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.

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.