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Updated: Jul 20, 2025

Functional Assessment of BRCA1 variants using CRISPR-Mediated Base Editors
Published on: February 28, 2021
Genetic inhibitors of APOBEC3B-induced mutagenesis
Tony M Mertz1,2, Elizabeth Rice-Reynolds3, Ly Nguyen3
1School of Molecular Biosciences and Center for Reproductive Biology, Washington State University, Pullman, Washington 99164, USA; tony.mertz@wsu.edu steven.roberts2@wsu.edu srober23@uvm.edu.
Abstract:
The cytidine deaminases APOBEC3A (A3A) and APOBEC3B (A3B) are prominent mutators of human cancer genomes. However, tumor-specific genetic modulators of APOBEC-induced mutagenesis are poorly defined. Here, we used a screen to identify 61 gene deletions that increase A3B-induced mutations in yeast. We also determined whether each deletion was epistatic with Ung1 loss, which indicated whether the encoded factors participate in the homologous recombination (HR)-dependent bypass of A3B/Ung1-dependent abasic sites or suppress A3B-catalyzed deamination by protecting against aberrant formation of single-stranded DNA (ssDNA). We found that the mutation spectra of A3B-induced mutations revealed genotype-specific patterns of strand-specific ssDNA formation and nucleotide incorporation across APOBEC-induced lesions. Combining these three metrics, we were able to establish a multifactorial signature of APOBEC-induced mutations specific to (1) failure to remove H3K56 acetylation, (2) defective CTF18-RFC complex function, and (3) defective HR-mediated bypass of APOBEC-induced lesions. We extended these results by analyzing mutation data for human tumors and found BRCA1/2-deficient breast cancers display three- to fourfold more APOBEC-induced mutations. Mirroring our results in yeast, Rev1-mediated C-to-G substitutions are mainly responsible for increased APOBEC-signature mutations in BRCA1/2-deficient tumors, and these mutations associate with lagging strand synthesis during replication. These results identify important factors that influence DNA replication dynamics and likely the abundance of APOBEC-induced mutation during tumor progression. They also highlight a novel role for BRCA1/2 during HR-dependent lesion bypass of APOBEC-induced lesions during cancer cell replication.
Insights
Genetic factors influencing APOBEC3B-induced mutations in cancer were identified. BRCA1/2-deficient breast cancers show increased APOBEC mutations, linked to DNA replication and repair pathways.
Area of Science:
- Genetics
- Cancer Biology
- Molecular Biology
Background:
- APOBEC3A (A3A) and APOBEC3B (A3B) are key mutagens in human cancer genomes.
- Factors modulating APOBEC-induced mutagenesis in tumors are not well understood.
Purpose of the Study:
- To identify genetic modulators of APOBEC3B (A3B)-induced mutations.
- To elucidate mechanisms of APOBEC-induced mutagenesis and its link to DNA repair pathways.
Main Methods:
- A genetic screen in yeast identified 61 gene deletions that enhance A3B-induced mutations.
- Epistasis analysis with Ung1 loss determined the role of deleted genes in DNA repair pathways.
- Analysis of human tumor mutation data, including BRCA1/2-deficient breast cancers.
Main Results:
- A multifactorial signature for APOBEC-induced mutations was established, involving H3K56 acetylation, CTF18-RFC complex, and homologous recombination (HR) bypass.
- BRCA1/2-deficient breast cancers exhibit significantly higher APOBEC-induced mutations.
- Rev1-mediated C-to-G substitutions and lagging strand synthesis are associated with increased APOBEC mutations in BRCA1/2-deficient tumors.
Conclusions:
- Defects in DNA repair pathways, particularly HR, influence APOBEC-induced mutagenesis.
- BRCA1/2 plays a role in the HR-dependent bypass of APOBEC-induced lesions during cancer replication.
- Understanding these factors can inform cancer progression and therapeutic strategies.
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