A dominant-negative form of mouse SOX2 induces trophectoderm differentiation and progressive polyploidy in mouse

Jun Li1, Guangjin Pan, Kai Cui

  • 1Institute of Pharmacology, Department of Biological Sciences and Biotechnology, State Key Laboratory of Biomembrane and Membrane Biotechnology, Institutes of Biomedicine, School of Medicine, Tsinghua University, Beijing 100084, China.

Insights

SOX2 shuttles between the nucleus and cytoplasm to maintain embryonic stem cell pluripotency. Disrupting this SOX2 (SRY-box 2) function promotes trophectoderm differentiation and polyploid formation.

Area of Science:

  • Developmental Biology
  • Stem Cell Biology
  • Molecular Genetics

Background:

  • SOX2 is crucial for early embryogenesis, partnering with OCT4 to regulate gene expression.
  • The exact mechanism of SOX2's function in fertilized eggs is not fully understood.

Purpose of the Study:

  • To elucidate the mechanism of SOX2 function in maintaining stem cell pluripotency.
  • To investigate the role of SOX2 nuclear localization signals in its function.

Main Methods:

  • Identification of two nuclear localization signals (NLS) in SOX2.
  • Generation of a dominant-negative SOX2 mutant (Dmu-mSox2) by mutating NLS.
  • Stable expression of Dmu-mSox2 in embryonic stem (ES) cells and Sox2 knockdown studies.

Main Results:

  • SOX2 shuttles between cytoplasm and nucleus via two NLS.
  • Dmu-mSox2 loses OCT4 interaction but inhibits wild-type SOX2 activity.
  • Dmu-mSox2 expression or Sox2 knockdown induces ES cell polyploidy and trophectoderm differentiation.

Conclusions:

  • SOX2 maintains ES cell pluripotency by nuclear-cytoplasmic shuttling with OCT4.
  • This SOX2-OCT4 cooperation prevents trophectoderm differentiation and polyploidization.
  • SOX2's shuttling mechanism is critical for preserving stem cell identity.