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Yavas, A.

Publications and source records attributed to Yavas, A..

2 recordsLinked to original sources

A Genetically Engineered Human Organoid Model Reveals Distinct Genetic and Epigenetic Barriers of Lineage Plasticity in Early PDAC Transformation

The lack of accurate, human-based models recapitulating early-stage pancreatic ductal adenocarcinoma (PDAC) has hindered therapeutic development. Using pluripotent stem cell-derived pancreatic progenitor organoids, we established a human PDAC model that faithfully reproduces the genetic, epigenetic, and transcriptomic trajectory of tumor initiation and progression in vitro, validated against clinical datasets and histopathology. We demonstrate that CDKN2A loss, nearly universal in patients but dispensable in mouse models, is essential for neoplastic transformation when combined with KRAS and TP53 mutations, while SMAD4 loss promotes tumor progression. Multi-omics profiling reveals epigenetic repression of pancreatic lineage program during PDAC initiation, alongside oncogenic AP-1-driven chromatin remodeling. Notably, we identify TET1 suppression as a mechanistic link between oncogenic ERK signaling and the hypermethylation and silencing of essential pancreatic transcription factors. This model captures the genetic and epigenetic determinants of human PDAC, reveals antagonism between oncogenic and lineage restriction programs, and supports TET-based lineage restoration as a promising early intervention strategy for high-risk individuals.

cancer biology↗

Genetic variants within silencer elements contribute to human blood cell traits

Genome-wide association studies (GWAS) have identified numerous non-coding loci associated with human complex traits and diseases. However, assigning the functional impacts to the underlying variants remains challenging. In this study, we performed high-throughput ReSE screening to characterize the effects of 14,720 fine-mapped causal non-coding SNPs associated with 15 diverse blood traits on the potential silencer activity. By prioritizing non-coding variants that confer allelic imbalances in silencer activity, we identified epigenomic signatures of silencer-related variants and assessed their heritability contributions to specific blood traits. We conducted mechanistic studies on individual silencer variants and characterized the transcriptional factors (TF) that may recognize the silencer elements harboring the blood traits-related GWAS variants. We showed the silencer activity of GWAS variants rs4808806 which is related to red blood cell distribution width (RDW) and rs10758656 which is associate with mean corpuscular hemoglobin (MCH) and mean corpuscular volume (MCV) traits. Our study underscores the importance of investigating the silencer-activity-related variants in post-GWAS functional studies.

genetics↗