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Decorin-mediated Extracellular Matrix Stabilization Maintains Cartilage Integrity During Aging

Fan, M.; Li, T.; Mohan, A.; Han, B.; Newton, M.; Kwok, B.; Liu, Y.; Kim, S. Y.; Wang, C.; Xiang, J.; Qin, L.; Iozzo, R. V.; Birk, D. E.; Lu, X. L.; Loebel, C.; Maerz, T.; Mauck, R. L.; Han, L.

2026-08-01 biophysics
10.64898/2026.07.28.741218 bioRxiv
Show abstract

Aging is a primary risk factor for osteoarthritis (OA), yet the mechanisms that preserve extracellular matrix integrity in long-lived connective tissues remain poorly defined. The function of articular cartilage depends on maintaining extracellular matrix integrity over a lifetime of mechanical use. Here we identify failure of matrix stabilization as an initiating mechanism of age-associated OA. Cartilage-specific deletion of decorin in mature mice disrupted the superficial collagen II fibrillar network, reduced aggrecan retention, and impaired poroelastic fluid pressurization by 9 months of age, preceding substantial transcriptional changes in resident chondrocytes. With advancing age, these matrix defects culminated in cartilage erosion, fibrotic remodeling, and spontaneous OA by 18 months. Mechanistically, decorin attenuated force-induced collagen II fibril realignment and reinforced the superficial fibrillar network, preserving matrix architecture under sustained physiological loading. These findings establish decorin-mediated extracellular matrix stabilization as a critical determinant of cartilage longevity and support a matrix-first model of age-associated degeneration.

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