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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.
Abstract:
In recent years, the development and implementation of animal-free approaches to chemical and pharmaceutical hazard and risk assessment has taken off. Alternative approaches are being developed starting from the perspective of human biology and physiology. Neural tube closure is a vital step that occurs early in human development. Correct closure of the neural tube depends on a complex interplay between proteins along a number of protein concentration gradients. The sensitivity of neural tube closure to chemical disturbance of signalling pathways such as the retinoid pathway, is well known. To map the pathways underlying neural tube closure, literature data on the molecular regulation of neural tube closure were collected. As the process of neural tube closure is highly conserved in vertebrates, the extensive literature available for the mouse was used whilst considering its relevance for humans. Thus, important cell compartments, regulatory pathways, and protein interactions essential for neural tube closure under physiological circumstances were identified and mapped. An understanding of aberrant processes leading to neural tube defects (NTDs) requires detailed maps of neural tube embryology, including the complex genetic signals and responses underlying critical cellular dynamical and biomechanical processes. The retinoid signaling pathway serves as a case study for this ontology because of well-defined crosstalk with the genetic control of neural tube patterning and morphogenesis. It is a known target for mechanistically-diverse chemical structures that disrupt neural tube closure The data presented in this manuscript will set the stage for constructing mathematical models and computer simulation of neural tube closure for human-relevant AOPs and predictive toxicology.
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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