Deep Learning-Guided Interface Engineering Stabilizes Oligomeric Enzymes

Abstract The thermostability of oligomeric enzymes is often limited by the intrinsic flexibility of subunit interfaces. Herein, we report a deep learning-driven interface engineering strategy (DeepIE) to systematically stabilize oligomeric enzymes. Applied to a dimeric formate dehydrogenase, we de novo redesigned six flexible regions at the dimer interface. The lead variant retains wild-type catalytic activity while exhibiting an ∼500-fold increase in half-life at 50 °C. Molecular dynamics analyses revealed that reduced local flexibility and strengthened interfacial hydrophobic packing underpin the enhanced thermostability. This work establishes an artificial intelligence-driven, generalizable framework for rational thermostabilization of oligomeric biocatalysts, effectively overcoming the activity–stability trade-off.

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Publication Details

Journal
ACS Catalysis
Published
2026-09-21
DOI
https://doi.org/10.1021/acscatal.6c05133
Primary Topic
Enzyme Catalysis and Immobilization
Type
article
Field-Weighted Citation Impact
0.00
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Deep Learning-Guided Interface Engineering Stabilizes Oligomeric Enzymes

Zhi‐Jun Zhang, Qingchao Jiang, Xinyi Lu, Hui‐Lei Yu et al.
ACS Catalysis
Enzyme Catalysis and Immobilization
article

Deep Learning-Guided Interface Engineering Stabilizes Oligomeric Enzymes

Zhi‐Jun Zhang, Qingchao Jiang, Xinyi Lu, Hui‐Lei Yu, Kun Shi, Xiao-Yu You, Wei-Jie Zhan, Zhi-Hao He, Yang Zhuo
article en

Abstract

Abstract The thermostability of oligomeric enzymes is often limited by the intrinsic flexibility of subunit interfaces. Herein, we report a deep learning-driven interface engineering strategy (DeepIE) to systematically stabilize oligomeric enzymes. Applied to a dimeric formate dehydrogenase, we de novo redesigned six flexible regions at the dimer interface. The lead variant retains wild-type catalytic activity while exhibiting an ∼500-fold increase in half-life at 50 °C. Molecular dynamics analyses revealed that reduced local flexibility and strengthened interfacial hydrophobic packing underpin the enhanced thermostability. This work establishes an artificial intelligence-driven, generalizable framework for rational thermostabilization of oligomeric biocatalysts, effectively overcoming the activity–stability trade-off.

ACS Catalysis
East China University of Science and Technology (CN)
Openalex Percentile: Top 18%
Enzyme Catalysis and Immobilization
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