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.

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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