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Updated: Jan 25, 2026

Skeletal Phenotype Analysis of a Conditional Stat3 Deletion Mouse Model
Published on: July 3, 2020
Robinow syndrome skeletal phenotypes caused by the WNT5AC83S variant are due to dominant interference with
Sarah J Gignac1, Sara Hosseini-Farahabadi1, Takashi Akazawa1
1Life Sciences Institute and Faculty of Dentistry, University of British Columbia, Vancouver, Canada.
Abstract:
Heterozygous missense mutations in several genes in the WNT5A signaling pathway cause autosomal dominant Robinow syndrome 1 (DRS1). Our objective was to clarify the functional impact of a missense mutation in WNT5A on the skeleton, one of the main affected tissues in RS. We delivered avian replication competent retroviruses (RCAS) containing human wild-type WNT5A (wtWNT5A), WNT5AC83S variant or GFP/AlkPO4 control genes to the chicken embryo limb. Strikingly, WNT5AC83S consistently caused a delay in ossification and bones were more than 50% shorter and 200% wider than controls. In contrast, bone dimensions in wtWNT5A limbs were slightly affected (20% shorter, 25% wider) but ossification occurred on schedule. The dysmorphology of bones was established during cartilage differentiation. Instead of stereotypical stacking of chondrocytes, the WNT5AC83S-infected cartilage was composed of randomly oriented chondrocytes and that had diffuse, rather than concentrated Prickle staining, both signs of disrupted planar cell polarity (PCP) mechanisms. Biochemical assays revealed that C83S variant was able to activate the Jun N-terminal kinase-PCP pathway similar to wtWNT5A; however, the activity of the variant ligand was influenced by receptor availability. Unexpectedly, the C83S change caused a reduction in the amount of protein being synthesized and secreted, compared to wtWNT5A. Thus, in the chicken and human, RS phenotypes are produced from the C83S mutation, even though the variant protein is less abundant than wtWNT5A. We conclude the variant protein has dominant-negative effects on chondrogenesis leading to limb abnormalities.
Insights
A WNT5A C83S mutation causes severe skeletal defects in Robinow syndrome (DRS1) by disrupting cartilage development. This variant protein has dominant-negative effects, leading to abnormal bone formation and limb abnormalities.
Area of Science:
- Skeletal Biology
- Developmental Biology
- Genetics
Background:
- Autosomal dominant Robinow syndrome 1 (DRS1) is linked to mutations in WNT5A pathway genes.
- The WNT5A pathway is crucial for skeletal development.
- Understanding specific mutations' functional impact is key to explaining disease phenotypes.
Purpose of the Study:
- To investigate the functional consequences of a WNT5A missense mutation (C83S) on skeletal development.
- To elucidate the molecular mechanisms underlying the skeletal abnormalities in Robinow syndrome.
Main Methods:
- Utilized avian replication competent retroviruses (RCAS) to deliver wild-type WNT5A (wtWNT5A) or WNT5AC83S variant to chicken embryo limbs.
- Analyzed bone morphology, ossification timing, and cartilage differentiation.
- Performed biochemical assays to assess pathway activation and protein secretion.
Main Results:
- WNT5AC83S caused significant delays in ossification and drastically reduced bone size (over 50% shorter, 200% wider).
- Cartilage abnormalities included randomly oriented chondrocytes and disrupted Prickle staining, indicating impaired planar cell polarity (PCP).
- The C83S variant showed reduced protein synthesis and secretion but retained JNK-PCP pathway activation, suggesting dominant-negative activity.
Conclusions:
- The WNT5AC83S mutation leads to severe skeletal dysmorphies characteristic of Robinow syndrome.
- The variant protein exerts dominant-negative effects on chondrogenesis, disrupting PCP mechanisms.
- Reduced protein abundance does not preclude a potent pathogenic role in limb development.
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