Hedgehog Signaling Pathway
Hedgehog Signaling Pathway
Notch Signaling Pathway
Notch Signaling Pathway
Interactions Between Signaling Pathways
Assembly of Signaling Complexes
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Updated: May 11, 2026

Quantitative PCR-based Assay to Measure Sonic Hedgehog Signaling in Cellular Model of Ciliogenesis
Published on: January 31, 2025
1Department of Surgery, University of Hong Kong, Hong Kong, SAR, China ; Centre for Reproduction, Development and Growth, Li Ka Shing Faculty of Medicine, University of Hong Kong, Hong Kong, SAR, China.
This review explores the role of Hedgehog (Hh) signaling in development and its potential link to VACTERL association, a condition involving multiple congenital anomalies. The authors summarize findings from mouse models with defective Hh signaling, which show anomalies similar to those in human VACTERL cases. These include vertebral defects, anal atresia, and limb abnormalities. The study also discusses recent genetic research on VACTERL and the possible involvement of the Sonic Hedgehog pathway in disease pathogenesis. The review highlights the importance of mouse models in understanding the disorder's etiology and suggests that further research may help clarify the genetic basis of VACTERL.
Area of Science:
Background:
Prior research has shown that Hedgehog (Hh) signaling is essential for embryonic development across multiple organ systems. It was already known that Hh signaling must be tightly regulated in both space and time to ensure proper developmental outcomes. No prior work had resolved how disruptions in this pathway might lead to specific human congenital anomalies. That uncertainty drove investigations into whether Hh signaling defects could explain the phenotypes observed in VACTERL association. This gap motivated researchers to explore mouse models that mimic these developmental defects. These models have revealed a spectrum of anomalies that closely resemble those seen in human patients. This similarity suggests a potential link between Hh signaling and the etiology of VACTERL. Understanding this connection could provide insights into the genetic basis of the disorder.
Purpose Of The Study:
The aim of this review is to synthesize current knowledge about mammalian Hedgehog signaling and its role in developmental patterning. The specific problem addressed is whether Hh signaling dysfunction could explain the phenotypes seen in VACTERL association. The motivation stems from the observed similarity between mouse models of defective Hh signaling and human VACTERL cases. The researchers propose to summarize the current understanding of Hh signaling mechanisms. They also aim to highlight how mouse models have contributed to the study of VACTERL etiology. The review focuses on the relevance of these models to understanding the disorder’s pathogenesis. Recent genetic studies are also discussed to clarify the inheritance patterns of VACTERL. This work may help identify potential genetic contributors to the condition.
Main Methods:
The researchers conducted a literature review to compile findings on mammalian Hedgehog signaling. They analyzed mouse models with defective Hh signaling to identify developmental anomalies. These models were compared to the clinical features of VACTERL association in humans. The study also examined recent genetic investigations into the inheritance of VACTERL. The authors evaluated how mutations in the Sonic Hedgehog pathway may contribute to disease pathogenesis. They synthesized findings from multiple studies to highlight key patterns and similarities. The approach involved comparing phenotypes across species to infer potential genetic mechanisms. The review focuses on summarizing current evidence rather than presenting new data.
Main Results:
The strongest finding is that defective Hh signaling in mice leads to anomalies resembling those in VACTERL association. These include vertebral defects, anal atresia, and limb abnormalities. The study also found that cardiovascular and tracheoesophageal fistulas are common in these models. Renal dysplasia is another consistent feature observed in the mouse models. The researchers reported that these defects align closely with the clinical manifestations of VACTERL. Recent genetic studies suggest a complex inheritance pattern for VACTERL. The Sonic Hedgehog pathway is proposed to play a role in the pathogenesis of the disorder. These findings support the hypothesis that Hh signaling dysfunction may underlie some cases of VACTERL.
Conclusions:
The authors conclude that Hh signaling is crucial for developmental patterning and that its disruption leads to a spectrum of anomalies. These findings suggest a potential link between Hh signaling defects and VACTERL association. The similarity between mouse models and human cases supports the relevance of these models for studying the disorder. The review highlights the importance of further investigating the genetic basis of VACTERL. The authors propose that mouse models can help clarify the pathogenesis of the condition. They emphasize the need for additional studies to confirm the role of the Sonic Hedgehog pathway. The findings may inform future research on the genetic and molecular mechanisms of VACTERL. The review underscores the value of integrating animal models with clinical observations.
The authors suggest that defective Sonic Hedgehog signaling in mice leads to anomalies resembling those in VACTERL association, including vertebral defects and limb abnormalities.
Mouse models with defective Hedgehog signaling exhibit phenotypes similar to VACTERL, suggesting these models can help study the disorder's genetic and developmental basis.
Spatio-temporal regulation ensures proper developmental patterning, and its disruption may lead to anomalies observed in VACTERL association.
Recent studies suggest a complex inheritance pattern for VACTERL, and the Sonic Hedgehog pathway is implicated in its pathogenesis.
Mice with defective Hedgehog signaling show vertebral defects, anal atresia, cardiovascular anomalies, and limb defects, similar to VACTERL cases.
The authors propose that further studies using mouse models may help clarify the genetic mechanisms underlying VACTERL association.