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Webster, A. L. H.

Publications and source records attributed to Webster, A. L. H..

2 recordsLinked to original sources

Fanconi anemia-isogenic head and neck cancer cell line pairs - a basic and translational science resource

Fanconi anemia (FA) is a heritable malformation, bone marrow failure and cancer predisposition syndrome that confers an exceptionally high risk of developing carcinomas arising in squamous mucosal epithelia lining the mouth, proximal esophagus, vulva and anus. The origin of these cancers is not understood, and no effective way has been identified to prevent or delay their appearance. FA-associated carcinomas are also therapeutically challenging, as they may be multi-focal and stage-advanced at diagnosis making surgical control challenging. Moreover, individuals with FA have systemic DNA damage hypersensitivity and thus an elevated risk of toxicity when treated with standard-of-care therapies such as DNA cross-linking drugs and ionizing radiation. We developed the Fanconi Anemia Cancer Cell Line Resource (FA-CCLR) in order to foster new research on the origins, treatment, and prevention of FA-associated cancers. The FA-CCLR consists of FANC-isogenic head and neck squamous cell carcinoma (HNSCC) cell line pairs from cancers arising in individuals with FA, or newly engineered from sporadic HNSCC cell lines. Molecular, cellular, and biochemical analyses were used to demonstrate the causal dependence of key FA-associated phenotypes on FANC genotype, expression and pathway activity. These FANC-isogenic cell line pairs are available to academic and non-profit investigators, with ordering information available at the Fanconi Anemia Research Materials Resource and Repository at Oregon Health & Sciences University, Portland OR. SignificanceWe have generated new isogenic cancer cell line models to investigate the origins, treatment and prevention of Fanconi anemia-associated squamous carcinomas that target the oral mucosa, proximal esophagus, and anogenital region.

cancer biology↗

Fanconi Anemia Pathway Deficiency Drives Copy Number Variation in Squamous Cell Carcinomas

Fanconi anemia (FA), a model syndrome of genome instability, is caused by a deficiency in DNA interstrand crosslink (ICL) repair resulting in chromosome breakage1-3. The FA repair pathway comprises at least 22 FANC proteins including BRCA1 and BRCA24-6, and protects against carcinogenic endogenous and exogenous aldehydes7-10. Individuals with FA are hundreds to thousands-fold more likely to develop head and neck (HNSCC), esophageal and anogenital squamous cell carcinomas (SCCs) with a median onset age of 31 years11. The aggressive nature of these tumors and poor patient tolerance of platinum and radiation-based therapy have been associated with short survival in FA11-16. Molecular studies of SCCs from individuals with FA (FA SCCs) have been limited, and it is unclear how they relate to sporadic HNSCCs primarily driven by tobacco and alcohol exposure or human papillomavirus (HPV) infection17. Here, by sequencing FA SCCs, we demonstrate that the primary genomic signature of FA-deficiency is the presence of a high number of structural variants (SVs). SVs are enriched for small deletions, unbalanced translocations, and fold-back inversions that arise in the context of TP53 loss. The SV breakpoints preferentially localize to early replicating regions, common fragile sites, tandem repeats, and SINE elements. SVs are often connected forming complex rearrangements. Resultant genomic instability underlies elevated copy number alteration (CNA) rates of key HNSCC-associated genes, including PIK3CA, MYC, CSMD1, PTPRD, YAP1, MXD4, and EGFR. In contrast to sporadic HNSCC, we find no evidence of HPV infection in FA HNSCC, although positive cases were identified in gynecologic tumors. A murine allograft model of FA pathway-deficient SCC was enriched in SVs, exhibited dramatic tumor growth advantage, more rapid epithelial-to-mesenchymal transition (EMT), and enhanced autonomous inflammatory signaling when compared to an FA pathway-proficient model. In light of the protective role of the FA pathway against SV formation uncovered here, and recent findings of FA pathway insufficiency in the setting of increased formaldehyde load resulting in hematopoietic stem cell failure and carcinogenesis18-20, we propose that high copy-number instability in sporadic HNSCC may result from functional overload of the FA pathway by endogenous and exogenous DNA crosslinking agents. Our work lays the foundation for improved FA patient treatment and demonstrates that FA SCC is a powerful model to study tumorigenesis resulting from DNA crosslinking damage.

cancer biology↗