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Updated: Apr 6, 2026

Quantitative PCR-based Assay to Measure Sonic Hedgehog Signaling in Cellular Model of Ciliogenesis
Published on: January 31, 2025
Targeting hedgehog signaling reduces self-renewal in embryonal rhabdomyosarcoma
S Satheesha1, G Manzella1, A Bovay1
1Department of Oncology and Children's Research Center, University Children's Hospital, Zurich, Switzerland.
Abstract:
Current treatment regimens for rhabdomyosarcoma (RMS), the most common pediatric soft tissue cancer, rely on conventional chemotherapy, and although they show clinical benefit, there is a significant risk of adverse side effects and secondary tumors later in life. Therefore, identifying and targeting sub-populations with higher tumorigenic potential and self-renewing capacity would offer improved patient management strategies. Hedgehog signaling has been linked to the development of embryonal RMS (ERMS) through mouse genetics and rare human syndromes. However, activating mutations in this pathway in sporadic RMS are rare and therefore the contribution of hedgehog signaling to oncogenesis remains unclear. Here, we show by genetic loss- and gain-of-function experiments and the use of clinically relevant small molecule modulators that hedgehog signaling is important for controlling self-renewal of a subpopulation of RMS cells in vitro and tumor initiation in vivo. In addition, hedgehog activity altered chemoresistance, motility and differentiation status. The core stem cell gene NANOG was determined to be important for ERMS self-renewal, possibly acting downstream of hedgehog signaling. Crucially, evaluating the presence of a subpopulation of tumor-propagating cells in patient biopsies identified by GLI1 and NANOG expression had prognostic significance. Hence, this work identifies novel functional aspects of hedgehog signaling in ERMS, redefines the rationale for its targeting as means to control ERMS self-renewal and underscores the importance of studying functional tumor heterogeneity in pediatric cancers.
Insights
Hedgehog signaling controls self-renewal in embryonal rhabdomyosarcoma (ERMS) cells, impacting tumor growth and chemoresistance. Targeting this pathway and NANOG expression in patient biopsies may improve pediatric cancer treatment.
Area of Science:
- Pediatric Oncology
- Cancer Stem Cells
- Molecular Signaling Pathways
Background:
- Rhabdomyosarcoma (RMS) is the most common pediatric soft tissue cancer.
- Current treatments have significant risks of adverse effects and secondary tumors.
- Identifying and targeting cancer stem cells is crucial for improved patient management.
Purpose of the Study:
- To investigate the role of hedgehog signaling in embryonal RMS (ERMS) oncogenesis.
- To determine if hedgehog signaling influences the self-renewal capacity of ERMS cells.
- To assess the prognostic significance of tumor-propagating cells in patient biopsies.
Main Methods:
- Genetic loss- and gain-of-function experiments in ERMS cells.
- Utilized clinically relevant small molecule modulators of hedgehog signaling.
- Analyzed GLI1 and NANOG expression in patient biopsies.
Main Results:
- Hedgehog signaling is critical for ERMS cell self-renewal and tumor initiation in vivo.
- Hedgehog activity impacts chemoresistance, motility, and differentiation of ERMS cells.
- NANOG, a stem cell gene, is important for ERMS self-renewal, potentially downstream of hedgehog.
- GLI1 and NANOG expression in patient biopsies indicates a prognostic significance.
Conclusions:
- Hedgehog signaling plays a novel functional role in ERMS, controlling cancer stem cell self-renewal.
- Targeting hedgehog signaling offers a strategy to manage ERMS self-renewal and improve treatment outcomes.
- Understanding tumor heterogeneity, particularly the role of tumor-propagating cells, is vital in pediatric cancers.
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