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Updated: May 4, 2026

Development of Amelogenin-chitosan Hydrogel for In Vitro Enamel Regrowth with a Dense Interface
Published on: July 10, 2014
Interfacial Bioengineering of Dynamic Networks Hybrid Hydrogel for Programmed Intervention in Oral Precancerous
Xiaoxian Zhao1, Ao Zheng2, Zhengyan Zhao1
1Department of Oral Medicine, College of Stomatology, National Center for Stomatology, National Clinical Research Center for Oral Diseases, Shanghai Key Laboratory of Stomatology & Shanghai Research Institute of Stomatology, Shanghai Ninth People's Hospital, Shanghai Jiao Tong University School of Medicine, Shanghai Jiao Tong University, Shanghai, China.
Abstract:
A major challenge in precision medicine is the development of advanced biomaterials for targeted intervention in precancerous states. Here, we introduce an interfacial bioengineering strategy to construct a dynamic network for programmed intervention in epithelial precancerous lesions. Our dual-bioinspired hydrogel, MSA@PGel (macrophage membrane-coated and salvianolic acid B [SAB] /5-aminolevulinic acid co-loaded liposomes embedded in a polydopamine-based gel), leverages both the powerful wet adhesion of mussels and the immune-targeting capabilities of macrophages. The material's core innovation lies in its dynamic catecholato-Fe3+ coordination bonds, which form a robust network with a storage modulus (G') exceeding 8.8 kPa higher than that of the base hydrogel (G' > 2.2 kPa), thereby demonstrating superior mechanical properties and exceptional mucosal adhesion. This system achieves unprecedented lesion-specific delivery by functionalizing the network with macrophage membranes to exploit VCAM-1 overexpression in dysplastic epithelium, thereby overcoming the "mucosal delivery barrier" and ensuring prolonged retention (>3 h). The programmed intervention specifically targets HIF-1α, a metabolic regulator of malignant transformation. Through SAB-mediated HIF-1α sequestration, our dynamic network not only effectively disrupts hypoxia adaptation to enhance phototherapy but also triggers a significant apoptotic cascade. In vivo studies confirm significant histological normalization, a significant increase in ROS generation, and excellent biosafety. This work establishes a versatile interfacial bioengineering platform, pioneering a new paradigm for the programmed management of epithelial precancerous states through the synergistic integration of biomaterial design and disease-specific targeting.
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