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Updated: Jul 9, 2026

Capturing Common Fragile Site Breaks by Native γH2A.X ChIP
Published on: January 24, 2025
Oncogene-induced replication stress preferentially targets common fragile sites in preneoplastic lesions. A
P K Tsantoulis1, A Kotsinas, P P Sfikakis
1Department of Histology and Embryology, Molecular Carcinogenesis Group, School of Medicine, University of Athens, Athens, Greece.
Abstract:
Common fragile sites (CFSs) are regions of the genome prone to breakage by replication inhibitors (extrinsic replication stress). Recently, we and others observed that oncogene-induced replication stress (RS) induces DNA damage from the earliest stages of cancer. Our aim was to perform a genome-wide analysis in precancerous and cancerous experimental models to examine whether allelic imbalance occurs within CFSs. Subsequently, CFSs sequence characteristics were assessed. We used a growth-factor-induced human skin hyperplasia and a H-ras-induced mouse hyperplastic urothelium as preneoplastic models, along with an inducible U2OS-CDT1(Tet-ON) cancer cell line model, all bearing established oncogene-induced RS stimuli. Human DNA was analysed with Affymetrix SNP microarrays, while mouse DNA was analysed with Nimblegen array CGH. We studied 56 aphidicolin-type CFSs and 1914 regions of control, nonfragile DNA. Our theoretical in silico analysis spanned 2.16 billion nonoverlapping bases on human chromosomes 1-22. Our results provide direct experimental evidence indicating that genomic alterations were more common within CFSs in epidermal and urothelial preneoplastic lesions as well as in cancer. CFSs were on average less flexible than nonfragile regions, contained more guanine-cytosine (GC) and Alu sequences. Importantly, regions with loss-of-heterozygosity were also less flexible and had a higher Alu percentage.
Insights
Common fragile sites (CFSs) are genome regions susceptible to breakage. This study found genomic alterations are more frequent in CFSs during early cancer development, suggesting their role in oncogenesis.
Area of Science:
- Genomics
- Cancer Biology
- Molecular Genetics
Background:
- Common fragile sites (CFSs) are genome regions prone to breakage under replication stress.
- Oncogene-induced replication stress is observed in early cancer stages, potentially impacting CFSs.
Purpose of the Study:
- To investigate genome-wide allelic imbalance within CFSs in precancerous and cancerous models.
- To analyze sequence characteristics of CFSs in relation to genomic instability.
Main Methods:
- Genome-wide analysis using Affymetrix SNP microarrays (human) and Nimblegen array CGH (mouse).
- Studied 56 aphidicolin-type CFSs and 1914 control regions across preneoplastic and cancer models.
- In silico analysis of 2.16 billion nonoverlapping bases on human chromosomes.
Main Results:
- Genomic alterations were significantly more common within CFSs in preneoplastic lesions and cancer.
- CFSs exhibited reduced flexibility, higher guanine-cytosine (GC) content, and increased Alu sequences compared to nonfragile regions.
- Regions with loss-of-heterozygosity showed decreased flexibility and higher Alu content.
Conclusions:
- CFSs are hotspots for genomic alterations during cancer development.
- Sequence characteristics like reduced flexibility and higher Alu content may predispose CFSs to instability.
- Findings highlight the role of CFSs in early oncogenesis and genomic instability.
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