ArticleCancer research2024
Neuroendocrine Differentiation in Prostate Cancer Requires ASCL1.
Article in Cancer research, 2024. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 38 papers.
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Who cites it
38 citing papers in PubMed.
- HO-1 Nuclear Interactome Implications in Neuroendocrine Transdifferentiation in Prostate Cancer.International journal of molecular sciences · 2026Article
- Reprogramming the Evolution of High-Risk Prostate Cancer: Multidisciplinary Strategies to Delay Castration Resistance.Journal of clinical medicine · 2026Review
- Tumor-Associated Macrophage Exosomal miR-142-5p Drives Prostate Cancer Neuroendocrine Differentiation via RERG/Ras/ERK Axis.FASEB journal : official publication of the Federation of American Societies for Experimental Biology · 2026Article
- Single-Cell and Spatial Transcriptomics Reframe the Immunosuppressive Microenvironment of Neuroendocrine Neoplasms.Cancers · 2026Review
- Multiomic analyses delineate human neuroendocrine tumor cell states in relation to normal enteroendocrine cell ontogeny.The Journal of clinical investigation · 2026Article
- SRRT promotes prostate cancer progression and serves as a prognostic biomarker through STAT3 pathway activation.Oncology reports · 2026Article
- PTBP1 knockdown reprograms glioma stem cells into neuronal-like cells and suppresses tumorigenesis via the DUSP5-ERK1/2 signaling pathway.Neuro-oncology · 2026Article
- Article
- Recurrent intra-tumour heterogeneity is a hallmark of metastatic prostate cancer.Nature communications · 2026Article
- Recurrence in the chemotherapy regimen of bladder carcinoma originates from quiescent epidermoid-like cells.Nature communications · 2026Article
- Dependencies in heterogeneous, lineage plastic patient-derived prostate cancer organoids revealed through integrated single-cell multiomics and CRISPR screening.bioRxiv : the preprint server for biology · 2026Article
- Targeting Wnt/β-catenin and circadian regulator restores PRC2/EZH2-controlled chromatin bivalency and suppresses cell state diversity.The Journal of clinical investigation · 2026Article
- Serotonin Modulates Lineage Plasticity in Neuroendocrine Prostate Cancer via Epigenetic Reprogramming.Cancer discovery · 2026Article
- Genomic landscape and precision therapy in prostate cancer: current status and future directions.NPJ precision oncology · 2026Review
- Small Cell Lung Cancer Classification: Unraveling Heterogeneity to Enable Personalized Treatments.Cancer research · 2026Review
- Transcriptional and epigenetic reprogramming, lineage plasticity and therapy resistance in prostate cancer.Journal of the National Cancer Center · 2026Review
- KDM4A promotes NEPC progression through regulation of MYC expression.Cancer letters · 2026Article
- Advances in understanding the tumor microenvironment of neuroendocrine prostate cancer.Frontiers in oncology · 2026Review
- The Quartet of Core Oncogenic Drivers in Neuroendocrine Prostate Cancer: Multi-Omics Dataset Integration to Forge a Translational Link Between Biology and Precision Therapy.International journal of biological sciences · 2026Review
- RUNX1T1 drives stem-like small-cell neuroendocrine prostate cancer identity.Frontiers in cell and developmental biology · 2026Article
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11 authors.
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Abstract
Most patients with prostate adenocarcinoma develop resistance to therapies targeting the androgen receptor (AR). Consequently, a portion of these patients develop AR-independent neuroendocrine (NE) prostate cancer (NEPC), a rapidly progressing cancer with limited therapies and poor survival outcomes. Current research to understand the progression to NEPC suggests a model of lineage plasticity whereby AR-dependent luminal-like tumors progress toward an AR-independent NEPC state. Genetic analysis of human NEPC identified frequent loss of RB1 and TP53, and the loss of both genes in experimental models mediates the transition to a NE lineage. Transcriptomics studies have shown that lineage transcription factors ASCL1 and NEUROD1 are present in NEPC. In this study, we modeled the progression of prostate adenocarcinoma to NEPC by establishing prostate organoids and subsequently generating subcutaneous allograft tumors from genetically engineered mouse models harboring Cre-induced loss of Rb1 and Trp53 with Myc overexpression (RPM). These tumors were heterogeneous and displayed adenocarcinoma, squamous, and NE features. ASCL1 and NEUROD1 were expressed within NE-defined regions, with ASCL1 being predominant. Genetic loss of Ascl1 in this model did not decrease tumor incidence, growth, or metastasis; however, there was a notable decrease in NE identity and an increase in basal-like identity. This study provides an in vivo model to study progression to NEPC and establishes the requirement for ASCL1 in driving NE differentiation in prostate cancer. Significance: Modeling lineage transitions in prostate cancer and testing dependencies of lineage transcription factors have therapeutic implications, given the emergence of treatment-resistant, aggressive forms of neuroendocrine prostate cancer. See related commentary by McQuillen and Brady, p. 3499.
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