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Updated: Apr 15, 2026

In Vivo Functional Study of Disease-associated Rare Human Variants Using Drosophila
Published on: August 20, 2019
Mutations in DVL1 cause an osteosclerotic form of Robinow syndrome
Kieran J Bunn1, Phil Daniel1, Heleen S Rösken1
1Department of Women's and Children's Health, Dunedin School of Medicine, University of Otago, Dunedin 9054, New Zealand.
Abstract:
Robinow syndrome (RS) is a phenotypically and genetically heterogeneous condition that can be caused by mutations in genes encoding components of the non-canonical Wnt signaling pathway. In contrast, germline mutations that act to increase canonical Wnt signaling lead to distinctive osteosclerotic phenotypes. Here, we identified de novo frameshift mutations in DVL1, a mediator of both canonical and non-canonical Wnt signaling, as the cause of RS-OS, an RS subtype involving osteosclerosis, in three unrelated individuals. The mutations all delete the DVL1 C terminus and replace it, in each instance, with a novel, highly basic sequence. We showed the presence of mutant transcript in fibroblasts from one individual with RS-OS and demonstrated unimpaired protein stability with transfected GFP-tagged constructs bearing a frameshift mutation. In vitro TOPFlash assays, in apparent contradiction to the osteosclerotic phenotype, revealed that the mutant allele was less active than the wild-type allele in the canonical Wnt signaling pathway. However, when the mutant and wild-type alleles were co-expressed, canonical Wnt activity was 2-fold higher than that in the wild-type construct alone. This work establishes that DVL1 mutations cause a specific RS subtype, RS-OS, and that the osteosclerosis associated with this subtype might be the result of an interaction between the wild-type and mutant alleles and thus lead to elevated canonical Wnt signaling.
Insights
New mutations in DVL1 cause Robinow syndrome with osteosclerosis (RS-OS). This subtype may result from interactions between wild-type and mutant DVL1 alleles, enhancing Wnt signaling and causing bone overgrowth.
Area of Science:
- Genetics
- Developmental Biology
- Molecular Biology
Background:
- Robinow syndrome (RS) is a genetic disorder with varied causes, often linked to Wnt signaling pathways.
- Mutations affecting Wnt signaling can lead to distinct bone phenotypes, including osteosclerosis.
Purpose of the Study:
- To identify the genetic cause of a Robinow syndrome subtype characterized by osteosclerosis (RS-OS).
- To investigate the functional impact of identified mutations on Wnt signaling and the resulting phenotype.
Main Methods:
- Genetic analysis to identify mutations in affected individuals.
- In vitro studies using fibroblast cultures and transfected cell lines with GFP-tagged DVL1 constructs.
- TOPFlash assays to assess canonical Wnt signaling activity.
Main Results:
- De novo frameshift mutations in DVL1 were identified in three unrelated RS-OS patients.
- Mutations led to the deletion of the DVL1 C terminus and replacement with a novel sequence.
- Co-expression of mutant and wild-type DVL1 resulted in a two-fold increase in canonical Wnt signaling activity.
Conclusions:
- DVL1 mutations are the cause of the RS-OS subtype.
- The osteosclerosis in RS-OS may arise from an interaction between mutant and wild-type DVL1 alleles, leading to increased canonical Wnt signaling.
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