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Updated: Jul 16, 2025

Genome-wide Surveillance of Transcription Errors in Eukaryotic Organisms
Published on: September 13, 2018
APOBEC3B regulates R-loops and promotes transcription-associated mutagenesis in cancer
Jennifer L McCann1,2,3,4, Agnese Cristini5, Emily K Law1,2,3,4
1Howard Hughes Medical Institute, University of Minnesota, Minneapolis, MN, USA.
Abstract:
The single-stranded DNA cytosine-to-uracil deaminase APOBEC3B is an antiviral protein implicated in cancer. However, its substrates in cells are not fully delineated. Here APOBEC3B proteomics reveal interactions with a surprising number of R-loop factors. Biochemical experiments show APOBEC3B binding to R-loops in cells and in vitro. Genetic experiments demonstrate R-loop increases in cells lacking APOBEC3B and decreases in cells overexpressing APOBEC3B. Genome-wide analyses show major changes in the overall landscape of physiological and stimulus-induced R-loops with thousands of differentially altered regions, as well as binding of APOBEC3B to many of these sites. APOBEC3 mutagenesis impacts genes overexpressed in tumors and splice factor mutant tumors preferentially, and APOBEC3-attributed kataegis are enriched in RTCW motifs consistent with APOBEC3B deamination. Taken together with the fact that APOBEC3B binds single-stranded DNA and RNA and preferentially deaminates DNA, these results support a mechanism in which APOBEC3B regulates R-loops and contributes to R-loop mutagenesis in cancer.
Insights
The DNA deaminase APOBEC3B interacts with R-loops, structures involved in DNA and RNA. This interaction regulates R-loops and contributes to cancer mutagenesis.
Area of Science:
- Molecular Biology
- Genetics
- Cancer Research
Background:
- APOBEC3B is a single-stranded DNA deaminase with roles in antiviral defense and cancer.
- Its cellular substrates and functions, particularly in cancer, remain incompletely understood.
Purpose of the Study:
- To investigate the cellular substrates and functions of APOBEC3B, focusing on its potential role in R-loop regulation and cancer mutagenesis.
- To elucidate the mechanism by which APOBEC3B influences R-loop dynamics and contributes to genomic instability.
Main Methods:
- Proteomics to identify APOBEC3B interacting partners.
- Biochemical assays to confirm APOBEC3B binding to R-loops in vitro and in cells.
- Genetic manipulation (knockout and overexpression) to assess R-loop levels.
- Genome-wide analyses to map R-loop alterations and APOBEC3B binding sites.
- Mutagenesis studies to examine the impact of APOBEC3B on gene mutation patterns.
Main Results:
- Proteomics identified numerous R-loop factors interacting with APOBEC3B.
- APOBEC3B directly binds to R-loops in cellular and in vitro settings.
- APOBEC3B deficiency increases R-loop accumulation, while overexpression decreases it.
- Genome-wide analyses revealed widespread alterations in R-loop landscapes and APOBEC3B binding.
- APOBEC3B mutagenesis preferentially affects genes in tumors, particularly those with splice factor mutations, and kataegis show APOBEC3B deamination motifs.
Conclusions:
- APOBEC3B plays a significant role in regulating R-loop formation and stability.
- The interaction between APOBEC3B and R-loops contributes to R-loop-associated mutagenesis in cancer.
- These findings reveal a novel mechanism linking APOBEC3B activity to cancer development through R-loop modulation.
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