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Analysis of Lymph Node Volume by Ultra-High-Frequency Ultrasound Imaging in the Braf/Pten Genetically Engineered Mouse Model of Melanoma
Published on: September 8, 2021
PTPN11 Plays Oncogenic Roles and Is a Therapeutic Target for BRAF Wild-Type Melanomas
Kristen S Hill1, Evan R Roberts1, Xue Wang1
1Department of Molecular Oncology, Moffitt Cancer Center, Tampa, Florida.
Abstract:
Melanoma is one of the most highly mutated cancer types. To identify functional drivers of melanoma, we searched for cross-species conserved mutations utilizing a mouse melanoma model driven by loss of PTEN and CDKN2A, and identified mutations in Kras, Erbb3, and Ptpn11. PTPN11 encodes the SHP2 protein tyrosine phosphatase that activates the RAS/RAF/MAPK pathway. Although PTPN11 is an oncogene in leukemia, lung, and breast cancers, its roles in melanoma are not clear. In this study, we found that PTPN11 is frequently activated in human melanoma specimens and cell lines and is required for full RAS/RAF/MAPK signaling activation in BRAF wild-type (either NRAS mutant or wild-type) melanoma cells. PTPN11 played oncogenic roles in melanoma by driving anchorage-independent colony formation and tumor growth. In Pten- and Cdkn2a-null mice, tet-inducible and melanocyte-specific PTPN11E76K expression significantly enhanced melanoma tumorigenesis. Melanoma cells derived from this mouse model showed doxycycline-dependent tumor growth in nude mice. Silencing PTPN11E76K expression by doxycycline withdrawal caused regression of established tumors by induction of apoptosis and senescence, and suppression of proliferation. Moreover, the PTPN11 inhibitor (SHP099) also caused regression of NRAS -mutant melanoma. Using a quantitative tyrosine phosphoproteomics approach, we identified GSK3α/β as one of the key substrates that were differentially tyrosine-phosphorylated in these experiments modulating PTPN11. This study demonstrates that PTPN11 plays oncogenic roles in melanoma and regulates RAS and GSK3β signaling pathways. IMPLICATIONS: This study identifies PTPN11 as an oncogenic driver and a novel and actionable therapeutic target for BRAF wild-type melanoma.
Insights
Protein tyrosine phosphatase PTPN11 drives melanoma growth by activating RAS/RAF/MAPK signaling. Inhibiting PTPN11 or its downstream targets like GSK3β can halt tumor progression and induce tumor regression in BRAF wild-type melanoma.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Genetics
Background:
- Melanoma is a highly mutated cancer with unclear drivers.
- The role of PTPN11 (SHP2), a RAS/RAF/MAPK pathway activator, in melanoma is not well-defined.
- Previous studies identified PTPN11 as an oncogene in other cancers.
Purpose of the Study:
- To investigate the functional role of PTPN11 in melanoma development and progression.
- To identify PTPN11 as a potential therapeutic target in BRAF wild-type melanoma.
- To elucidate the signaling pathways regulated by PTPN11 in melanoma.
Main Methods:
- Utilized a mouse melanoma model with PTEN and CDKN2A loss.
- Investigated PTPN11 activation in human melanoma specimens and cell lines.
- Employed tet-inducible PTPN11 expression in mice and PTPN11 inhibitor (SHP099) treatment.
- Conducted quantitative tyrosine phosphoproteomics to identify downstream substrates.
Main Results:
- PTPN11 is frequently activated in human melanoma and is crucial for RAS/RAF/MAPK signaling in BRAF wild-type melanoma.
- PTPN11 expression enhanced melanoma tumorigenesis in mice, and its inhibition led to tumor regression via apoptosis and senescence.
- PTPN11 inhibition with SHP099 regressed NRAS-mutant melanoma.
- GSK3α/β was identified as a key PTPN11-regulated substrate.
Conclusions:
- PTPN11 acts as an oncogenic driver in melanoma.
- PTPN11 regulates RAS and GSK3β signaling pathways in melanoma.
- PTPN11 is a novel and actionable therapeutic target for BRAF wild-type melanoma.
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