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Furgal, A.

Publications and source records attributed to Furgal, A..

2 recordsLinked to original sources

An immunocompetent Merkel cell carcinoma model for preclinical studies

Merkel cell carcinoma (MCC) is a rare and aggressive neuroendocrine skin cancer that frequently carries integrated Merkel cell polyomavirus DNA and expresses oncogenic viral small T antigen (sTAg) and truncated large T antigen (tLTAg). We previously reported a mouse model of MCC with skin-targeted expression of sTAg, tLTAg, and the Merkel cell transcription factor ATOH1, combined with deletion of Trp53. Here, we optimized this model to achieve 100% tumor penetrance with lymph node metastases, established four mouse MCC cell lines, and selected one line, mMCC2, for pilot preclinical trials. In immunocompetent C57BL/6J mice, mMCC2 cells reliably produce MCCs and lymph node metastases following subcutaneous or intradermal (orthotopic) injection, and liver and lung metastases after tail vein injection. Mouse MCC allografts resemble parental tumors histologically and express a full complement of MCC differentiation markers. Treatment of allografted mice with anti-PD-1 resulted in variable inhibition of tumor growth. In contrast, treatment with lysine-specific histone Wdemethylase 1 (LSD1) inhibitors, with or without anti-PD-1, led to consistently lower tumor volumes by 5.7-fold in both groups (P < 0.0001) and smaller or undetectable lymph node metastases. Growth-inhibited tumors in all groups showed a marked reduction in proliferating tumor cells and increased infiltration by F4/80+ macrophages and CD8+ T cells. These findings support a role for immune-cell recruitment in treatment response and underscore the importance of immunocompetent preclinical models, even in studies using targeted therapies. This unique virus-positive MCC allograft model, which produces local tumors as well as regional and distant metastases in immunocompetent hosts, provides a critical platform for preclinical evaluation of new therapeutic strategies and sets the stage for much-needed translational studies to inform future clinical trials.

Cancer Biology↗

Splicing of HPV16 E6 promotes aggressive invasion in oropharyngeal cancer via endocytosis of E-cadherin

Human papillomavirus-positive oropharyngeal squamous cell carcinoma (HPV+ OPSCC) has become the most common HPV-associated cancer in developed countries, yet a significant subset of patients develops recurrence despite favorable treatment responses. Biomarkers that identify aggressive tumors at diagnosis are therefore needed. In HPV+ cancers, the viral E6 transcript can be expressed as two main variants, the full-length isoform (E6FL) and the spliced E6*I isoform. Here, we investigated the functional and clinical impact of E6FL and E6*I in HPV+OPSCC. Across multiple preclinical models, E6*I promoted migration and aggressive invasion relative to E6FL and was associated with redistribution of E-cadherin away from the cell membrane. In multi-institutional patient cohorts, a previously developed E6FL:E6ALL influence score, which captures E6 splicing-associated host transcriptional biology, was associated with clinical outcomes. Lower scores, reflecting greater E6*I impact, were associated with worse overall survival and recurrence-free survival. Multiplexed immunofluorescence of 75 primary pretreatment biopsies further showed that a lower influence score was linked to reduced membrane and increased cytoplasmic localization of E-cadherin, while a tissue-based E-cadherin localization score was associated with recurrence. Mechanistically, E6*I overexpression promotes E-cadherin internalization, likely through the Rab11-associated trafficking pathway. Splice-switching oligonucleotides that shifted endogenous E6 splicing toward E6FL reduced invasion in two HPV+ OPSCC models. Together, these findings position HPV E6 splicing as a regulatory axis underlying aggressive HPV+ OPSCC biology and support E6 splicing and membrane-to-cytoplasmic ECAD localization as candidate risk-stratification biomarkers.

cancer biology↗