Engineering the Enzyme−Support Interface: Arginine-Directed Anchoring of Peroxygenase on a β-Ketoester Covalent Organic Framework

Controlling the conformation and orientation of enzymes at solid interfaces is a central challenge in the design of functional biohybrid materials, and the outcome depends sensitively on the chemistry and geometry of the enzyme-support interface. Here, a β-ketoester-functionalized keto-enamine covalent organic framework (COF) is developed as a structurally defined support for arginine-directed immobilization of unspecific peroxygenase (UPO). The crystalline periodicity and post-synthetic addressability of the COF lattice enable precise placement of anchoring groups at the enzyme-support interface. The grafted β-ketoester groups react with surface arginine residues under mild aqueous conditions, forming a robust covalent linkage without external activating agents or toxic cross-linkers. Compared with physical adsorption and lysine-directed epoxy coupling, the arginine-directed strategy offers higher enzyme loading, reduced leaching, and improved reusability, while raising the catalytic efficiency (kcat/KM) toward ABTS oxidation 1.8-fold. Spectroscopic and molecular dynamics analyses indicate that arginine-directed anchoring rigidifies the enzyme and biases the heme channel toward a more open average geometry, offering a structural rationale for the enhanced turnover. The immobilized UPO also shows improved productivity in representative hydroxylation, sulfoxidation, and halogenation reactions. These results establish the identity of the anchoring residue as a tunable interfacial design parameter for COF-supported biocatalytic materials.

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Publication Details

Journal
ACS Applied Materials & Interfaces
Published
2026-09-12
DOI
https://doi.org/10.1021/acsami.6c14068
Primary Topic
Covalent Organic Framework Applications
Type
article
Field-Weighted Citation Impact
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article

Engineering the Enzyme−Support Interface: Arginine-Directed Anchoring of Peroxygenase on a β-Ketoester Covalent Organic Framework

Zhixian Li, Xueqing Qiu, Aitao Li, Hongming Lou et al.
ACS Applied Materials & Interfaces
Covalent Organic Framework Applications
article

Engineering the Enzyme−Support Interface: Arginine-Directed Anchoring of Peroxygenase on a β-Ketoester Covalent Organic Framework

Zhixian Li, Xueqing Qiu, Aitao Li, Hongming Lou, Yuxia Pang, 吳宛錚, Yikang Lu
article en

Abstract

Controlling the conformation and orientation of enzymes at solid interfaces is a central challenge in the design of functional biohybrid materials, and the outcome depends sensitively on the chemistry and geometry of the enzyme-support interface. Here, a β-ketoester-functionalized keto-enamine covalent organic framework (COF) is developed as a structurally defined support for arginine-directed immobilization of unspecific peroxygenase (UPO). The crystalline periodicity and post-synthetic addressability of the COF lattice enable precise placement of anchoring groups at the enzyme-support interface. The grafted β-ketoester groups react with surface arginine residues under mild aqueous conditions, forming a robust covalent linkage without external activating agents or toxic cross-linkers. Compared with physical adsorption and lysine-directed epoxy coupling, the arginine-directed strategy offers higher enzyme loading, reduced leaching, and improved reusability, while raising the catalytic efficiency (kcat/KM) toward ABTS oxidation 1.8-fold. Spectroscopic and molecular dynamics analyses indicate that arginine-directed anchoring rigidifies the enzyme and biases the heme channel toward a more open average geometry, offering a structural rationale for the enhanced turnover. The immobilized UPO also shows improved productivity in representative hydroxylation, sulfoxidation, and halogenation reactions. These results establish the identity of the anchoring residue as a tunable interfacial design parameter for COF-supported biocatalytic materials.

ACS Applied Materials & Interfaces
Guangdong University of Technology (CN), Hubei University (CN), South China University of Technology (CN)
Central South University, National Key Research and Development Program of China
Openalex Percentile: Top 24%
Covalent Organic Framework Applications
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