Self‐Assembled Crystalline Peptoid Nanomaterials as Metal‐Free Enzyme Mimics for Enhanced Carbon Dioxide Hydration and Precipitation

ABSTRACT Inspired by recently discovered metal‐free carbonic anhydrases (CAs) and other natural enzymes that achieve efficient catalysis without metal cofactors, we herein report a sequence‐defined supramolecular peptoid platform that mimics metal‐free CAs and exhibits hydrolytic activity via a supramolecular assembly‐mediated proton‐transfer mechanism. This rational peptoid design employs a spatially distributed histidine‐inspired functionality within a cyclen‐based macrocyclic scaffold embedded in an amphiphilic peptoid system, enabling self‐assembly into highly crystalline nanosheets and nanotubes. These peptoid assemblies exhibit efficient hydrolysis of 4‐nitrophenyl acetate (4‐NPA) under physiological conditions, with catalytic activity strongly correlated with the spatial organization of imidazole groups and the assembly morphology. Extensive mechanistic studies suggest that the catalysis relies on assembly‐confined proton transfer within the H‐bonding network of peptoid assemblies, thereby promoting general acid‐base catalysis. Additionally, peptoid catalysts enhance CO 2 hydration and precipitation, providing sequence‐defined nanomaterials as a flexible, metal‐free artificial enzyme platform for hydrolytic catalysis and biomimetic mineralization.

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Publication Details

Journal
Advanced Functional Materials
Published
2026-09-12
DOI
https://doi.org/10.1002/adfm.78375
Primary Topic
Supramolecular Self-Assembly in Materials
Type
article
Field-Weighted Citation Impact
0.00

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article

Self‐Assembled Crystalline Peptoid Nanomaterials as Metal‐Free Enzyme Mimics for Enhanced Carbon Dioxide Hydration and Precipitation

Progyateg Chakma, Kyle Whitaker, Chun‐Long Chen, Thi Kim Hoang Trinh et al.
Advanced Functional Materials
Supramolecular Self-Assembly in Materials
article

Self‐Assembled Crystalline Peptoid Nanomaterials as Metal‐Free Enzyme Mimics for Enhanced Carbon Dioxide Hydration and Precipitation

Progyateg Chakma, Kyle Whitaker, Chun‐Long Chen, Thi Kim Hoang Trinh, Botao Hao, Ying Chen, Anthony R. Perez, Jonathan Gil, Maria Casco Hidalgo
article en

Abstract

ABSTRACT Inspired by recently discovered metal‐free carbonic anhydrases (CAs) and other natural enzymes that achieve efficient catalysis without metal cofactors, we herein report a sequence‐defined supramolecular peptoid platform that mimics metal‐free CAs and exhibits hydrolytic activity via a supramolecular assembly‐mediated proton‐transfer mechanism. This rational peptoid design employs a spatially distributed histidine‐inspired functionality within a cyclen‐based macrocyclic scaffold embedded in an amphiphilic peptoid system, enabling self‐assembly into highly crystalline nanosheets and nanotubes. These peptoid assemblies exhibit efficient hydrolysis of 4‐nitrophenyl acetate (4‐NPA) under physiological conditions, with catalytic activity strongly correlated with the spatial organization of imidazole groups and the assembly morphology. Extensive mechanistic studies suggest that the catalysis relies on assembly‐confined proton transfer within the H‐bonding network of peptoid assemblies, thereby promoting general acid‐base catalysis. Additionally, peptoid catalysts enhance CO 2 hydration and precipitation, providing sequence‐defined nanomaterials as a flexible, metal‐free artificial enzyme platform for hydrolytic catalysis and biomimetic mineralization.

Advanced Functional Materials
Pacific Northwest National Laboratory (US), Kennesaw State University (US), University of Washington (US)
U.S. Department of Energy, Battelle, Kennesaw State University, National Institutes of Health, Office of Science, Basic Energy Sciences, Lawrence Berkeley National Laboratory, Pacific Northwest National Laboratory
Openalex Percentile: Top 21%
Supramolecular Self-Assembly in Materials
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