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Engineering a Bilayered Hydrogel to Control ASC Differentiation
Published on: May 25, 2012
A recombinant collagen-based nanocomposite hydrogel for programmable full-cycle intelligent management of infected
Yufeng Li1, Jia Wang1, Yarong Ding2
1Engineering Research Center of Western Resource Innovation Medicine Green Manufacturing, Ministry of Education, School of Chemical Engineering, Northwest University, Xi'an, 710069, China; Shaanxi Key Laboratory of Degradable Biomedical Materials and Shaanxi R&D Center of Biomaterials and Fermentation Engineering, School of Chemical Engineering, Northwest University, Xi'an, 710069, China; Biotech. & Biomed. Research Institute, Northwest University, Xi'an, 710069, China.
Abstract:
Infected wound healing is a highly dynamic, multistage process, yet most wound dressings remain functionally static and incapable of adapting to its evolving microenvironment. Here, we develop a nanocomposite hydrogel that enables programmable, full-cycle intelligent management of infected wounds. Methacrylic anhydride-grafted recombinant collagen CF-1552 functions as a macromolecular crosslinker, overcoming the cytotoxicity and uncontrollable crosslinking associated with conventional small-molecule crosslinkers. The crosslinker copolymerizes with acrylamide monomers to form a protein-polymer hydrogel network with multiple bioactivities and tunable mechanical properties, which encapsulates electro-responsive nanoparticles self-assembled from curcumin on polydopamine-templated polypyrrole nanowires. The hydrogel employs a closed-loop therapeutic paradigm governed by a "dual sensing-precision feedback-sequential release" mechanism. Specifically, (i) Rapid hemostasis and wound closure are achieved in acute trauma phase. (ii) During the transition toward a chronic, infection-prone state, bacterial proliferation induces local alkalization, triggering endogenous-responsive curcumin release, with pH-mediated visual monitoring providing feedback for early therapeutic adjustment. (iii) In inflammatory phase, conductive nanowires endow the hydrogel with a temperature coefficient of resistance (TCR = -1.49%°C-1), enabling real-time inflammatory monitoring and feedback-regulated exogenous drug release. (iv) During proliferation and remodeling phase, the collagen network synergizes with the electro-responsive controlled-release system to promote cell migration and angiogenesis. This nanotechnology platform is capable of achieving integrated management of the entire process of wound healing due to infection.