PEER-REVIEWED PUBLICATION

2026

Oxygen Consumption Rate-Defined Phases Couple Metabolism to Matrix Dynamics in Chondrocyte-Mesenchymal Stromal Cell Co-Culture

A tensile test divider icon

Ma Z, McEachern L, et al.

The FASEB Journal

University of Alberta, The First Affiliated Hospital of Shantou University Medical College, Shantou University

RESEARCH SUMMARY
This study investigated how the ratio of human nasal chondrocytes to bone marrow-derived mesenchymal stromal cells regulates metabolism, extracellular matrix formation, and mechanical properties during engineered cartilage development. Nasal chondrocyte monocultures, MSC monocultures, and five NC:MSC co-culture ratios ranging from 3:1 to 1:3 were cultured as three-dimensional pellets for 27 days while oxygen consumption rate was measured continuously every 15 minutes. The authors identified three reproducible metabolic phases: early condensation and priming, differentiation and matrix synthesis, and late maturation and remodeling. NC-rich pellets showed earlier HIF-1ฮฑ and SOX9 activity, stronger COL2A1 and ACAN induction, and greater hyaline-like cartilage matrix formation, with the 3:1 NC:MSC condition showing the strongest glycosaminoglycan synergy. In contrast, MSC-rich pellets maintained greater late-stage oxidative activity, showed increased PGC-1ฮฑ, COL10A1, and MMP13 expression, and exhibited more pronounced hypertrophic and remodeling signatures. Mechanical testing revealed a different composition dependence from total GAG production: the MSC-rich 1:3 NC:MSC group achieved the highest equilibrium and peak moduli despite having lower GAG/DNA than NC-rich groups. The 1:3 condition reached an equilibrium modulus of 147.5 kPa and a peak modulus of 699.2 kPa. Overall, the study demonstrates that oxygen-consumption trajectories can serve as a non-destructive process indicator linking cellular metabolism with cartilage matrix development, mechanical maturation, and hypertrophic risk, while showing that NC:MSC ratio can be tuned to prioritize either hyaline cartilage quality or mechanical stiffness.
CellScale hexagons, without text

CELLSCALE INSTRUMENT USED

MicroTester

A CellScale MicroTester G2 was used to mechanically characterize engineered nasal chondrocyte, mesenchymal stromal cell, and NC:MSC co-culture pellets after 27 days of chondrogenic culture. Three pellets from each group and donor pair were subjected to stepwise unconfined compression with stress relaxation. Force was recorded over time and normalized by pellet cross-sectional area to calculate stress. Peak modulus and equilibrium modulus were determined from the slopes of the peak and equilibrium stress-strain relationships using linear regression of the best-fit regions. The MicroTester measurements showed a strong dependence of mechanical properties on cell composition. Increasing the MSC fraction generally increased pellet stiffness, with the 1:3 NC:MSC group producing the highest equilibrium modulus of approximately 147.5 kPa and the highest peak modulus of approximately 699.2 kPa. NC-rich ratios above 1:1 generally exhibited lower moduli despite producing more hyaline-like matrix and greater GAG accumulation. These CellScale measurements were central to demonstrating that engineered cartilage stiffness was not determined simply by total GAG content, but instead reflected matrix composition, collagen organization, crosslinking, and remodeling associated with different NC:MSC ratios.
AUTHORS

Zhiyao Ma, Liam McEachern, Xiaoyi Lan, David Xinzheyang Li, Aahil A. Ansari, Ivan Au, Madeline Barker, Melanie Kunze, Aillette Mulet-Sierra, Adetola B. Adesida.

PUBLICATION DETAILS
JOURNAL

The FASEB Journal

YEAR

2026

INSTITUTIONS

University of Alberta, The First Affiliated Hospital of Shantou University Medical College, Shantou University

COUNTRIES

Canada, China

INSTRUMENT USED

MicroTester

TESTING METHODS

Compression TestingMicro-Mechanical TestingStress Relaxation TestingViscoelastic & Time-Dependent Testing

RESEARCH APPLICATIONS

Cartilage and Meniscus MechanicsMicrotissue and Spheroid MechanicsStem Cell Mechanobiology

Related Publications:

Instrument Used:
Year:
Testing Method:
Research Application:
Country:

Contact Sales

Product of Interest:
CellScale hexagon shapes