Genomic signature of Fanconi anaemia DNA repair pathway deficiency in cancer

基因组不稳定性 DNA修复 生物 癌变 癌症研究 背景(考古学) DNA损伤 染色体不稳定性 遗传学 范科尼贫血 癌症 基因 DNA 染色体 古生物学
作者
Andrew Webster,Mathijs A. Sanders,Krupa R. Patel,Ralf Dietrich,Raymond J. Noonan,Francis P. Lach,Ryan R. White,Audrey Goldfarb,Kevin Hadi,Matthew Edwards,Frank X. Donovan,Remco M. Hoogenboezem,Moonjung Jung,Sunandini Sridhar,Tom Wiley,Olivier Fédrigo,Huasong Tian,Joel Rosiene,Thomas E. Heineman,Jennifer A. Kennedy
出处
期刊:Nature [Nature Portfolio]
卷期号:612 (7940): 495-502 被引量:87
标识
DOI:10.1038/s41586-022-05253-4
摘要

Fanconi anaemia (FA), a model syndrome of genome instability, is caused by a deficiency in DNA interstrand crosslink repair resulting in chromosome breakage1–3. The FA repair pathway protects against endogenous and exogenous carcinogenic aldehydes4–7. Individuals with FA are hundreds to thousands fold more likely to develop head and neck (HNSCC), oesophageal and anogenital squamous cell carcinomas8 (SCCs). Molecular studies of SCCs from individuals with FA (FA SCCs) are limited, and it is unclear how FA SCCs relate to sporadic HNSCCs primarily driven by tobacco and alcohol exposure or infection with human papillomavirus9 (HPV). Here, by sequencing genomes and exomes of FA SCCs, we demonstrate that the primary genomic signature of FA repair deficiency is the presence of high numbers of structural variants. Structural variants are enriched for small deletions, unbalanced translocations and fold-back inversions, and are often connected, thereby forming complex rearrangements. They arise in the context of TP53 loss, but not in the context of HPV infection, and lead to somatic copy-number alterations of HNSCC driver genes. We further show that FA pathway deficiency may lead to epithelial-to-mesenchymal transition and enhanced keratinocyte-intrinsic inflammatory signalling, which would contribute to the aggressive nature of FA SCCs. We propose that the genomic instability in sporadic HPV-negative HNSCC may arise as a result of the FA repair pathway being overwhelmed by DNA interstrand crosslink damage caused by alcohol and tobacco-derived aldehydes, making FA SCC a powerful model to study tumorigenesis resulting from DNA-crosslinking damage. Defective DNA interstrand crosslink repair in Fanconi anaemia drives extensive genomic rearrangements, thereby substantially increasing the risk of cancer development.
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