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Updated: Jun 16, 2025

Differentiation of a Human Neural Stem Cell Line on Three Dimensional Cultures, Analysis of MicroRNA and Putative Target Genes
Published on: April 12, 2015
Longitudinal single-cell analysis reveals RUNX1T1 as an early driver in treatment-induced neuroendocrine
Yuchao Ni1,2,3,4, Dong Lin1,2,4, Mingchen Shi1,2,4
1Vancouver Prostate Centre, Vancouver, BC, Canada.
Abstract:
Treatment-induced neuroendocrine prostate cancer (t-NEPC) is a lethal, castration-resistant subtype of prostate cancer. While t-NEPC typically arises from adenocarcinoma through neuroendocrine transdifferentiation after androgen pathway inhibition, the temporal dynamics and molecular drivers of this process remain poorly understood. Here, utilizing the first-in-field patient-derived xenograft (PDX) model of adenocarcinoma-to-NEPC transdifferentiation (LTL331/331R), we performed longitudinal single-cell transcriptomic sequencing (scRNA-seq) across seven timepoints spanning pre-castration to relapsed NEPC. Our analysis demonstrated 15 distinct cell clusters, including twelve adenocarcinoma clusters and two NEPC clusters (ASCL1 high/FOXA2 low and ASCL1 low/FOXA2 high clusters). Notably, we revealed a newly-discovered, early intermediate transitional cell state during t-NEPC development distinguished by epithelial-mesenchymal transition (EMT), stem cell-related, metabolically active, and HDAC-associated regulatory signatures. Analysis of this intermediate transitional cluster led to the identification of RUNX1T1 as a pivotal transcriptional regulator of NEPC transdifferentiation. Functionally, RUNX1T1 overexpression promoted AR pathway inhibition (ARPI) -induced NE transdifferentiation and increased resistance to ARPI treatment in prostate adenocarcinoma. RUNX1T1 knockdown reverses the NE transdifferentiation, inhibits NEPC cell proliferation and induces apoptosis, and cell cycle arrest. In summary, this study identifies a critical intermediate transitional cell state during t-NEPC development and reveals the heterogeneity of terminal NEPC, offering new insights into NEPC biology and emphasizing the importance of early intervention. Moreover, the discovery of RUNX1T1 as a key early driver active in both the initial and terminal phases of NEPC progression presents promising opportunities for therapeutic intervention.
Insights
Treatment-induced neuroendocrine prostate cancer (t-NEPC) progresses through a newly discovered transitional cell state. The gene RUNX1T1 drives this transformation and offers a potential therapeutic target for aggressive prostate cancer.
Area of Science:
- Cancer Biology
- Molecular Oncology
- Genomics
Background:
- Treatment-induced neuroendocrine prostate cancer (t-NEPC) is a lethal subtype of castration-resistant prostate cancer.
- The molecular drivers and temporal dynamics of adenocarcinoma-to-NEPC transdifferentiation are poorly understood.
Purpose of the Study:
- To investigate the temporal dynamics and molecular drivers of t-NEPC development using a patient-derived xenograft model.
- To identify key regulators of the transdifferentiation process from adenocarcinoma to NEPC.
Main Methods:
- Longitudinal single-cell transcriptomic sequencing (scRNA-seq) across seven timepoints.
- Analysis of a patient-derived xenograft (PDX) model (LTL331/331R) of adenocarcinoma-to-NEPC transdifferentiation.
- Functional validation of identified genes using knockdown and overexpression studies.
Main Results:
- Identification of 15 distinct cell clusters, including adenocarcinoma, two NEPC subtypes, and a novel intermediate transitional cell state.
- The transitional cell state is characterized by epithelial-mesenchymal transition (EMT), stem cell, metabolic, and HDAC-associated signatures.
- RUNX1T1 was identified as a pivotal transcriptional regulator promoting NEPC transdifferentiation and resistance to androgen pathway inhibition (ARPI).
Conclusions:
- A critical intermediate transitional cell state and heterogeneity in terminal NEPC were revealed, providing new insights into NEPC biology.
- RUNX1T1 is an early driver of NEPC progression, active in both initial and terminal phases.
- Targeting RUNX1T1 presents a promising therapeutic strategy for managing t-NEPC.
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