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Transposon Mediated Integration of Plasmid DNA into the Subventricular Zone of Neonatal Mice to Generate Novel Models of Glioblastoma
Published on: February 22, 2015
Transposon mutagenesis identifies genes that transform neural stem cells into glioma-initiating cells
Hideto Koso1, Haruna Takeda, Christopher Chin Kuan Yew
1Division of Genetics and Genomics, Institute of Molecular and Cell Biology, Agency for Science, Technology and Research, Singapore 138673.
Abstract:
Neural stem cells (NSCs) are considered to be the cell of origin of glioblastoma multiforme (GBM). However, the genetic alterations that transform NSCs into glioma-initiating cells remain elusive. Using a unique transposon mutagenesis strategy that mutagenizes NSCs in culture, followed by additional rounds of mutagenesis to generate tumors in vivo, we have identified genes and signaling pathways that can transform NSCs into glioma-initiating cells. Mobilization of Sleeping Beauty transposons in NSCs induced the immortalization of astroglial-like cells, which were then able to generate tumors with characteristics of the mesenchymal subtype of GBM on transplantation, consistent with a potential astroglial origin for mesenchymal GBM. Sequence analysis of transposon insertion sites from tumors and immortalized cells identified more than 200 frequently mutated genes, including human GBM-associated genes, such as Met and Nf1, and made it possible to discriminate between genes that function during astroglial immortalization vs. later stages of tumor development. We also functionally validated five GBM candidate genes using a previously undescribed high-throughput method. Finally, we show that even clonally related tumors derived from the same immortalized line have acquired distinct combinations of genetic alterations during tumor development, suggesting that tumor formation in this model system involves competition among genetically variant cells, which is similar to the Darwinian evolutionary processes now thought to generate many human cancers. This mutagenesis strategy is faster and simpler than conventional transposon screens and can potentially be applied to any tissue stem/progenitor cells that can be grown and differentiated in vitro.
Insights
Researchers identified genes transforming neural stem cells (NSCs) into glioma-initiating cells, revealing pathways for glioblastoma multiforme (GBM) development and potential astroglial origins for mesenchymal GBM.
Area of Science:
- Neuroscience
- Cancer Biology
- Genetics
Background:
- Neural stem cells (NSCs) are implicated as the origin of glioblastoma multiforme (GBM).
- The specific genetic changes driving NSC transformation into glioma-initiating cells are not fully understood.
Purpose of the Study:
- To identify genes and signaling pathways responsible for transforming NSCs into glioma-initiating cells.
- To investigate the potential astroglial origin of mesenchymal GBM subtypes.
Main Methods:
- Utilized a novel transposon mutagenesis strategy involving in vitro NSC mutagenesis followed by in vivo tumor generation.
- Performed sequence analysis of transposon insertion sites to identify frequently mutated genes.
- Employed a high-throughput method for functional validation of candidate GBM genes.
Main Results:
- Identified over 200 frequently mutated genes, including known GBM-associated genes like Met and Nf1.
- Demonstrated that Sleeping Beauty transposon mobilization in NSCs leads to immortalization and generates tumors resembling mesenchymal GBM.
- Differentiated genes involved in astroglial immortalization versus later tumor progression stages.
- Showcased clonal tumor heterogeneity driven by genetic alterations and cellular competition.
Conclusions:
- The study provides insights into the genetic landscape of glioblastoma initiation from neural stem cells.
- The findings support a potential astroglial origin for mesenchymal GBM and highlight the role of genetic variation and competition in tumor development.
- The developed mutagenesis strategy offers a faster and simpler approach for studying stem/progenitor cell transformation across various tissues.
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