The spatial heterogeneity of pathological factors in diabetic chronic wounds (DCWs) limits the development of effective treatment strategies. Here, a hydrogel-based wound dressing integrated with a dissolving microneedle array (H@MN) that orchestrates a novel spatiotemporal cascade reaction strategy is presented. Compared to the classical temporal cascade reaction, the spatiotemporal cascade reaction is characterized by spatially compartmentalized catalysts, which rely on the cross-regional diffusion of initial reaction products to the subsequent catalyst site to drive the sequential catalytic processes. Targeting the pathological features of DCWs, the glucose oxidase (GOX)-, superoxide dismutase (SOD)-, and catalase (CAT)-catalytic reactions are selected, which are catalyzed by natural enzymes or nanozymes. By integrating these catalysts into a spatiotemporal cascade reaction within the H@MN, it can intervene in and dynamically modulate the pathological factors in different spatial domains of DCWs at various temporal stages. Both in vitro and in vivo experiments confirm that the H@MN-enabled spatiotemporal cascade reaction, when combined with photothermal therapy, achieves superior healing efficacy in DCWs. The H@MN-enabled spatiotemporal cascade reaction is believed to inspire a generalizable strategy for treating diverse diseases characterized by spatially varied pathological microenvironments, offering a promising paradigm for advanced therapeutics.
Zhang et al. (2026) studied this question.