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Updated: Jun 22, 2026

3D Hydrogel Scaffolds for Articular Chondrocyte Culture and Cartilage Generation
Published on: October 7, 2015
EXO/hydrogel system for sequential regulation of endogenous hyaline cartilage regeneration
Kang Wu1, Rong Gong2, Tianyu Gao1
1Department of Foot and Ankle Surgery, The Second Qilu Hospital of Shandong University, Shandong University, Jinan, China.
Abstract:
Articular cartilage repair remains a clinically significant challenge due to its limited regenerative capacity and vulnerability to inflammation-induced damage and fibrocartilage formation. Current therapeutic strategies frequently fail to enhance intrinsic repair capacity or overcome the dual barriers of injury/inflammation-driven fibrosis and insufficient hyaline cartilage regeneration, often yielding suboptimal outcomes. Here, we developed an exosome-integrated hydrogel system for temporally programmed drug delivery. Kartogenin (KGN) and halofuginone (HF) were encapsulated into human umbilical cord MSC-derived exosomes (EXOKGN/EXOHF). EXOHF was specifically immobilized in GelMA hydrogel via CP05-CD63 binding, while EXOKGN was incorporated unbound. This design achieved rapid release of EXOKGN versus sustained retention of EXOHF for sequential therapeutic action. The rapidly released EXOKGN initiated bone marrow-derived mesenchymal stem cell (BMSC) migration and chondrogenic differentiation in the repair process. Concurrently, the sustained release of EXOHF demonstrated anti-inflammatory and anti-fibrotic effects during later regenerative phases. This sequential release profile-first promoting BMSC recruitment and chondrogenesis, then suppressing inflammation and fibrocartilage formation-synergistically enhanced hyaline cartilage repair. Importantly, we identified that HF dynamically modulates inflammatory chemokines through the cGAS-STING pathway, maintaining a pro-regenerative microenvironment. In conclusion, our exosomal dual-drug hydrogel with sequential release successfully coordinated chondrogenesis promotion and inflammation/fibrosis suppression, significantly enhancing hyaline cartilage regeneration. Also revealed was HF's cGAS-STING immunomodulatory mechanism, demonstrating strong potential for clinical translation.
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