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Updated: Aug 6, 2026

Isolation of Native Soil Microorganisms with Potential for Breaking Down Biodegradable Plastic Mulch Films Used in Agriculture
Published on: May 10, 2013
A cold-adapted polyurethane-degrading lipase from the gut bacterium of plastic-eating superworms
Mingyue Liu1, Xuan Chen1, Xuena Dong1
1School of Life Science, Beijing Institute of Technology, Beijing 100081, PR China.
Abstract:
Enzymatic recycling has been proposed as an alternate strategy to polyurethane (PU) waste management. However, the bulk of previously known PU-degrading enzymes were classed as thermophilic or mesophilic enzymes, with cold-adapted enzymes being uncommon. Here, we identified PSLA, a cold-adapted lipase from Pseudomonas sp. BIT-r11, a strain isolated from the gut of plastic-eating superworms. PSLA retained activity at 0 °C, and exhibited a low optimal temperature (Topt) of 15 °C, a melting temperature (Tm) of 35.5 °C, and a pronounced temperature gap (Tm-Topt) of 20.5 °C, features characteristic of a cold-adapted enzyme. Under optimal conditions (15 °C, pH 7.0), PSLA degraded 49.56 ± 3.74% of a dispersed polyester-PU emulsion (Impranil® DLN-SD) within 15 min and caused 1.20 ± 0.03% weight loss of solid polyester-based PU foam over 5 days. Structural comparison and molecular dynamics (MD) simulations suggest that a truncated C-terminal region is associated with increased terminal flexibility at low temperature. This flexibility may facilitate catalytically competent substrate binding, as reflected by more stable maintenance of a near-attack geometry between S207 and the substrate in simulations, as well as a lower apparent Km and higher catalytic efficiency at 15 °C than at 30 °C. Together, these structural and kinetic features provide a plausible mechanistic basis for the cold-adapted PU-hydrolyzing activity of PSLA. This work expands the enzyme toolbox for low-temperature PU biodegradation and provides a starting point for developing PU biotransformation strategies under cold environmental conditions.
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