Back

Structural insights and engineering of deep-sea halophilic PET hydrolytic enzymes

Zhang, G.; Li, X.; Xia, W.; Zhang, C.; Zheng, S.; Du, J.; Wang, N.; Chen, X.; Lv, G.; Zhao, Y.; Wang, T.; Pan, Y.; Zhang, M.; Huang, J.-W.; Chen, C.-C.; Huang, S.; Zeng, C.; Gao, Z.; Chen, J.; Fan, G.; Zhang, X.; Wang, H.; Sun, Y.; Wu, J.; Liu, K.; Guo, R.-T.; Li, S.

2025-08-30 molecular biology
10.1101/2025.08.30.673199 bioRxiv
Show abstract

Pervasive use of polyethylene terephthalate (PET) poses tremendous challenges for global waste management and environmental sustainability, fueling growing interests in enzymatic degradation as an eco-friendly solution. While PET hydrolases hold significant promise, their industrial deployment is hindered by insufficient performance, particularly under high-salinity conditions raised from high substrate loads. Building on our previous discovery of three deep-sea PET hydrolases (dsPETase01, dsPETase05 and dsPETase06) with exceptional halophilicity and PET-degrading activity, we here present their three-dimensional structures and mechanistic characterization. Structural comparison, site-directed mutagenesis, and domain swapping reveal key structural features and the essential role of C-terminal acidic residues in salt tolerance. Integrating semi-rational protein design, Transformer-based modeling, and disulfide bond engineering, we synergistically enhance the thermostability and catalytic efficiency of dsPETase05. These findings elucidate the unique structural features and salt adaptation mechanisms of deep-sea halophilic PET hydrolases, and inform the future engineering of biocatalysts for application in harsh industrial environments.

Matching journals

The top 2 journals account for 50% of the predicted probability mass.

50% of probability mass above

"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.