Related Experiment Video
Updated: Jan 1, 2026

Next Generation Sequencing for the Detection of Actionable Mutations in Solid and Liquid Tumors
Published on: September 20, 2016
Next generation sequencing identifies novel potential actionable mutations for grade I meningioma treatment
Francesco Pepe1, Pasquale Pisapia1, Maria Laura Del Basso de Caro2
1Department of Public Health, University of Naples "Federico II", Naples, Italy.
Abstract:
Meningiomas are common brain tumors that arise from the meningeal membranes that envelope the brain and spinal cord. The World Health Organization classifies these tumors into three histopathological grades. Because of tumor recurrence, treating meningiomas may be challenging even in well-differentiated grade I (GI) neoplasms. Indeed, around 5% of completely resected GI meningiomas relapse within 5 years. Therefore, identifying driver mutations in GI meningiomas through next generation sequencing (NGS) assays is paramount. The aim of this study was to validate the use of the 50-gene AmpliSeq Hotspot Cancer Panel v2 to identify the mutational status of 23 GI meningioma, namely, 12 non recurrent and 11 recurrent. In 18 out of the 23 GI meningiomas analyzed, we identified at least one gene mutation (78.2%). The most frequently mutated genes were c-kit (39.1%), ATM (26.1%), TP53 (26.1%), EGFR (26.1%), STK11 (21.7%), NRAS (17.4%), SMAD4 (13%), FGFR3 (13%), and PTPN11 (13%); less frequent mutations were SMARCB1 (8.7%), FLT3 (8.7%), KRAS (8.7%), FBWX7 (8.7%), ABL1 (8.7%), ERBB2 (8.7%), IDH1 (8.7%), BRAF (8.7%), MET (8.7%), HRAS (4.3%), RB1 (4.3%), CTNNB1 (4.3%), PIK3CA (4.3%), VHL (4.3%), KDR (4.3%), APC (4.3%), NOTCH1 (4.3%), JAK3 (4.3%), and SRC (4.3%). To our knowledge, mutations in all of these genes, except for TP53, STK11, SMARCB1, PIK3CA, VHL, and BRAF, have never been described before in meningiomas. Hence, these findings demonstrate the viability of NGS to detect new genetic alterations in GI meningiomas. Equally important, this technology enabled us to detect possible novel actionable mutations not previously associated with GI and for which selective inhibitors already exist.
Insights
Next-generation sequencing (NGS) effectively identifies genetic mutations in Grade I meningiomas, including novel actionable mutations. This technology aids in understanding tumor recurrence and developing targeted therapies for brain tumors.
Area of Science:
- Neuro-oncology
- Genetics
- Molecular Biology
Background:
- Meningiomas are common primary brain tumors arising from meningeal cells.
- Grade I meningiomas, though well-differentiated, have a significant recurrence rate (approx. 5%) even after complete resection.
- Identifying driver mutations is crucial for understanding meningioma behavior and recurrence.
Purpose of the Study:
- To validate the utility of the 50-gene AmpliSeq Hotspot Cancer Panel v2 for next-generation sequencing (NGS) in identifying mutations in Grade I meningiomas.
- To analyze the mutational status of 23 Grade I meningiomas (12 non-recurrent, 11 recurrent).
- To discover novel genetic alterations and actionable mutations in Grade I meningiomas.
Main Methods:
- Next-generation sequencing (NGS) was performed using the 50-gene AmpliSeq Hotspot Cancer Panel v2.
- The study analyzed 23 Grade I meningioma samples.
- Mutational status was assessed for genes including c-kit, ATM, TP53, EGFR, and others.
Main Results:
- Mutations were identified in 78.2% (18 out of 23) of the analyzed Grade I meningiomas.
- The most frequent mutations observed were in c-kit (39.1%), ATM (26.1%), TP53 (26.1%), and EGFR (26.1%).
- This study identified several potentially novel mutations in meningiomas, including those in STK11, NRAS, SMAD4, FGFR3, PTPN11, and others, with potential therapeutic implications.
Conclusions:
- NGS is a viable method for detecting genetic alterations in Grade I meningiomas.
- The findings highlight the potential for novel actionable mutations in meningiomas, paving the way for targeted therapies.
- This research contributes to a deeper understanding of the molecular basis of meningioma recurrence.
More Related Videos
09:33Author Spotlight: Finding New Therapeutic Targets for Malignant Peripheral Nerve Sheath Tumor Through Genome-Scale shRNA Screens
Published on: August 25, 2023
10:58Transposon Mediated Integration of Plasmid DNA into the Subventricular Zone of Neonatal Mice to Generate Novel Models of Glioblastoma
Published on: February 22, 2015