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Sivalingam, J.

Publications and source records attributed to Sivalingam, J..

2 recordsLinked to original sources

A MYC Family Switch: L-MYC Drives and Maintains Neuroendocrine Lineage Programs in Prostate Cancer

Neuroendocrine prostate cancer (NEPC) is an aggressive, therapy-resistant subtype that emerges through lineage plasticity following androgen receptor (AR) pathway inhibition. Although MYC family oncogenes are central to prostate cancer progression, the role of MYCL (L-MYC) in NEPC has remained unclear. Here, we show that MYCL is selectively and robustly upregulated in NEPC patient samples and cell line models, whereas MYC is downregulated and MYCN remains low, revealing a lineage-associated MYC family switch. MYCL expression strongly correlates with the neuroendocrine lineage regulators ASCL1 and INSM1 and inversely with adenocarcinoma-associated genes. Mechanistically, MYCL activation is not driven by genomic amplification but reflects a permissive epigenetic landscape. Functionally, MYCL overexpression suppresses AR signaling and induces neuroendocrine-like transcriptional reprogramming, whereas MYCL knockdown disrupts neuroendocrine lineage identity and restores adenocarcinoma-associated gene expression, including MYC. We further identify ASCL1 and INSM1 as upstream regulators of MYCL, establishing a conserved neuroendocrine transcriptional axis. Together, these findings define MYCL as a lineage-specific regulator that drives neuroendocrine identity and plasticity in advanced prostate cancer.

cancer biology↗

Wnt/Beta-Catenin Signaling Is Active in Neuroendocrine Prostate Cancer

Wnt/beta-Catenin signaling plays a critical role in prostate cancer (PCa) progression, yet its precise contributions in neuroendocrine prostate cancer (NEPCa) remain incompletely understood. In this study, we utilized TRAMP/Wnt-reporter mice to monitor Wnt/beta-Catenin activity and investigated transcriptional alterations associated with NEPCa development. RNA sequencing and pathway enrichment analyses identified neuroactive ligand-receptor interaction, MAPK, calcium, and cAMP signaling as key pathways enriched in NEPCa. Although Wnt signaling was not among the top-enriched pathways, elevated Axin2 expression and increased Wnt-reporter activity suggest its involvement in NEPCa progression. We observed upregulated expression of Wnt3, Wnt6, Dvl2, Dvl3, and Lef1 in NEPCa, coupled with reduced expression of Yap1 and Frat1, which are involved in beta-Catenin degradation. Pharmacological inhibition of Wnt/beta-Catenin signaling using FC101 significantly suppressed PCa growth, underscoring its potential as a therapeutic target. These findings reveal that Wnt/beta-Catenin signaling is active in NEPCa through multiple mechanisms and highlight the need for further investigation into the regulatory interplay between Wnt and YAP1 in prostate cancer.

cancer biology↗