SOX2 is a dispensable modulator of NUT carcinoma oncogenesis in mouse

Insights

SOX2 is not required for NUT carcinoma initiation or progression. This study challenges the assumption of SOX2 as a universal oncogenic driver in NUT carcinoma, impacting therapeutic strategies.

Area of Science:

  • Oncology
  • Molecular Biology
  • Cancer Genetics

Background:

  • NUT carcinoma (NC) is an aggressive cancer driven by NUTM1 fusions, often linked to transcription factors like SOX2.
  • SOX2 is hypothesized to be a key oncogenic driver in NC, but its in vivo requirement remains unproven.

Purpose of the Study:

  • To investigate the functional requirement of SOX2 in NUT carcinoma initiation and progression using a genetically engineered mouse model.
  • To determine the impact of SOX2 deletion on tumor histology, key oncogenic drivers, and transcriptional programs in NC.

Main Methods:

  • Development of a genetically engineered mouse model for NC.
  • Lineage-specific conditional deletion of the SOX2 gene in vivo.
  • Histological analysis, molecular profiling (including key driver gene expression), and transcriptomic analysis of tumors.

Main Results:

  • SOX2 is dispensable for NC initiation and progression.
  • Tumors lacking SOX2 maintained characteristic NC histology and expression of BRD4::NUTM1, MYC, and TP63.
  • Transcriptomic analysis revealed only minor changes in SOX2-deficient tumors, primarily in metabolic pathways, without altering core oncogenic programs.

Conclusions:

  • SOX2 is not a universally required oncogenic driver in NUT carcinoma.
  • Targeting SOX2 may have limited therapeutic utility in NC, necessitating a re-evaluation of therapeutic strategies.
  • These findings refine the understanding of NC pathogenesis and inform future therapeutic prioritization.

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