CXCR4-LASP1-G9a-SNAIL axis drives NEPC transdifferentiation via induction of EMT and downregulation of REST.
Phenotypic switching is an emerging driver of cancer treatment resistance, yet early signals regulating this process remain unclear.
APA
Liu L, Rascón IA, et al. (2025). CXCR4-LASP1-G9a-SNAIL axis drives NEPC transdifferentiation via induction of EMT and downregulation of REST.. Cell genomics, 5(8), 100916. https://doi.org/10.1016/j.xgen.2025.100916
MLA
Liu L, et al.. "CXCR4-LASP1-G9a-SNAIL axis drives NEPC transdifferentiation via induction of EMT and downregulation of REST.." Cell genomics, vol. 5, no. 8, 2025, pp. 100916.
PMID
40499539
Abstract
Phenotypic switching is an emerging driver of cancer treatment resistance, yet early signals regulating this process remain unclear. Here, using longitudinal single-cell RNA sequencing, we mapped differentiation trajectories in the LTL331 prostate adenocarcinoma patient-derived xenograft (PDX) model undergoing neuroendocrine prostate cancer (NEPC) transformation post castration. Our analyses identified a key differentiation node marked by epithelial-mesenchymal transition (EMT) and repressor element-1 silencing transcription factor (REST) downregulation driven by the CXCR4-LASP1-G9a-SNAIL axis. Mechanistically, CXCR4 activation promotes nuclear translocation of LASP1 that links G9a and SNAIL via SH3/proline-rich motif and LIM/SNAG domain interactions, enabling SNAIL-mediated REST repression via promoter E-box motifs. Inhibition of CXCR4 or G9a reversed LTL331R NEPC cells toward a luminal androgen receptor-active phenotype. CXCR4-targeted radioligands enabled both imaging and inhibition of NEPC tumors in vivo. These findings highlight the CXCR4-LASP1-G9a-SNAIL axis as a key regulator of epigenetic and transcriptional reprogramming in NEPC transdifferentiation and support its therapeutic targeting in aggressive NEPC.
MeSH Terms
Snail Family Transcription Factors; Receptors, CXCR4; Cell Transdifferentiation; Male; Animals; Humans; Epithelial-Mesenchymal Transition; Repressor Proteins; Down-Regulation; Prostatic Neoplasms; Cell Line, Tumor; Mice; LIM Domain Proteins; Adaptor Proteins, Signal Transducing; Gene Expression Regulation, Neoplastic; RE1-Silencing Transcription Factor
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