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Mutation Processes in 293-Based Clones Overexpressing the DNA Cytosine Deaminase APOBEC3B
Monica K Akre1, Gabriel J Starrett1, Jelmar S Quist2
1Department of Biochemistry, Molecular Biology, and Biophysics, Institute for Molecular Virology, Masonic Cancer Center, University of Minnesota, Minneapolis, MN, United States of America.
Abstract:
Molecular, cellular, and clinical studies have combined to demonstrate a contribution from the DNA cytosine deaminase APOBEC3B (A3B) to the overall mutation load in breast, head/neck, lung, bladder, cervical, ovarian, and other cancer types. However, the complete landscape of mutations attributable to this enzyme has yet to be determined in a controlled human cell system. We report a conditional and isogenic system for A3B induction, genomic DNA deamination, and mutagenesis. Human 293-derived cells were engineered to express doxycycline-inducible A3B-eGFP or eGFP constructs. Cells were subjected to 10 rounds of A3B-eGFP exposure that each caused 80-90% cell death. Control pools were subjected to parallel rounds of non-toxic eGFP exposure, and dilutions were done each round to mimic A3B-eGFP induced population fluctuations. Targeted sequencing of portions of TP53 and MYC demonstrated greater mutation accumulation in the A3B-eGFP exposed pools. Clones were generated and microarray analyses were used to identify those with the greatest number of SNP alterations for whole genome sequencing. A3B-eGFP exposed clones showed global increases in C-to-T transition mutations, enrichments for cytosine mutations within A3B-preferred trinucleotide motifs, and more copy number aberrations. Surprisingly, both control and A3B-eGFP clones also elicited strong mutator phenotypes characteristic of defective mismatch repair. Despite this additional mutational process, the 293-based system characterized here still yielded a genome-wide view of A3B-catalyzed mutagenesis in human cells and a system for additional studies on the compounded effects of simultaneous mutation mechanisms in cancer cells.
Insights
The DNA cytosine deaminase APOBEC3B (A3B) drives mutations in various cancers. This study developed a human cell system to show A3B causes C-to-T transitions and copy number changes, aiding cancer mutation research.
Area of Science:
- Genetics
- Molecular Biology
- Cancer Research
Background:
- APOBEC3B (A3B) is a DNA cytosine deaminase implicated in cancer mutagenesis across multiple tumor types.
- The full spectrum of A3B-driven mutations in human cells remains incompletely characterized.
- A controlled system is needed to precisely study A3B's mutagenic activity.
Purpose of the Study:
- To establish and utilize a conditional, isogenic human cell system for controlled induction of APOBEC3B (A3B).
- To comprehensively analyze the genomic consequences of A3B-mediated DNA deamination and mutagenesis.
- To investigate the landscape of mutations induced by A3B in human cells.
Main Methods:
- Engineered 293 cells with doxycycline-inducible A3B-eGFP or eGFP.
- Subjected cells to repeated rounds of A3B-eGFP exposure, inducing significant cell death.
- Employed targeted sequencing, microarray analysis, and whole-genome sequencing to identify mutations and copy number alterations.
Main Results:
- A3B-eGFP exposure led to increased mutation accumulation in TP53 and MYC genes.
- Genome-wide analysis revealed global increases in C-to-T transitions and copy number aberrations.
- Mutations were enriched within A3B-preferred trinucleotide sequence motifs.
- Both A3B-exposed and control cells exhibited mutator phenotypes linked to mismatch repair deficiency.
Conclusions:
- The developed inducible system effectively models A3B-catalyzed mutagenesis in human cells.
- A3B significantly contributes to C-to-T transitions and copy number variations, impacting cancer genomes.
- The system provides a platform for studying combined mutagenic mechanisms in cancer development.
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