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Published on: July 17, 2020
Blocking SHH/Patched Interaction Triggers Tumor Growth Inhibition through Patched-Induced Apoptosis
Pierre-Antoine Bissey1, Pauline Mathot1, Catherine Guix1
1Apoptosis, Cancer and Development Laboratory-Equipe labellisée 'La Ligue', LabEx DEVweCAN, Institut Convergence PLASCAN, Cancer Research Center of Lyon (CRCL), INSERM U1052-CNRS UMR5286, Université de Lyon, Centre Léon Bérard, Lyon, France.
Abstract:
The Sonic Hedgehog (SHH) pathway plays a key role in cancer. Alterations of SHH canonical signaling, causally linked to tumor progression, have become rational targets for cancer therapy. However, Smoothened (SMO) inhibitors have failed to show clinical benefit in patients with cancers displaying SHH autocrine/paracrine expression. We reported earlier that the SHH receptor Patched (PTCH) is a dependence receptor that triggers apoptosis in the absence of SHH through a pathway that differs from the canonical one, thus generating a state of dependence on SHH for survival. Here, we propose a dual function for SHH: its binding to PTCH not only activates the SHH canonical pathway but also blocks PTCH-induced apoptosis. Eighty percent, 64%, and 8% of human colon, pancreatic, and lung cancer cells, respectively, overexpressed SHH at transcriptional and protein levels. In addition, SHH-overexpressing cells expressed all the effectors of the PTCH-induced apoptotic pathway. Although the canonical pathway remained unchanged, autocrine SHH interference in colon, pancreatic, and lung cell lines triggered cell death through PTCH proapoptotic signaling. In vivo, SHH interference in colon cancer cell lines decreased primary tumor growth and metastasis. Therefore, the antitumor effect associated to SHH deprivation, usually thought to be a consequence of the inactivation of the canonical SHH pathway, is, at least in part, because of the engagement of PTCH proapoptotic activity. Together, these data strongly suggest that therapeutic strategies based on the disruption of SHH/PTCH interaction in SHH-overexpressing cancers should be explored. SIGNIFICANCE: Sonic Hedgehog-overexpressing tumors express PTCH-induced cell death effectors, suggesting that this death signaling could be activated as an antitumor strategy.
Insights
Sonic Hedgehog (SHH) pathway alterations drive cancer. Disrupting SHH/Patched (PTCH) interaction triggers apoptosis in SHH-overexpressing tumors, offering a new cancer therapy strategy.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Signaling Pathways
Background:
- The Sonic Hedgehog (SHH) pathway is crucial in cancer development and progression.
- SHH pathway alterations are targeted in cancer therapy, but Smoothened inhibitors show limited clinical benefit.
- Patched (PTCH), an SHH receptor, acts as a dependence receptor, inducing apoptosis in SHH's absence.
Purpose of the Study:
- To investigate the dual role of SHH in activating canonical signaling and inhibiting PTCH-induced apoptosis.
- To explore the therapeutic potential of disrupting SHH/PTCH interaction in SHH-overexpressing cancers.
Main Methods:
- Quantification of SHH expression in human colon, pancreatic, and lung cancer cells.
- Assessment of PTCH-induced apoptotic pathway effectors in SHH-overexpressing cells.
- Interference with autocrine SHH signaling in cancer cell lines and *in vivo* models.
- Evaluation of tumor growth and metastasis following SHH interference in colon cancer models.
Main Results:
- Eighty percent of colon, 64% of pancreatic, and 8% of lung cancer cells overexpressed SHH.
- SHH-overexpressing cells possessed all necessary effectors for PTCH-induced apoptosis.
- Autocrine SHH interference induced cell death via PTCH proapoptotic signaling, independent of canonical pathway changes.
- *In vivo* SHH interference reduced primary tumor growth and metastasis in colon cancer.
Conclusions:
- SHH has a dual role: activating canonical signaling and blocking PTCH-mediated apoptosis.
- SHH deprivation in overexpressing tumors engages PTCH proapoptotic activity, contributing to antitumor effects.
- Disrupting SHH/PTCH interaction presents a promising therapeutic strategy for SHH-overexpressing cancers.
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