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Askan, G.

Publications and source records attributed to Askan, G..

2 recordsLinked to original sources

Pancreatic cancer prognosis is predicted by a novel ATAC-array technology for assessing chromatin accessibility

We investigated tumor-cell-intrinsic chromatin accessibility patterns of pancreatic ductal adenocarcinoma (PDAC) by ATAC-seq on EpCAM+ PDAC malignant epithelial cells, sorted from 54 freshly resected human tumors, and discovered a signature of 1092 chromatin loci displaying differential accessibility between patients with disease free survival (DFS) < 1 year and patients with DFS > 1 year. Analyzing transcription factor (TF) binding motifs within these loci, we identified two TFs (ZKSCAN1 and HNF1b) displaying differential nuclear localization between patients with short vs. long DFS. We further developed a novel chromatin accessibility microarray methodology termed "ATAC-Array", an easy-to-use platform obviating the time and cost of next generation sequencing. Applying this novel methodology to the original ATAC-seq libraries as well as independent libraries generated from patient-derived organoids, we validated ATAC-array technology in both the original ATAC-Seq cohort as well as in an independent validation cohort. We conclude that PDAC prognosis can be predicted by ATAC-array, which represents a novel, lowcost, clinically feasible technology for assessing chromatin accessibility profiles.

cancer biology

The origins and consequences of UPF1 variants in pancreatic adenosquamous carcinoma

Pancreatic adenosquamous carcinoma (PASC) is a rare and aggressive subtype of pancreatic cancer whose mutational origins are poorly understood. An early study reported somatic mutations in UPF1, which encodes a core component of the nonsense-mediated mRNA decay (NMD) pathway, as a common signature of PASC, but subsequent studies did not observe these lesions in other PASC cohorts. The corresponding controversy about whether UPF1 mutations are important contributors to PASC has been exacerbated by a paucity of functional studies of these lesions. Here, we systematically assessed the potential roles of UPF1 mutations in PASC. We modeled two reported UPF1 mutations to find no consistent effects on pancreatic cancer growth, acquisition of adenosquamous features, UPF1 splicing, UPF1 protein levels, or NMD efficiency. We subsequently discovered that ~40% of UPF1 mutations reportedly present in PASCs are identical to standing genetic variation in the human population, suggesting that they are likely non-pathogenic inherited variation rather than pathogenic mutations. Our data suggest that UPF1 is not a common functional driver of PASC and motivate further attempts to identify unique genetic features defining these malignancies.

cancer biology