Construction of biomimetic gradient-structured cartilage organoids and mechanistic study of their application for cartilage rejuvenation.

Miao, Xiangwan; Kong, Keyu; Rong, Kewei; Song, Qianqian; Guo, Tingxian; Zhang, Chenyu; Wu, Qiang; Zhai, Zanjing et al. · Bioact Mater · 2026

basic_science · Level V

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Abstract

Articular cartilage damage, an important cause of osteoarthritis (OA), is often caused by a senescent cartilage microenvironment and insufficient repair of chondrocytes. These effects are due to limited availability and a depleted stemness phenotype of chondrocyte stem cells, leading to the failure of cartilage repair and exacerbation of symptoms. In this study, a biomimetic gradient-structured cartilage organoid (BGSC-organoid) culture system was developed using decellularized cartilage extracellular matrix infused with extracellular vesicles from SOX9-overexpressing bone marrow-derived stem cells (SBEVs) to induce the rejuvenation of senescent chondrocytes. Single-cell sequencing revealed that a subpopulation of chondrocytes could be rejuvenated in the BGSC-organoid culture system. Moreover, an ex vivo osteoarthritis-on-a-chip (OAOC) model with cyclic mechanical stimulation was constructed to simulate the mechanical microenvironment of cartilage. BGSC-organoids exhibited sustained release of chondrocyte-protective factors and good mechanical resistance through the Vimentin/14-3-3/FOXO3 pathway. Animal studies showed that BGSC-organoids preserved a hyaline-like cartilage phenotype <i>in vivo</i> and delayed the degeneration of articular cartilage and intervertebral discs. Efficient expansion of human cartilage organoids with enhanced regenerative capabilities represents a promising approach for joint regeneration.