Computational Modeling and Simulation of Genital Tubercle Development

Hypospadias is a developmental defect of urethral tube closure that has a complex etiology involving genetic and environmental factors, including anti-androgenic and estrogenic disrupting chemicals; however, little is known about the morphoregulatory consequences of androgen/estrogen balance during genital tubercle (GT) development. Computer models that predictively model sexual dimorphism of the GT may provide a useful resource to translate chemical-target bipartite networks and their developmental consequences across the human-relevant chemical universe. Here, we describe a multicellular agent-based model of genital tubercle (GT) development that simulates urethrogenesis from the sexually-indifferent urethral plate stage to urethral tube closure. The prototype model, constructed in CompuCell3D, recapitulates key aspects of GT morphogenesis controlled by SHH, FGF10, and androgen pathways through modulation of stochastic cell behaviors, including differential adhesion, motility, proliferation, and apoptosis. Proper urethral tube closure in the model was shown to depend quantitatively on SHH- and FGF10-induced effects on mesenchymal proliferation and epithelial apoptosis—both ultimately linked to androgen signaling. In the absence of androgen, GT development was feminized and with partial androgen deficiency, the model resolved with incomplete urethral tube closure, thereby providing an in silico platform for probabilistic prediction of hypospadias risk across combinations of minor perturbations to the GT system at various stages of embryonic development.

This dataset is associated with the following publication: Leung , M.C.K., S. Hutson, A. Seifert, R. Spencer, and T. Knudsen. (REPRODUCTIVE TOXICOLOGY) Computational Modeling and Simulation of Genital Tubercle Development. REPRODUCTIVE TOXICOLOGY. Elsevier Science Ltd, New York, NY, USA, 1-11, (2016).

Data and Resources

Field Value
accessLevel public
bureauCode {020:00}
catalog_conformsTo https://project-open-data.cio.gov/v1.1/schema
identifier A-dncw-339
license https://pasteur.epa.gov/license/sciencehub-license.html
modified 2016-09-01
programCode {020:095}
publisher U.S. EPA Office of Research and Development (ORD)
publisher_hierarchy U.S. Government > U.S. Environmental Protection Agency > U.S. EPA Office of Research and Development (ORD)
references {https://doi.org/10.1016/j.reprotox.2016.05.005}
resource-type Dataset
source_datajson_identifier true
source_hash 7b20e056b95d017ea56c7f0737d9cb266e774161
source_schema_version 1.1
Groups
  • AmeriGEOSS
  • National Provider
  • North America
Tags
  • AmeriGEO
  • AmeriGEOSS
  • CKAN
  • GEO
  • GEOSS
  • National
  • North America
  • United States
  • childrens-environmental-health
  • reproductive-development
  • reproductive-effects
  • tipping-points
  • virtual-embryo
  • virtual-liver
  • virtual-tissues
isopen False
license_id other-license-specified
license_title other-license-specified
maintainer Thomas Knudsen
maintainer_email knudsen.thomas@epa.gov
metadata_created 2025-09-23T17:45:04.841225
metadata_modified 2025-09-23T17:45:04.841231
notes Hypospadias is a developmental defect of urethral tube closure that has a complex etiology involving genetic and environmental factors, including anti-androgenic and estrogenic disrupting chemicals; however, little is known about the morphoregulatory consequences of androgen/estrogen balance during genital tubercle (GT) development. Computer models that predictively model sexual dimorphism of the GT may provide a useful resource to translate chemical-target bipartite networks and their developmental consequences across the human-relevant chemical universe. Here, we describe a multicellular agent-based model of genital tubercle (GT) development that simulates urethrogenesis from the sexually-indifferent urethral plate stage to urethral tube closure. The prototype model, constructed in CompuCell3D, recapitulates key aspects of GT morphogenesis controlled by SHH, FGF10, and androgen pathways through modulation of stochastic cell behaviors, including differential adhesion, motility, proliferation, and apoptosis. Proper urethral tube closure in the model was shown to depend quantitatively on SHH- and FGF10-induced effects on mesenchymal proliferation and epithelial apoptosis—both ultimately linked to androgen signaling. In the absence of androgen, GT development was feminized and with partial androgen deficiency, the model resolved with incomplete urethral tube closure, thereby providing an in silico platform for probabilistic prediction of hypospadias risk across combinations of minor perturbations to the GT system at various stages of embryonic development. This dataset is associated with the following publication: Leung , M.C.K., S. Hutson, A. Seifert, R. Spencer, and T. Knudsen. (REPRODUCTIVE TOXICOLOGY) Computational Modeling and Simulation of Genital Tubercle Development. REPRODUCTIVE TOXICOLOGY. Elsevier Science Ltd, New York, NY, USA, 1-11, (2016).
num_resources 1
num_tags 15
title Computational Modeling and Simulation of Genital Tubercle Development