Skip to content
Open access

Process-Compatible Immobilization of Thermolabile Enzymes for Self-Degradable Polyesters via Industrial Melt Compounding Conditions

Jul 2026 · Polymers · Vol 18 · 0 citations · 86 references
Medicine

Abstract

Integrating thermolabile enzymes into industrial melt processing remains a key challenge for achieving programmable self-degradable plastics. Here, we demonstrate a process-compatible stabilization strategy for bio-based polyesters using immobilized Alcalase. Two approaches were compared: adsorption onto zeolite (Z-En) and entrapment within a citric acid–crosslinked carboxymethyl cellulose matrix (C-En-CA). Poly(lactic acid) (PLA) masterbatches containing 10 wt% C-En-CA retained catalytic functionality after twin-screw extrusion at temperatures up to 210 °C. Hydrolytic testing in 0.05 M Tris–HCl buffer (pH 8.0) resulted in a 10.03% mass loss after 3 weeks, confirming enzyme survival following melt compounding. When incorporated into PBAT T-die films, the C-En-CA system achieved 79.5% biodegradation within 45 days under industrial composting conditions. These results demonstrate that appropriate immobilization enables enzymatic stabilization under realistic extrusion temperatures, offering a scalable pathway toward controllable end-of-life degradation in commercially relevant biodegradable plastics. Ultimately, this study establishes a new paradigm for polymer–enzyme composites by overcoming the long-standing 200 °C thermal barrier, effectively unlocking the practical deployment of biocatalytic masterbatches in industrial manufacturing.

Read PDF

We use cookies to run the site and, with your consent, for analytics and to show ads. See our Cookie Policy.