Translocation and deletion breakpoints in cancer genomes are associated with potential non-B DNA-forming sequences
Albino Bacolla1, John A Tainer2, Karen M Vasquez3
1Institute of Medical Genetics, School of Medicine, Cardiff University, Heath Park, Cardiff CF14 4XN, UK Department of Molecular and Cellular Oncology, The University of Texas MD Anderson Cancer Center, 6767 Bertner Ave., Houston, TX 77030, USA Division of Pharmacology and Toxicology, College of Pharmacy, The University of Texas at Austin, Dell Pediatric Research Institute, 1400 Barbara Jordan Blvd., Austin, TX 78723, USA albinobacolla@gmail.com.
Abstract:
Gross chromosomal rearrangements (including translocations, deletions, insertions and duplications) are a hallmark of cancer genomes and often create oncogenic fusion genes. An obligate step in the generation of such gross rearrangements is the formation of DNA double-strand breaks (DSBs). Since the genomic distribution of rearrangement breakpoints is non-random, intrinsic cellular factors may predispose certain genomic regions to breakage. Notably, certain DNA sequences with the potential to fold into secondary structures [potential non-B DNA structures (PONDS); e.g. triplexes, quadruplexes, hairpin/cruciforms, Z-DNA and single-stranded looped-out structures with implications in DNA replication and transcription] can stimulate the formation of DNA DSBs. Here, we tested the postulate that these DNA sequences might be found at, or in close proximity to, rearrangement breakpoints. By analyzing the distribution of PONDS-forming sequences within ±500 bases of 19 947 translocation and 46 365 sequence-characterized deletion breakpoints in cancer genomes, we find significant association between PONDS-forming repeats and cancer breakpoints. Specifically, (AT)n, (GAA)n and (GAAA)n constitute the most frequent repeats at translocation breakpoints, whereas A-tracts occur preferentially at deletion breakpoints. Translocation breakpoints near PONDS-forming repeats also recur in different individuals and patient tumor samples. Hence, PONDS-forming sequences represent an intrinsic risk factor for genomic rearrangements in cancer genomes.
Insights
Potential non-B DNA structures (PONDS) are associated with cancer breakpoints. These DNA sequences may predispose certain genomic regions to breakage, acting as an intrinsic risk factor for genomic rearrangements in cancer.
Area of Science:
- Genomics
- Cancer Biology
- Molecular Genetics
Background:
- Gross chromosomal rearrangements are common in cancer genomes, often leading to oncogenic fusion genes.
- DNA double-strand breaks (DSBs) are a critical step in generating these rearrangements.
- The non-random distribution of breakpoints suggests intrinsic cellular factors predispose specific regions to breakage.
Purpose of the Study:
- To investigate if DNA sequences forming potential non-B DNA structures (PONDS) are located near cancer rearrangement breakpoints.
- To determine if PONDS sequences contribute to the predisposition of genomic regions to breakage.
Main Methods:
- Analysis of PONDS-forming sequences within a 500-base pair window around 19,947 translocation and 46,365 deletion breakpoints in cancer genomes.
- Statistical analysis to assess the association between PONDS and breakpoint locations.
Main Results:
- Significant association found between PONDS-forming repeats and cancer breakpoints.
- (AT)n, (GAA)n, and (GAAA)n repeats are frequent at translocation breakpoints.
- A-tracts are preferentially located at deletion breakpoints.
- Recurrent translocation breakpoints are observed near PONDS-forming repeats.
Conclusions:
- PONDS-forming sequences are significantly associated with cancer breakpoints.
- These DNA structures represent an intrinsic risk factor for genomic rearrangements in cancer.
- Understanding PONDS may offer insights into cancer genome instability.
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