GEO series
Loss of NF2 drives malignant transformation of human pancreatic acinar cells and enhances cell fitness under nutrient deprivation and therapeutical stress [bulk_RNAseq]
GSE292512
Homo sapiens
Expression profiling by high throughput sequencing
18 samples
2025/10/07
GPL24676GPL21290
Summary
Pancreatic ductal adenocarcinoma (PDAC) occurs as a complex, multifaceted event driven by the interplay of tumor permissive genetic mutations, nature of cellular origin and microenvironmental stress. In this study, we present a novel model to screen previously underappreciated tumor suppressor genes in human pancreatic acinar-derived PDAC and probe their implications under nutrient deprived environmental context. Primary human pancreatic acinar 3D organoids were engineered to harbor triple PDAC driver mutations—KRAS G12V, TP53 inactivation, and CDKN2A deletion (designated as KPT organoids). Using a pooled CRISPR knockout library targeting 199 potential tumor suppressors curated from recurrent mutations in clinical PDAC samples, we performed in vivo and in vitro screening with KPT cells and revealed significant enrichment of a list of candidate tumor suppressors, with NF2 emerging as the top target. Functional validation confirmed that loss of NF2 promotes the transition of PDAC from a non-invasive to an invasive state, potentially through extracellular matrix (ECM) modulation. Additionally, we found that the fibroblast heterogeneity in these organoids-derived tumors correlates with the cancer progression, suggesting the important roles of cancer-stroma communications in tumor evolution. Strikingly, NF2 inactivation was found to enhance PDAC cell fitness under nutrient starvation, a condition reflective of the harsh tumor microenvironment. This adaptation not only reinforces the oncogenic state but also confers therapeutical resistance. These findings establish NF2 as a critical tumor suppressor in PDAC and uncover its role in mediating nutrient adaptation and drug resistance. Importantly, this study provides new insights into drug resistance mechanisms and potential therapeutic targets in PDAC.
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Paper (PMID 41480763) ↗
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