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Defining Gene Functions in Tumorigenesis by Ex vivo Ablation of Floxed Alleles in Malignant Peripheral Nerve Sheath Tumor Cells
Published on: August 25, 2021
ErbB4 promotes malignant peripheral nerve sheath tumor pathogenesis via Ras-independent mechanisms
Jody Fromm Longo1, Stephanie N Brosius2,3, Laurel Black1
1Department of Pathology and Laboratory Medicine (JFL, LB, RCW, SJW, SLC), Medical University of South Carolina, 171 Ashley Avenue, MSC 908, Charleston, SC, 29425-9080, USA.
Background:
We have found that erbB receptor tyrosine kinases drive Ras hyperactivation and growth in NF1-null malignant peripheral nerve sheath tumors (MPNSTs). However, MPNSTs variably express multiple erbB receptors with distinct functional characteristics and it is not clear which of these receptors drive MPNST pathogenesis. Here, we test the hypothesis that altered erbB4 expression promotes MPNST pathogenesis by uniquely activating key cytoplasmic signaling cascades.
Methods:
ErbB4 expression was assessed using immunohistochemistry, immunocytochemistry, immunoblotting and real-time PCR. To define erbB4 functions, we generated mice that develop MPNSTs with floxed Erbb4 alleles (P0-GGFβ3;Trp53+/-;Erbb4flox/flox mice) and ablated Erbb4 in these tumors. MPNST cell proliferation and survival was assessed using 3H-thymidine incorporation, MTT assays, Real-Time Glo and cell count assays. Control and Erbb4-null MPNST cells were orthotopically xenografted in immunodeficient mice and the growth, proliferation (Ki67 labeling), apoptosis (TUNEL labeling) and angiogenesis of these grafts was analyzed. Antibody arrays querying cytoplasmic kinases were used to identify erbB4-responsive kinases. Pharmacologic or genetic inhibition was used to identify erbB4-responsive kinases that drive proliferation.
Results:
Aberrant erbB4 expression was evident in 25/30 surgically resected human MPNSTs and in MPNSTs from genetically engineered mouse models (P0-GGFβ3 and P0-GGFβ3;Trp53+/- mice); multiple erbB4 splice variants that differ in their ability to activate PI3 kinase and nuclear signaling were present in MPNST-derived cell lines. Erbb4-null MPNST cells demonstrated decreased proliferation and survival and altered morphology relative to non-ablated controls. Orthotopic allografts of Erbb4-null cells were significantly smaller than controls, with reduced proliferation, survival and vascularization. ERBB4 knockdown in human MPNST cells similarly inhibited DNA synthesis and viability. Although we have previously shown that broad-spectrum erbB inhibitors inhibit Ras activation, Erbb4 ablation did not affect Ras activation, suggesting that erbB4 drives neoplasia via non-Ras dependent pathways. An analysis of 43 candidate kinases identified multiple NRG1β-responsive and erbB4-dependent signaling cascades including the PI3K, WNK1, STAT3, STAT5 and phospholipase-Cγ pathways. Although WNK1 inhibition did not alter proliferation, inhibition of STAT3, STAT5 and phospholipase-Cγ markedly reduced proliferation.
Conclusions:
ErbB4 promotes MPNST growth by activating key non-Ras dependent signaling cascades including the STAT3, STAT5 and phospholipase-Cγ pathways. ErbB4 and its effector pathways are thus potentially useful therapeutic targets in MPNSTs.
Insights
ErbB4 receptor tyrosine kinase drives malignant peripheral nerve sheath tumor (MPNST) growth through non-Ras dependent pathways. Targeting ErbB4 and its downstream STAT3, STAT5, and phospholipase-Cγ signaling offers potential new therapies for MPNSTs.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Genetics
Background:
- Malignant peripheral nerve sheath tumors (MPNSTs) are driven by Ras hyperactivation, often involving erbB receptor tyrosine kinases.
- The specific erbB receptors driving MPNST pathogenesis remain unclear due to variable expression.
- This study investigates the role of erbB4 in MPNST development and its associated signaling pathways.
Purpose of the Study:
- To determine if altered erbB4 expression promotes MPNST pathogenesis.
- To identify the specific cytoplasmic signaling cascades activated by erbB4 in MPNSTs.
- To explore erbB4 as a potential therapeutic target for MPNSTs.
Main Methods:
- Assessed erbB4 expression using immunohistochemistry, immunocytochemistry, immunoblotting, and real-time PCR.
- Generated genetically engineered mice with floxed Erbb4 alleles to ablate erbB4 in MPNSTs.
- Analyzed MPNST cell proliferation, survival, apoptosis, and angiogenesis in vitro and in vivo.
- Utilized antibody arrays and pharmacologic/genetic inhibition to identify erbB4-responsive kinases and pathways.
Main Results:
- Aberrant erbB4 expression was found in a majority of human and mouse MPNSTs.
- ErbB4 ablation in MPNST cells led to decreased proliferation, survival, and altered morphology.
- Orthotopic xenografts of Erbb4-null MPNSTs showed reduced growth, proliferation, and vascularization.
- ErbB4 ablation did not affect Ras activation, indicating non-Ras dependent oncogenic signaling.
- Identified NRG1β-responsive and erbB4-dependent signaling cascades including PI3K, WNK1, STAT3, STAT5, and phospholipase-Cγ pathways.
- Inhibition of STAT3, STAT5, and phospholipase-Cγ significantly reduced MPNST proliferation.
Conclusions:
- ErbB4 promotes MPNST growth via non-Ras dependent pathways, specifically activating STAT3, STAT5, and phospholipase-Cγ.
- ErbB4 and its effector pathways represent promising therapeutic targets for MPNST treatment.
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