An ontology for developmental processes and toxicities of neural tube closure

Harm J Heusinkveld1, Yvonne C M Staal1, Nancy C Baker2

  • 1Centre for Health Protection, National Institute for Public Health and the Environment (RIVM), Bilthoven, the Netherlands.

Insights

Animal-free toxicology research maps neural tube closure pathways. This study identifies key molecular interactions for understanding and predicting chemical impacts on human development, advancing predictive toxicology.

Area of Science:

  • Developmental Biology
  • Toxicology
  • Computational Biology

Background:

  • Animal-free approaches are advancing chemical and pharmaceutical risk assessment.
  • Neural tube closure is a critical early human developmental process sensitive to chemical disruption.
  • Understanding molecular pathways is essential for predicting teratogenic effects.

Purpose of the Study:

  • To map the molecular pathways regulating neural tube closure using existing literature.
  • To establish a foundation for computational modeling of neural tube closure.
  • To support the development of human-relevant Adverse Outcome Pathways (AOPs) and predictive toxicology.

Main Methods:

  • Literature review of molecular regulation in neural tube closure, primarily using mouse data for human relevance.
  • Identification of key cell compartments, regulatory pathways, and protein interactions.
  • Focus on the retinoid signaling pathway as a case study due to its known role and chemical interactions.

Main Results:

  • Identified and mapped essential cell compartments, regulatory pathways, and protein interactions for neural tube closure.
  • Detailed the genetic signals and cellular processes underlying normal and aberrant neural tube closure.
  • Established the retinoid signaling pathway's role in neural tube patterning and morphogenesis.

Conclusions:

  • The mapped pathways provide a basis for mathematical modeling and computer simulation of neural tube closure.
  • This work supports the development of human-relevant AOPs for predictive toxicology.
  • Advances the field of animal-free hazard and risk assessment for developmental processes.

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