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Published on: October 21, 2015
Mouse Gonad Development in the Absence of the Pro-Ovary Factor WNT4 and the Pro-Testis Factor SOX9
Furong Tang1, Nainoa Richardson1, Audrey Albina1
1Université Côte d'Azur, CNRS, Inserm, Institut de Biologie Valrose (iBV), 06108 Nice, France.
Abstract:
The transcription factors SRY and SOX9 and RSPO1/WNT4/β-Catenin signaling act as antagonistic pathways to drive testis and ovary development respectively, from a common gonadal primordium in mouse embryos. In this work, we took advantage of a double knockout mouse model to study gonadal development when Sox9 and Wnt4 are both mutated. We show that the XX gonad mutant for Wnt4 or for both Wnt4 and Sox9 develop as ovotestes, demonstrating that ectopic SOX9 function is not required for the partial female-to-male sex reversal caused by a Wnt4 mutation. Sox9 deletion in XY gonads leads to ovarian development accompanied by ectopic WNT/β-catenin signaling. In XY Sox9 mutant gonads, SRY-positive supporting precursors adopt a female-like identity and develop as pre-granulosa-like cells. This phenotype cannot be fully prevented by the deletion of Wnt4 or Rspo1, indicating that SOX9 is required for the early determination of the male supporting cell identity independently of repressing RSPO1/WNT4/β-Catenin signaling. However, in XY Sox9 Wnt4 double mutant gonads, pre-granulosa cells are not maintained, as they prematurely differentiate as mature granulosa cells and then trans-differentiate into Sertoli-like cells. Together, our results reveal the dynamics of the specific and independent actions of SOX9 and WNT4 during gonadal differentiation: SOX9 is essential in the testis for early specification of male-supporting cells whereas WNT4 functions in the ovary to maintain female-supporting cell identity and inhibit male-specific vascular and steroidogenic cell differentiation.
Insights
SOX9 is crucial for male gonad development by specifying supporting cells, while WNT4 maintains female cell identity. Their interplay governs sex determination in mouse embryos.
Area of Science:
- Developmental Biology
- Genetics
- Reproductive Biology
Background:
- Gonadal development relies on antagonistic pathways: SRY/SOX9 for testes and RSPO1/WNT4/β-Catenin for ovaries.
- Understanding the interplay between SOX9 and WNT4 is key to deciphering sex determination mechanisms.
Purpose of the Study:
- To investigate gonadal development in mice with combined mutations in Sox9 and Wnt4.
- To elucidate the independent and dynamic roles of SOX9 and WNT4 in sex determination.
Main Methods:
- Utilized a double knockout mouse model for Sox9 and Wnt4.
- Analyzed XX and XY gonadal development in mutant embryos.
Main Results:
- XX gonads with Wnt4 or Wnt4/Sox9 mutations developed as ovotestes, indicating SOX9 is not essential for Wnt4-mutation-induced sex reversal.
- Sox9 deletion in XY gonads caused ovarian development with WNT/β-catenin signaling, showing SOX9 is vital for male supporting cell specification.
- SOX9 is required for early male supporting cell identity, independent of RSPO1/WNT4/β-Catenin signaling.
- In XY Sox9 Wnt4 double mutants, supporting cells trans-differentiated into Sertoli-like cells, revealing complex cell fate dynamics.
Conclusions:
- SOX9 is essential for the early specification of male supporting cells in testes.
- WNT4 is crucial for maintaining female supporting cell identity in ovaries and inhibiting male differentiation.
- The study highlights the distinct and critical roles of SOX9 and WNT4 in mammalian sex determination.
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