Cell-Mimetic Compartmentalization of Natural Enzymes within MOF-Core/COF-Shell Heterostructures as a Versatile Cascade Biosensing Platform

Abstract The burgeoning demand for efficient multienzyme cascades necessitates advanced scaffolds capable of precise spatial organization; however, constructing heterostructured multilayer frameworks (HMFs) remains a formidable challenge due to harsh solvothermal conditions and imprecise enzyme localization. Herein, a biocompatible, interface-directed strategy is reported to engineer a cell-mimetic metal–organic framework@covalent organic framework (MOF@COF) heterostructure as a versatile colorimetric biosensing platform. Specifically, glucose oxidase immobilization within defect-rich (COOH)2-UiO-66 via competitive coordination generated robust sensing elements. Subsequently, ionic liquid-catalyzed interfacial nucleation orchestrated the in situ growth of a horseradish peroxidase-encapsulated COF shell, yielding a compartmentalized architecture with hierarchical channels. Mechanistic investigations and density functional theory (DFT) calculations reveal that the support’s defect density and interfacial adsorption energy, rather than long-range crystallinity, dictate the directional assembly of the COF layer. This heterostructure exhibits enhanced cascade activity and analytical reliability through spatial proximity and reduced mass transfer resistance over conventional one-pot or stepwise assemblies, while control studies with zeolitic imidazolate framework-8 and hydrogen-bonded organic framework counterparts underscore its superiority in proximity-induced intermediate transfer. Integrating monomer reactivity with topological symmetry offers a predictive blueprint for customizing structurally diverse HMF libraries. Ultimately, flexible replacement of the core enzyme enables the functional validation of this platform through the colorimetric quantification of glucose and hypoxanthine, offering a rational blueprint for engineering biointerfaced heterostructures in cascade biocatalysis.

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Publication Details

Journal
Analytical Chemistry
Published
2026-10-03
DOI
https://doi.org/10.1021/acs.analchem.6c04801
Primary Topic
Advanced Nanomaterials in Catalysis
Type
article
Field-Weighted Citation Impact
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article

Cell-Mimetic Compartmentalization of Natural Enzymes within MOF-Core/COF-Shell Heterostructures as a Versatile Cascade Biosensing Platform

Baocai Xu, Jin Mao, Jie Ru Shi, Yanan Zhou et al.
Analytical Chemistry
Advanced Nanomaterials in Catalysis
article

Cell-Mimetic Compartmentalization of Natural Enzymes within MOF-Core/COF-Shell Heterostructures as a Versatile Cascade Biosensing Platform

Baocai Xu, Jin Mao, Jie Ru Shi, Yanan Zhou, Bo Tang, Baozhu Zhao, Zhifei Cheng
article en

Abstract

Abstract The burgeoning demand for efficient multienzyme cascades necessitates advanced scaffolds capable of precise spatial organization; however, constructing heterostructured multilayer frameworks (HMFs) remains a formidable challenge due to harsh solvothermal conditions and imprecise enzyme localization. Herein, a biocompatible, interface-directed strategy is reported to engineer a cell-mimetic metal–organic framework@covalent organic framework (MOF@COF) heterostructure as a versatile colorimetric biosensing platform. Specifically, glucose oxidase immobilization within defect-rich (COOH)2-UiO-66 via competitive coordination generated robust sensing elements. Subsequently, ionic liquid-catalyzed interfacial nucleation orchestrated the in situ growth of a horseradish peroxidase-encapsulated COF shell, yielding a compartmentalized architecture with hierarchical channels. Mechanistic investigations and density functional theory (DFT) calculations reveal that the support’s defect density and interfacial adsorption energy, rather than long-range crystallinity, dictate the directional assembly of the COF layer. This heterostructure exhibits enhanced cascade activity and analytical reliability through spatial proximity and reduced mass transfer resistance over conventional one-pot or stepwise assemblies, while control studies with zeolitic imidazolate framework-8 and hydrogen-bonded organic framework counterparts underscore its superiority in proximity-induced intermediate transfer. Integrating monomer reactivity with topological symmetry offers a predictive blueprint for customizing structurally diverse HMF libraries. Ultimately, flexible replacement of the core enzyme enables the functional validation of this platform through the colorimetric quantification of glucose and hypoxanthine, offering a rational blueprint for engineering biointerfaced heterostructures in cascade biocatalysis.

Analytical Chemistry
Hefei University of Technology (CN), Shandong Normal University (CN), Chinese Academy of Agricultural Sciences (CN), Laoshan Laboratory
Openalex Percentile: Top 26%
Advanced Nanomaterials in Catalysis
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