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Updated: Jun 12, 2026

Modeling Paracrine Noncanonical Wnt Signaling In Vitro
Published on: December 10, 2021
WNT5A regulates chondrocyte differentiation through differential use of the CaN/NFAT and IKK/NF-kappaB pathways
Elizabeth W Bradley1, M Hicham Drissi
1Department of Orthopeadic Surgery, University of Connecticut Health Center, Farmington, Connecticut 06062, USA.
Abstract:
Although genetic evidence demonstrated a requirement for Wnt5a during cartilage development, little is known about the mechanisms underlying Wnt5a-regulated chondrocyte growth and differentiation. We therefore investigated the signaling pathways by which Wnt5a influences chondrogenesis and differentiation to hypertrophy. Wnt5a treatment of chondroprogenitor cells increased chondrocyte hypertrophy and was associated with an increase in nuclear factor of activated T cells (NFAT) and a decrease in nuclear factor-kappaB (NF-kappaB) activation. In contrast, Wnt5a inhibited chondrocyte hypertrophy. This inhibition of hypertrophy occurred with the reciprocal signaling activation, in that a decrease in NFAT and an increase in NF-kappaB activation was observed. Furthermore, the increase in chondroprogenitor cell differentiation with Wnt5a treatment was blocked by calmodulin kinase or NFAT loss of function. In addition, the repression of chondrocyte hypertrophy observed was abrogated by NF-kappaB loss of function. Activation of the NFAT pathway downstream of Wnt5a also negatively regulated NF-kappaB activity, providing evidence of antagonism between these two pathways. Mechanistically, Wnt5a acts to increase chondrocyte differentiation at an early stage through calmodulin kinase /NFAT-dependent induction of Sox9. Conversely, Wnt5a represses chondrocyte hypertrophy via NF-kappaB-dependent inhibition of Runx2 expression. These data indicate that Wnt5a regulates chondrogenesis and chondrocyte hypertrophy in a stage-dependent manner through differential utilization of NFAT- and NF-kappaB-dependent signal transduction.
Insights
Wnt5a signaling differentially regulates chondrocyte differentiation and hypertrophy. It promotes early differentiation via NFAT and inhibits hypertrophy via NF-kappaB, revealing stage-dependent control in cartilage development.
Area of Science:
- Cell Biology
- Developmental Biology
- Molecular Biology
Background:
- Wnt5a's role in cartilage development is established, but its precise molecular mechanisms governing chondrocyte growth and differentiation remain unclear.
- Understanding these pathways is crucial for addressing cartilage development disorders.
Purpose of the Study:
- To elucidate the signaling mechanisms by which Wnt5a influences chondrogenesis and differentiation into hypertrophic chondrocytes.
- To investigate the stage-dependent roles of Wnt5a in regulating chondrocyte fate.
Main Methods:
- Treatment of chondroprogenitor cells with Wnt5a.
- Analysis of nuclear factor of activated T cells (NFAT) and nuclear factor-kappaB (NF-kappaB) activation.
- Assessment of chondrocyte hypertrophy and differentiation.
- Utilizing loss-of-function studies for calmodulin kinase, NFAT, and NF-kappaB.
Main Results:
- Wnt5a treatment differentially affected chondrocyte hypertrophy: it increased hypertrophy with NFAT activation and decreased it with NF-kappaB activation.
- Wnt5a-induced chondroprogenitor differentiation was dependent on calmodulin kinase/NFAT, while repression of hypertrophy involved NF-kappaB.
- Evidence of antagonism between NFAT and NF-kappaB pathways was observed, with NFAT negatively regulating NF-kappaB activity.
Conclusions:
- Wnt5a regulates chondrogenesis and chondrocyte hypertrophy in a stage-dependent manner.
- Early chondrocyte differentiation is promoted by Wnt5a through calmodulin kinase/NFAT-dependent Sox9 induction.
- Chondrocyte hypertrophy is repressed by Wnt5a via NF-kappaB-dependent inhibition of Runx2 expression.
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