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Updated: Feb 10, 2026

Author Spotlight: Advancing the Detection of Low-Frequency Mutations in Cancer Tissues
Published on: August 23, 2024
Somatic mutation landscape of a meningioma and its pulmonary metastasis
Yaran Du1, Ting Lu2, Song Huang3
1Institute of Functional Nano and Soft Materials (FUNSOM) & Collaborative Innovation Center of Suzhou Nano Science and Technology, Soochow University, Suzhou, 215123, P. R. China.
Background:
Extracranial metastasis (ENM) of meningiomas is extremely rare, and typically occurs several years after a primary tumor is diagnosed. However, the genetic changes underlying ENM events have not yet been investigated.
Case Presentation:
A 58-year-old male patient was sent to the emergency room of our hospital because of a sudden fall. Magnetic resonance imaging detected a mass at the right frontal sagittal sinus. He underwent tumor resection and recovered well, but post-operative computed tomography revealed three lumps on the right side of his chest. Thoracic surgery was performed to remove two of the lumps. Pathological findings revealed that the brain and lung tumors were grade I meningiomas. The patient received no additional radiation or chemotherapy post-surgery, and there was no sign of tumor recurrence in the brain or progression of the remaining lump in the chest 1 year after surgery. We performed whole exome sequencing of the patient's blood, primary brain tumor, and lung metastatic tumor tissues to identify somatic genetic alterations that had occurred during ENM. This revealed that a frameshift deletion of the neurofibromin 2 gene likely drove formation of the meningioma. Surprisingly, we found that the brain tumor was relatively homogeneous and contained only one dominant clone; both the pulmonary metastasis and the original brain tumor were derived from the same clone, and no obvious additional driver mutations were detected in the metastatic tumor.
Conclusion:
Although ENM of meningiomas is very rare, brain tumor cells appear to be more adaptable to tissue microenvironments outside of the central nervous system than was commonly thought.
Insights
Extracranial metastasis of meningioma is rare. Genetic analysis revealed a neurofibromin 2 gene mutation drove the primary brain tumor and its lung metastasis, suggesting brain tumor cells adapt to new environments.
Area of Science:
- Neuro-oncology
- Genetics
- Cancer Metastasis
Background:
- Extracranial metastasis (ENM) of meningiomas is exceptionally rare, often diagnosed years after the primary tumor.
- Genetic drivers of ENM in meningiomas remain largely uninvestigated.
Observation:
- A patient with a frontal sinus meningioma developed lung metastases.
- Whole exome sequencing was performed on blood, primary brain tumor, and metastatic lung tumor.
- The primary and metastatic tumors shared a common clonal origin.
Findings:
- A frameshift deletion in the neurofibromin 2 gene was identified as the likely driver mutation for the meningioma.
- The primary brain tumor was genetically homogeneous.
- No additional driver mutations were found in the metastatic lung tumor compared to the primary brain tumor.
Implications:
- Meningioma cells can adapt to extracranial microenvironments, challenging previous assumptions.
- Understanding the genetic basis of ENM is crucial for managing rare metastatic events.
- This case highlights the importance of genetic sequencing in rare cancer presentations.
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