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Mosaic Zebrafish Transgenesis for Functional Genomic Analysis of Candidate Cooperative Genes in Tumor Pathogenesis
Published on: March 31, 2015
Somatic mutagenesis with a Sleeping Beauty transposon system leads to solid tumor formation in zebrafish
Maura McGrail1, Julia M Hatler, Xianyan Kuang
1Department of Genetics, Development and Cell Biology, Iowa State University, Ames, Iowa, United States of America. mmcgrail@iastate.edu
Abstract:
Large-scale sequencing of human cancer genomes and mouse transposon-induced tumors has identified a vast number of genes mutated in different cancers. One of the outstanding challenges in this field is to determine which genes, when mutated, contribute to cellular transformation and tumor progression. To identify new and conserved genes that drive tumorigenesis we have developed a novel cancer model in a distantly related vertebrate species, the zebrafish, Danio rerio. The Sleeping Beauty (SB) T2/Onc transposon system was adapted for somatic mutagenesis in zebrafish. The carp ß-actin promoter was cloned into T2/Onc to create T2/OncZ. Two transgenic zebrafish lines that contain large concatemers of T2/OncZ were isolated by injection of linear DNA into the zebrafish embryo. The T2/OncZ transposons were mobilized throughout the zebrafish genome from the transgene array by injecting SB11 transposase RNA at the 1-cell stage. Alternatively, the T2/OncZ zebrafish were crossed to a transgenic line that constitutively expresses SB11 transposase. T2/OncZ transposon integration sites were cloned by ligation-mediated PCR and sequenced on a Genome Analyzer II. Between 700-6800 unique integration events in individual fish were mapped to the zebrafish genome. The data show that introduction of transposase by transgene expression or RNA injection results in an even distribution of transposon re-integration events across the zebrafish genome. SB11 mRNA injection resulted in neoplasms in 10% of adult fish at ∼10 months of age. T2/OncZ-induced zebrafish tumors contain many mutated genes in common with human and mouse cancer genes. These analyses validate our mutagenesis approach and provide additional support for the involvement of these genes in human cancers. The zebrafish T2/OncZ cancer model will be useful for identifying novel and conserved genetic drivers of human cancers.
Insights
Scientists developed a novel zebrafish cancer model using the Sleeping Beauty (SB) transposon system to identify genes driving tumorigenesis. This model reveals conserved cancer genes common to zebrafish, human, and mouse cancers.
Area of Science:
- Genetics
- Oncology
- Comparative Genomics
Background:
- Cancer genome sequencing has identified numerous mutated genes.
- Identifying genes critical for cellular transformation and tumor progression remains a challenge.
Purpose of the Study:
- To develop a novel vertebrate cancer model in zebrafish (Danio rerio) for identifying conserved cancer-driving genes.
- To adapt the Sleeping Beauty (SB) T2/Onc transposon system for somatic mutagenesis in zebrafish.
Main Methods:
- Created a T2/OncZ transposon construct using the carp ß-actin promoter.
- Generated transgenic zebrafish lines with T2/OncZ concatemers.
- Mobilized transposons via SB11 transposase RNA injection or crossing with SB11-expressing transgenic fish.
- Mapped transposon integration sites using ligation-mediated PCR and next-generation sequencing.
Main Results:
- Achieved even distribution of transposon re-integration events across the zebrafish genome.
- Observed neoplasm development in 10% of adult fish approximately 10 months post-mobilization.
- Identified mutated genes in zebrafish tumors that are also implicated in human and mouse cancers.
Conclusions:
- The zebrafish T2/OncZ model effectively induces tumors and allows for large-scale mutagenesis.
- This model validates the approach for discovering conserved genetic drivers of cancer.
- The zebrafish model is a valuable tool for identifying novel genes involved in human tumorigenesis.
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