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◆ Biomaterials2026-08-31

A temporally coordinated MXene@PDA hydrogel sequentially orchestrates hemostasis, inflammation resolution, and angiogenesis for wound repair.

Chao Liu, Lu Tan, Yu Zhai, Yan Zheng, Yanqiu Wang, Chenhao Liu, Yuyao Zhang, Linhai Cao, Chao Zhang, Changqing Li

原始摘要(英文原文)· Original abstract
Uncontrolled hemorrhage and oxidative stress-driven inflammation following acute trauma remain major clinical challenges. Here, we report an ultrafast self-gelling biomimetic hydrogel (PSMP) that integrates an MXene@polydopamine (MXene@PDA) heterojunction nanozyme into a dynamic polyvinyl alcohol/silk fibroin matrix. PSMP provides rapid wet-tissue adhesion and mechanical sealing, thereby enabling efficient hemostasis in complex bleeding environments. The dynamic polymer network, together with catechol-mediated interfacial interactions and the hemostasis-promoting effect of MXene@PDA, allows PSMP to rapidly fill bleeding cavities, firmly adhere to wet tissues, and accelerate clot formation. During the transition to tissue repair, reactive oxygen species (ROS)-responsive matrix degradation triggers the release of MXene@PDA nanozymes. These nanozymes scavenge mitochondrial ROS, preserve mitochondrial homeostasis, and are associated with reduced activation of cGAS-STING-NF-κB-related inflammatory signaling. In parallel, PSMP promotes pro-angiogenic responses consistent with activation-associated changes in the Angiopoietin-Tie2 signaling pathway. Evaluations in rodent, rabbit, and porcine models of lethal hemorrhage and full-thickness wounds support an association between PSMP treatment and the temporal coordination of early hemostasis, subsequent inflammation attenuation, and angiogenic responses. This temporally coordinated system offers a promising strategy for advanced wound management.
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A temporally coordinated MXene@PDA hydrogel sequentially orchestrates hemostasis, inflammation resolution, and angiogenesis for wound repair. — 科研速览 Science Skim