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Updated: Apr 11, 2026

Author Spotlight: Finding New Therapeutic Targets for Malignant Peripheral Nerve Sheath Tumor Through Genome-Scale shRNA Screens
Published on: August 25, 2023
PRMT5 is Frequently Upregulated and a Potential Therapeutic Target in MTAP-deficient Malignant Peripheral Nerve
Dingxun Wang1, Melissa L Fishel2,3,4, Azadeh Samiei5
11. Department of Comparative Pathobiology.
Abstract:
Malignant peripheral nerve sheath tumors (MPNSTs) are highly aggressive sarcomas with poor prognosis and a strong tendency for metastasis and relapse. Surgical removal remains the mainstay of treatment but is frequently ineffective or impractical. Currently, no effective targeted therapy exists for this type of malignancy. PRMT5 has recently emerged as a promising therapeutic target in various human cancers with MTAP loss, which results in cancer cell dependency on PRMT5 activity. The frequent loss of MTAP in MPNSTs suggests that PRMT5 inhibition is a promising therapeutic option and enables the stratification of cancer patients with few treatment options. We first examined human nerve sheath tumor samples and found that increased PRMT5 expression and activity correlated with MTAP loss in 86.8% (33/38) of MPNSTs and in atypical neurofibromatous neoplasm with uncertain biologic potential (ANNUBP) (5/5). When PRMT5 activity was inhibited genetically and chemically, the cell growth of MTAP-deficient MPNST cell lines was suppressed, but not that of MTAP-proficient MPNST cell lines. Moreover, in the PRMT5-inhibited MTAP-deficient MPNST cell lines, spontaneous DNA damage accumulation was observed following G2/M cell cycle arrest. The DNA replication stress marker RPA32 decreased, and CHK1 was activated early after PRMT5 knockdown, likely contributing to the accumulation of DNA damage. In addition, we combined PRMT5 inhibition with the DNA-damaging agents doxorubicin and gemcitabine, resulting in synergistic effects and increased cancer cell death in MTAP-deficient MPNST cell lines. Together, these findings identify PRMT5 as a compelling therapeutic target in MTAP-deficient MPNSTs. This PRMT5 inhibition strategy has strong translational potential for MPNSTs.
Insights
Targeting PRMT5 shows promise for malignant peripheral nerve sheath tumors (MPNSTs) lacking MTAP. Inhibiting PRMT5 suppressed tumor growth and enhanced chemotherapy effectiveness in these aggressive cancers.
Area of Science:
- Oncology
- Cancer Biology
- Molecular Therapeutics
Background:
- Malignant peripheral nerve sheath tumors (MPNSTs) are aggressive sarcomas with limited treatment options.
- Current treatments like surgery are often ineffective, and targeted therapies are lacking.
- Methylthioadenosine phosphorylase (MTAP) loss is frequent in MPNSTs, creating a dependency on PRMT5.
Purpose of the Study:
- To investigate PRMT5 as a therapeutic target in MPNSTs, particularly those with MTAP loss.
- To evaluate the efficacy of PRMT5 inhibition in preclinical MPNST models.
- To explore combination strategies involving PRMT5 inhibition and chemotherapy.
Main Methods:
- Analysis of PRMT5 expression and activity in human MPNST samples.
- Genetic and chemical inhibition of PRMT5 in MPNST cell lines with varying MTAP status.
- Assessment of cell growth, DNA damage, cell cycle progression, and replication stress markers.
- Combination studies with DNA-damaging agents (doxorubicin, gemcitabine).
Main Results:
- Increased PRMT5 expression/activity correlated with MTAP loss in 86.8% of MPNSTs.
- PRMT5 inhibition suppressed growth specifically in MTAP-deficient MPNST cells.
- PRMT5 inhibition led to DNA damage accumulation and G2/M cell cycle arrest in MTAP-deficient cells.
- Combined PRMT5 inhibition with chemotherapy showed synergistic anti-cancer effects.
Conclusions:
- PRMT5 is a promising therapeutic target for MTAP-deficient MPNSTs.
- PRMT5 inhibition effectively halts tumor growth and sensitizes MPNSTs to chemotherapy.
- This strategy holds significant translational potential for treating MPNST patients.
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