PEER-REVIEWED PUBLICATION

2022

Engineered Human Meniscus in Modeling Sex Differences of Knee Osteoarthritis in Vitro

Ma Z, Li DX, et al.

Frontiers in Bioengineering and Biotechnology

University of Alberta

RESEARCH SUMMARY
This study developed a human tissue-engineered meniscus model to examine how mechanical loading versus unloading regulates osteoarthritis (OA)-related responses and whether these responses differ by biological sex. Meniscus fibrochondrocytes from non-OA female and male donors were seeded into porous type I collagen scaffolds and precultured for 2 weeks in chondrogenic medium, then exposed for 3 additional weeks to either cyclic hydrostatic pressure (CHP), simulated microgravity (SMG), or static controls. CHP promoted a more chondrogenic phenotype, increasing cartilage matrix markers (ACAN,COL2A1) and GAG/DNA and supporting higher construct wet weight, while generally reducing hypertrophic tendencies compared with SMG. In contrast, SMG induced more OA-like features, including lower GAG/DNA and stronger hypertrophy-associated signals (e.g., increased collagen X staining trends). RNA-seq showed that CHP and SMG modulated largely distinct gene sets and enriched OA-relevant pathways (e.g., mineral absorption,Wnt,HIF-1,IL-17), with notable sex-dependent differences in fold-change magnitude and direction for multiple mechanosensitive and pathway genes (including strong female-biased induction of FOSB under CHP). Overall, the combined CHP and SMG paradigm provides a mechanically tunable in vitro platform for probing early molecular events in knee OA and sex-dependent mechanobiology in meniscus tissue.

CELLSCALE INSTRUMENT USED

MechanoCulture TR

Cyclic hydrostatic pressure loading was applied using a CellScale MechanoCulture TR (MCTR) hydrostatic pressure bioreactor. After 2 weeks of static preculture, engineered meniscus constructs in collagen scaffolds were placed into the MCTR system and loaded daily for 1 hour/day for 3 weeks at 0.9 MPa cyclic hydrostatic pressure and 1 Hz. When not undergoing the daily loading session, constructs were maintained under standard static culture. This CellScale-enabled pressurization regimen was the core mechanical loading condition used to compare against simulated microgravity unloading and static controls, and to quantify loading-driven changes in cartilage matrix deposition (GAG/type II collagen), hypertrophy-associated markers (type X collagen,COL10A1), donor sex-dependent transcriptomic responses (RNA-seq), and OA-related pathway modulation.
AUTHORS

Zhiyao Ma, David Xinzheyang Li, Melanie Kunze, Aillette Mulet-Sierra, Lindsey Westover, Adetola B. Adesida.

PUBLICATION DETAILS
JOURNAL

Frontiers in Bioengineering and Biotechnology

YEAR

2022

INSTITUTIONS

University of Alberta

COUNTRIES

Canada

INSTRUMENT USED

MechanoCulture TR

TESTING METHODS

Hydrated and Temperature Controlled TestingHydrostatic Pressure Testing

RESEARCH APPLICATIONS

Cartilage and Meniscus MechanicsMechanotransductionMusculoskeletal Tissue Engineering & MechanicsScaffold Mechanical Testing

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