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No AccessJournal of UrologyInvestigative Urology1 Oct 2016

Molecular Characterization of the Genital Organizer: Gene Expression Profile of the Mouse Urethral Plate Epithelium

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    Purpose:

    Lower urinary tract malformations are among the most common congenital anomalies in humans. Molecular genetic studies of mouse external genital development have begun to identify mechanisms that pattern the genital tubercle and orchestrate urethral tubulogenesis. The urethral plate epithelium is an endodermal signaling region that has an essential role in external genital development. However, little is known about the molecular identity of this cell population or the genes that regulate its activity.

    Materials and Methods:

    We used microarray analysis to characterize differences in gene expression between urethral plate epithelium and surrounding tissue in mouse genital tubercles. In situ hybridizations were performed to map gene expression patterns and ToppCluster (https://toppcluster.cchmc.org/) was used to analyze gene associations.

    Results:

    A total of 84 genes were enriched at least 20-fold in urethral plate epithelium relative to surrounding tissue. The majority of these genes were expressed throughout the urethral plate in males and females at embryonic day 12.5 when the urethral plate is known to signal. Functional analysis using ToppCluster revealed genetic pathways with known functions in other organ systems but unknown roles in external genital development. Additionally, a 3-dimensional molecular atlas of genes enriched in urethral plate epithelium was generated and deposited at the GUDMAP (GenitoUrinary Development Molecular Anatomy Project) website (http://gudmap.org/).

    Conclusions:

    We identified dozens of genes previously unknown to be expressed in urethral plate epithelium at a crucial developmental period. It provides a novel panel of genes for analysis in animal models and in humans with external genital anomalies.

    References

    • 1 : The increasing incidence of congenital penile anomalies in the United States. J Urol2005; 174: 1573. LinkGoogle Scholar
    • 2 : Unique functions of Sonic hedgehog signaling during external genitalia development. Development2001; 128: 4241. Crossref, MedlineGoogle Scholar
    • 3 : Sonic hedgehog signaling from the urethral epithelium controls external genital development. Dev Biol2002; 247: 26. Google Scholar
    • 4 : Genetic interactions of the androgen and Wnt/beta-catenin pathways for the masculinization of external genitalia. Mol Endocrinol2009; 23: 871. Google Scholar
    • 5 : Coordinated activity of Spry1 and Spry2 is required for normal development of the external genitalia. Dev Biol2014; 386: 1. Google Scholar
    • 6 : Sexually dimorphic expression of Mafb regulates masculinization of the embryonic urethral formation. Proc Natl Acad Sci U S A2014; 111: 16407. Google Scholar
    • 7 : Tissue-specific roles of FGF signaling in external genitalia development. Dev Dyn2015; 244: 759. Google Scholar
    • 8 : Comparative gene expression analysis of genital tubercle development reveals a putative appendicular Wnt7 network for the epidermal differentiation. Dev Biol2010; 344: 1071. Google Scholar
    • 9 : The development of the male genitourinary system: II. The origin and formation of the urethral plate. Br J Plast Surg2004; 57: 112. Google Scholar
    • 10 : Cell lineage analysis demonstrates an endodermal origin of the distal urethra and perineum. Dev Biol2008; 318: 143. Google Scholar
    • 11 : Sonic hedgehog controls growth of external genitalia by regulating cell cycle kinetics. Nat Commun2010; 1: 23. Google Scholar
    • 12 : Timing of androgen receptor disruption and estrogen exposure underlies a spectrum of congenital penile anomalies. Proc Natl Acad Sci U S A2015; 112: E7194. Google Scholar
    • 13 : Current understanding of hypospadias: relevance of animal models. Nat Rev Urol2015; 12: 271. Google Scholar
    • 14 : Canalization of the urethral plate precedes fusion of the urethral folds during male penile urethral development: the double zipper hypothesis. J Urol2015; 193: 1353. LinkGoogle Scholar
    • 15 : Proximal-distal sequence of development of the skeletal tissues in the penis of rat and the inductive effect of epithelium. J Embryol Exp Morphol1986; 92: 133. Google Scholar
    • 16 : Temporal and spatial dissection of Shh signaling in genital tubercle development. Development2009; 136: 3959. Google Scholar
    • 17 : Dosage-dependent hedgehog signals integrated with Wnt/beta-catenin signaling regulate external genitalia formation as an appendicular program. Development2009; 136: 3969. Google Scholar
    • 18 : Multiphasic and tissue-specific roles of sonic hedgehog in cloacal septation and external genitalia development. Development2009; 136: 3949. Google Scholar
    • 19 : Retinoid signaling in progenitors controls specification and regeneration of the urothelium. Dev Cell2013; 26: 469. Google Scholar
    • 20 : Evidence for an expansion-based temporal Shh gradient in specifying vertebrate digit identities. Cell2004; 118: 517. Google Scholar
    • 21 : The molecular and cellular basis of gonadal sex reversal in mice and humans. Wiley Interdiscip Rev Dev Biol2012; 1: 559. Google Scholar
    • 22 : Gene expression profiles in mouse urethral development. BJU Int2006; 98: 880. Google Scholar
    • 23 : Sox9 expression during gonadal development implies a conserved role for the gene in testis differentiation in mammals and birds. Nat Genet1996; 14: 62. Google Scholar
    • 24 : What a difference an X or Y makes: sex chromosomes, gene dose, and epigenetics in sexual differentiation. In: Sex and Gender Differences in Pharmacology: Handbook of Experimental Pharmacology. Edited by . Berlin: Springer-Verlag2012. chapt 3, p 68. Google Scholar
    • 25 : The FoxA factors in organogenesis and differentiation. Curr Opin Genet Dev2010; 20: 527. Google Scholar
    • 26 : Foxa1 and Foxa2 are required for formation of the intervertebral discs. PLoS One2013; 8: e55528. Google Scholar
    • 27 : Foxa1 and Foxa2 interact with the androgen receptor to regulate prostate and epididymal genes differentially. Ann N Y Acad Sci2005; 1061: 77. Google Scholar
    • 28 : Interplay of estrogen receptors and FOXA factors in the liver cancer. Mol Cell Endocrinol2015; 418: 334. Google Scholar
    • 29 : Distinct regulators of Shh transcription in the floor plate and notochord indicate separate origins for these tissues in the mouse node. Development2003; 130: 3891. Google Scholar
    • 30 : Claudin-1 and -2: novel integral membrane proteins localizing at tight junctions with no sequence similarity to occludin. J Cell Biol1998; 141: 1539. Google Scholar
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