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Transcription Factor AP-2γ Induces Early Cdx2 Expression and Represses HIPPO Signaling to Specify the Trophectoderm Lineage

Overview
Journal Development
Specialty Biology
Date 2015 Apr 11
PMID 25858457
Citations 46
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Abstract

Cell fate decisions are fundamental to the development of multicellular organisms. In mammals the first cell fate decision involves segregation of the pluripotent inner cell mass and the trophectoderm, a process regulated by cell polarity proteins, HIPPO signaling and lineage-specific transcription factors such as CDX2. However, the regulatory mechanisms that operate upstream to specify the trophectoderm lineage have not been established. Here we report that transcription factor AP-2γ (TFAP2C) functions as a novel upstream regulator of Cdx2 expression and position-dependent HIPPO signaling in mice. Loss- and gain-of-function studies and promoter analysis revealed that TFAP2C binding to an intronic enhancer is required for activation of Cdx2 expression during early development. During the 8-cell to morula transition TFAP2C potentiates cell polarity to suppress HIPPO signaling in the outside blastomeres. TFAP2C depletion triggered downregulation of PARD6B, loss of apical cell polarity, disorganization of F-actin, and activation of HIPPO signaling in the outside blastomeres. Rescue experiments using Pard6b mRNA restored cell polarity but only partially corrected position-dependent HIPPO signaling, suggesting that TFAP2C negatively regulates HIPPO signaling via multiple pathways. Several genes involved in regulation of the actin cytoskeleton (including Rock1, Rock2) were downregulated in TFAP2C-depleted embryos. Inhibition of ROCK1 and ROCK2 activity during the 8-cell to morula transition phenocopied TFAP2C knockdown, triggering a loss of position-dependent HIPPO signaling and decrease in Cdx2 expression. Altogether, these results demonstrate that TFAP2C facilitates trophectoderm lineage specification by functioning as a key regulator of Cdx2 transcription, cell polarity and position-dependent HIPPO signaling.

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References
1.
Wang W, Shashikant C . Evidence for positive and negative regulation of the mouse Cdx2 gene. J Exp Zool B Mol Dev Evol. 2007; 308(3):308-21. DOI: 10.1002/jez.b.21154. View

2.
Igarashi H, Knott J, Schultz R, Williams C . Alterations of PLCbeta1 in mouse eggs change calcium oscillatory behavior following fertilization. Dev Biol. 2007; 312(1):321-30. PMC: 2170533. DOI: 10.1016/j.ydbio.2007.09.028. View

3.
Correa-Cerro L, Piao Y, Sharov A, Nishiyama A, Cadet J, Yu H . Generation of mouse ES cell lines engineered for the forced induction of transcription factors. Sci Rep. 2012; 1:167. PMC: 3240988. DOI: 10.1038/srep00167. View

4.
de Vries W, Evsikov A, Haac B, Fancher K, Holbrook A, Kemler R . Maternal beta-catenin and E-cadherin in mouse development. Development. 2004; 131(18):4435-45. DOI: 10.1242/dev.01316. View

5.
Salah Z, Melino G, Aqeilan R . Negative regulation of the Hippo pathway by E3 ubiquitin ligase ITCH is sufficient to promote tumorigenicity. Cancer Res. 2011; 71(5):2010-20. DOI: 10.1158/0008-5472.CAN-10-3516. View