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Updated: May 9, 2026

Identifying, Diagnosing, and Grading Malignant Peripheral Nerve Sheath Tumors in Genetically Engineered Mouse Models
Published on: May 17, 2024
NF1 deletion generates multiple subtypes of soft-tissue sarcoma that respond to MEK inhibition
Rebecca D Dodd1, Jeffrey K Mito, William C Eward
1Corresponding Author: David G. Kirsch, Duke University Medical Center, Box 91006, Durham, NC 27708. david.kirsch@duke.edu.
Abstract:
Soft-tissue sarcomas are a heterogeneous group of tumors arising from connective tissue. Recently, mutations in the neurofibromin 1 (NF1) tumor suppressor gene were identified in multiple subtypes of human soft-tissue sarcomas. To study the effect of NF1 inactivation in the initiation and progression of distinct sarcoma subtypes, we have developed a novel mouse model of temporally and spatially restricted NF1-deleted sarcoma. To generate primary sarcomas, we inject adenovirus containing Cre recombinase into NF1(flox/flox); Ink4a/Arf(flox/flox) mice at two distinct orthotopic sites: intramuscularly or in the sciatic nerve. The mice develop either high-grade myogenic sarcomas or malignant peripheral nerve sheath tumor (MPNST)-like tumors, respectively. These tumors reflect the histologic properties and spectrum of sarcomas found in patients. To explore the use of this model for preclinical studies, we conducted a study of mitogen-activated protein kinase (MAPK) pathway inhibition with the MEK inhibitor PD325901. Treatment with PD325901 delays tumor growth through decreased cyclin D1 mRNA and cell proliferation. We also examined the effects of MEK inhibition on the native tumor stroma and find that PD325901 decreases VEGFα expression in tumor cells with a corresponding decrease in microvessel density. Taken together, our results use a primary tumor model to show that sarcomas can be generated by loss of NF1 and Ink4a/Arf, and that these tumors are sensitive to MEK inhibition by direct effects on tumor cells and the surrounding microenvironment. These studies suggest that MEK inhibitors should be further explored as potential sarcoma therapies in patients with tumors containing NF1 deletion.
Insights
Loss of NF1 and Ink4a/Arf genes initiates sarcoma development in mice. MEK inhibitors show promise for treating these neurofibromin 1 (NF1) related sarcomas by targeting tumor cells and their microenvironment.
Area of Science:
- Oncology
- Genetics
- Molecular Biology
Background:
- Soft-tissue sarcomas are diverse tumors originating from connective tissues.
- Mutations in the neurofibromin 1 (NF1) tumor suppressor gene are implicated in various human sarcoma subtypes.
- NF1 gene inactivation is a key factor in sarcoma initiation and progression.
Purpose of the Study:
- To develop and utilize a novel mouse model for studying NF1-inactivated sarcomas.
- To investigate the therapeutic potential of MEK inhibitors in NF1-related sarcomas.
- To analyze the impact of MEK inhibition on tumor cells and the tumor microenvironment.
Main Methods:
- A spatially and temporally restricted NF1 deletion mouse model was created using Cre-lox technology.
- Adenovirus-mediated Cre recombinase injection into NF1(flox/flox); Ink4a/Arf(flox/flox) mice induced sarcoma formation.
- Tumor-bearing mice were treated with the MEK inhibitor PD325901 to assess therapeutic efficacy.
Main Results:
- The mouse model successfully generated high-grade myogenic sarcomas and malignant peripheral nerve sheath tumor (MPNST)-like tumors.
- MEK inhibitor PD325901 treatment significantly delayed tumor growth by reducing cyclin D1 mRNA and cell proliferation.
- PD325901 decreased VEGFα expression and reduced microvessel density in the tumor stroma.
Conclusions:
- Loss of NF1 and Ink4a/Arf cooperatively drives sarcoma development in this novel mouse model.
- MEK inhibition demonstrates therapeutic efficacy against NF1-related sarcomas through direct and microenvironmental effects.
- MEK inhibitors represent a promising therapeutic strategy for patients with NF1-deficient sarcomas.
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