SOX2 is required independently in both stem and differentiated cells for pituitary tumorigenesis in p27-null mice

Veronica Moncho-Amor1, Probir Chakravarty2, Christophe Galichet1

  • 1Laboratory of Stem Cell Biology and Developmental Genetics, The Francis Crick Institute, NW1 1AT London, United Kingdom.

Insights

Loss of p27 leads to increased SOX2, driving pituitary tumors. SOX2 is essential in both endocrine and stem cells for tumor development, suggesting targeting stem cells may be an effective anti-tumor strategy.

Area of Science:

  • Endocrinology
  • Cancer Biology
  • Developmental Biology

Background:

  • P27, a cell cycle inhibitor, represses SOX2, impacting pituitary tumor development.
  • SOX2's role in endocrine versus stem cells (SCs) in tumorigenesis is unclear.

Purpose of the Study:

  • Investigate the cellular origin and mechanisms of endocrine tumorigenesis in p27-deficient pituitaries.
  • Clarify the context-dependent roles of SOX2 in pituitary tumor formation.

Main Methods:

  • Conditional loss-of-function and lineage tracing in p27-/- mice.
  • Deletion of Sox2 regulatory region 2 (Srr2).
  • Single-cell transcriptomic analysis.

Main Results:

  • Pituitary hyperplasia in p27-/- mice correlates with reduced differentiation and elevated SOX2 in endocrine and stem cells.
  • SOX2 is cell-autonomously required in p27-/- endocrine cells for tumor formation and in SCs for tumorigenesis promotion.
  • SOX2-dependent MAPK pathway activation in SCs is crucial for tumorigenesis.

Conclusions:

  • SOX2 plays distinct, context-dependent roles in pituitary tumorigenesis following p27 loss.
  • Stem cells have an unexpected SOX2-dependent tumor-promoting function.
  • Targeting both tumor cells and stem cells could be a viable anti-tumor strategy.