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March 3, 2026Advanced Science0 citationsOpen Access

Cascade‐Responsive MXene@Cu‐MOF Heterostructure Integrates Antioxidant Activity, Infection Control, and Vascularization for Tracheal Repair

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LGLiang GuoYSYingran ShenJYJiaoyu Yi

Key Points

  • Improved airway patency and graft survival were observed with the MXene@Cu-MOF/GelMA tracheal constructs, indicating a significant enhancement in healing.
  • The constructs showed elevated levels of endothelial proliferation and enhanced vascularization, alongside reduced infection and mucus impaction.
  • Assessment using RNA-seq revealed suppression of inflammatory pathways and promotion of antibacterial and chondrogenic responses, showcasing the biological efficacy of the platform.
  • The innovative design incorporates cascade-responsive functionality to deliver therapeutic doses and facilitate critical repair stages in tracheal injuries.

Abstract

Extensive tracheal repair is limited by oxidative injury, infection, and insufficient vascularization with delayed cartilage maturation. We developed cascade-responsive MXene@Cu-MOF heterostructures within gelatin methacryloyl (GelMA) hydrogels to enable staged tracheal repair. Copper-based metal-organic framework (Cu-MOF) nanocrystals grown in situ on ultrathin Ti3C2Tx MXene form an integrated 2D/3D heterointerface, preventing restacking and ensuring uniform "backpack" distribution on a photothermal skeleton. The platform acts in three stages: 1) MXene scavenges radicals, reducing oxidative stress and stabilizing the early environment; 2) Mild acidification triggers pH-responsive Cu2+ release, while near-infrared light accelerates MOF decomposition to deliver on-demand Cu2+ bursts, enhancing antibacterial efficacy through photothermal heating; 3) Sustained low-dose Cu2+ promotes endothelial proliferation, migration, and tube formation with VEGF, eNOS, HIF-1α, and FGF2 upregulation, supporting vascular ingrowth. Ring-to-tube-fabricated MXene@Cu-MOF/GelMA tracheal constructs show robust proteoglycans, type II collagen, and biomechanical stiffness. In a rabbit extensive tracheal defect model, MXene@Cu-MOF/GelMA tracheal grafts improve airway patency and survival, reduce infection and mucus impaction, and enhance epithelial, vascular, and cartilage regeneration. Bulk RNA-seq confirms suppression of inflammatory pathways and enrichment of antibacterial, angiogenic, and chondrogenic programs. This cascade platform couples photothermal conversion with on-demand ionic dosing to integrate antioxidant activity, infection control, and vascularization for clinically translatable tracheal repair.

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Cite This Study

Guo et al. (2026) studied this question.

synapsesocial.com/papers/69a75b55c6e9836116a227e0https://doi.org/10.1002/advs.202521174
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