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Published on: December 10, 2021
WNT Signaling and Bone: Lessons From Skeletal Dysplasias and Disorders
Yentl Huybrechts1, Geert Mortier1, Eveline Boudin1
1Center of Medical Genetics, Antwerp University Hospital, University of Antwerp, Antwerp, Belgium.
Abstract:
Skeletal dysplasias are a diverse group of heritable diseases affecting bone and cartilage growth. Throughout the years, the molecular defect underlying many of the diseases has been identified. These identifications led to novel insights in the mechanisms regulating bone and cartilage growth and homeostasis. One of the pathways that is clearly important during skeletal development and bone homeostasis is the Wingless and int-1 (WNT) signaling pathway. So far, three different WNT signaling pathways have been described, which are all activated by binding of the WNT ligands to the Frizzled (FZD) receptors. In this review, we discuss the skeletal disorders that are included in the latest nosology of skeletal disorders and that are caused by genetic defects involving the WNT signaling pathway. The number of skeletal disorders caused by defects in WNT signaling genes and the clinical phenotype associated with these disorders illustrate the importance of the WNT signaling pathway during skeletal development as well as later on in life to maintain bone mass. The knowledge gained through the identification of the genes underlying these monogenic conditions is used for the identification of novel therapeutic targets. For example, the genes underlying disorders with altered bone mass are all involved in the canonical WNT signaling pathway. Consequently, targeting this pathway is one of the major strategies to increase bone mass in patients with osteoporosis. In addition to increasing the insights in the pathways regulating skeletal development and bone homeostasis, knowledge of rare skeletal dysplasias can also be used to predict possible adverse effects of these novel drug targets. Therefore, this review gives an overview of the skeletal and extra-skeletal phenotype of the different skeletal disorders linked to the WNT signaling pathway.
Insights
Genetic defects in the Wingless and int-1 (WNT) signaling pathway cause skeletal dysplasias, impacting bone and cartilage growth. Understanding these disorders aids in developing new osteoporosis treatments.
Area of Science:
- Genetics
- Developmental Biology
- Orthopedics
Background:
- Skeletal dysplasias are heritable disorders affecting bone and cartilage.
- The Wingless and int-1 (WNT) signaling pathway is crucial for skeletal development and bone homeostasis.
- Genetic defects in WNT signaling genes lead to various skeletal disorders.
Purpose of the Study:
- To review skeletal disorders caused by WNT signaling pathway defects.
- To highlight the role of WNT signaling in skeletal development and bone mass maintenance.
- To discuss therapeutic targets for bone mass disorders based on WNT signaling.
Main Methods:
- Review of the latest nosology of skeletal disorders.
- Analysis of genetic defects involving the WNT signaling pathway.
- Correlation of genetic defects with clinical phenotypes.
Main Results:
- Numerous skeletal disorders are linked to WNT signaling pathway gene defects.
- These defects demonstrate WNT signaling's importance in skeletal development and bone maintenance.
- Genes involved in altered bone mass disorders primarily affect the canonical WNT pathway.
Conclusions:
- WNT signaling pathway defects cause significant skeletal dysplasias.
- Targeting the canonical WNT pathway is a key strategy for treating osteoporosis.
- Studying rare skeletal dysplasias can inform predictions of adverse drug effects for novel therapies.
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