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.

Abstract

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.

Related Concept Videos

Cancers Originate from Somatic Mutations in a Single Cell02:21

Cancers Originate from Somatic Mutations in a Single Cell

Cancer arises from mutations in the critical genes that allow healthy cells to escape cell cycle regulation and acquire the ability to proliferate indefinitely. Though originating from a single mutation event in one of the originator cells, cancer progresses when the mutant cell lines continue to gain more and more mutations, and finally, become malignant. For example, chronic myelogenous leukemia (CML) develops initially as a non-lethal increase in white blood cells, which progressively...
15.0K
Mutations01:39

Mutations

Overview
94.6K
Mutations01:35

Mutations

Mutations are changes in the sequence of DNA. These changes can occur spontaneously or they can be induced by exposure to environmental factors. Mutations can be characterized in a number of different ways: whether and how they alter the amino acid sequence of the protein, whether they occur over a small or large area of DNA, and whether they occur in somatic cells or germline cells.
Chromosomal Alterations Are Large-Scale Mutations
While point mutations are changes in a single nucleotide in...
44.6K
Viral Mutations00:36

Viral Mutations

A mutation is a change in the sequence of bases of DNA or RNA in a genome. Some mutations occur during replication of the genome due to errors made by the polymerase enzymes that replicate DNA or RNA. Unlike DNA polymerase, RNA polymerase is prone to errors because it is not capable of “proofreading” its work. Viruses with RNA-based genomes, like HIV, therefore accrue mutations faster than viruses with DNA-based genomes. Because mutation and recombination provide the raw material...
40.0K
Metastasis02:30

Metastasis

Metastasis is the spread of cancer cells from the original site to distant locations in the body. Cancer cells can spread via blood vessels (hematogenous) as well as lymph vessels in the body.
Epithelial-to-Mesenchymal Transition
The epithelial-to-mesenchymal transition or EMT is a developmental process commonly observed in wound healing, embryogenesis, and cancer metastasis. EMT is induced by transforming growth factor-beta (TGF-β) or receptor tyrosine kinase (RTK) ligands, which further...
6.6K
Mutation, Gene Flow, and Genetic Drift01:09

Mutation, Gene Flow, and Genetic Drift

In a population that is not at Hardy-Weinberg equilibrium, the frequency of alleles changes over time. Therefore, any deviations from the five conditions of Hardy-Weinberg equilibrium can alter the genetic variation of a given population. Conditions that change the genetic variability of a population include mutations, natural selection, non-random mating, gene flow, and genetic drift (small population size).
64.6K