DOI: 10.1021/acsami.6c11681 ISSN: 1944-8244

A Bioarmored Enzyme Cascade for Sustained Catalysis in Harsh Microenvironments

Yahui Wen, Keqiang Lai, Jing Jin, Chenming Ma, Xinghai Wang, Wei Xia, Jingyu Wang, Rong Cao, Chaoran Wang, Lidong Wu, Jiping Chen

Abstract

Enzyme therapeutics operating in harsh physiological microenvironments are inherently constrained by rapid unfolding, proteolytic degradation, and acid-induced deactivation, especially in stomachs. These vulnerabilities severely limit catalytic longevity and practical efficacy, particularly for acetaldehyde detoxification in humans. Achieving durable enzymatic function in such hostile conditions requires a protective strategy that can physically armor enzymes while preserving molecular accessibility to substrates—an unresolved challenge in current biomaterial designs. Here, we introduce a bioarmored enzyme cascade by embedding an alcohol dehydrogenase (ADH) and aldehyde dehydrogenase (ALDH) dual-enzyme system within a villus-structured hydrogel (ADH/ALDH@VH). This collagen-based microscale grid and artificial villus architecture construct a hierarchical protective shell that mechanically stabilizes the enzymes, offers microenvironmental protection, prevents denaturation, and simultaneously preserves efficient mass transport. This bioarmoring strategy reconciles the long-standing conflict between enzyme protection and catalytic efficiency, yielding exceptional mechanical robustness and enhanced enzymatic kinetics (Kcat/Km increased by ∼1.1-fold relative to free enzymes). As a result, ADH/ALDH@VH retains high activity under acidic gastric conditions where free enzymes rapidly inactivate, enabling a 3020% enhancement in acetaldehyde metabolism under harsh environments. This bioarmored cascade establishes a generalizable platform for safeguarding fragile biocatalysts in hostile biological niches, opening opportunities for enzyme therapeutics in environments previously considered inaccessible.

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