Furthermore, experimental degradation assays are required to prove the mutant cutinase’s efficacy in degrading PET.</p>

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In silico engineering of Aspergillus tubingensis cutinase to enhance PET biodegradation potential

  • Asiya Azarudeen,
  • Sam Peniel Richard,
  • Tamilarasi Sambu Periyasamy,
  • Nishu Sekar,
  • Hariprasath Lakshmanan

摘要

Plastic contamination poses a severe environmental threat through the time persistence of synthetic polymers in the ecosystem. Fungal enzymes, especially those from Aspergillus tubingensis, have shown great potential as biocatalysts for plastic waste breakdown. In this work, the possibility of a genetically engineered cutinase enzyme for degrading the commonly used and environmentally stable plastic polyethylene terephthalate (PET) was examined. The cutinase was engineered to increase its catalytic efficiency and PET-degrading performance. To gain insights into the molecular interactions between the enzyme and PET, molecular docking and dynamics simulations were performed. The computational studies gave insights into the binding affinity and structural integrity of the enzyme–PET complex and the identification of key residues participating in the degradation process. This research offers a new method for plastic waste management through the use of engineered fungal enzymes, opening avenues for more efficient and sustainable PET bioremediation methods. Furthermore, experimental degradation assays are required to prove the mutant cutinase’s efficacy in degrading PET.