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Updated: Jun 18, 2026

Neural Tube Closure in Mouse Whole Embryo Culture
Published on: October 21, 2011
Quantitative Analysis of Cell and Tissue Shape During Mouse Cranial Neural Tube Closure
Kristina A Borys1, Eric R Brooks1
1Department of Molecular Biomedical Sciences, College of Veterinary Medicine, North Carolina State University, Raleigh, NC, USA.
Abstract:
Neural tube closure is a critical process that transforms the neural plate, an open epithelial tissue, into the closed tube that serves as the structural basis of the central nervous system. Defects in this process are among the most common and severe developmental diseases in the human population, with failures in cranial closure accounting for approximately one-third of total defects. However, the cell and tissue mechanisms that drive cranial closure remain opaque relative to the better studied process of spinal closure, in large part due to the unique challenges in characterizing cranial tissues. Here, we present protocols for quantifying cell dynamics and tissue-level remodeling events that enable highly spatiotemporally resolved investigations of the causes of cranial closure defects in mouse embryos. These include brightfield morphometric approaches, fluorescent staining and confocal imaging, and quantitative pipelines to analyze these image-based datasets. At the conclusion of these approaches, users will be able to quantify several parameters of overall tissue shape in the cranial neural tissues and produce rich quantitative datasets about cell-level parameters, particularly apical cell area. These can be used to identify correlative and causative differences between mutants and control embryos. Given their flexibility, many of these approaches can be generalized to other tissue morphogenetic contexts. Key features • Provides flexible and quantitative pipelines for cell and tissue-scale morphometrics, which can be expanded to many morphogenetic problems. • Presents robust mounting and imaging methods for cranial tissues. • Allows assessing the role of cellular-scale remodeling events in deforming tissues during cranial closure and how these are changed in mutants.
Insights
Researchers developed new methods to study cranial neural tube closure in mouse embryos. These protocols quantify cell dynamics and tissue remodeling, aiding the investigation of birth defects.
Area of Science:
- Developmental biology
- Morphogenesis
- Neuroscience
Background:
- Neural tube closure is vital for central nervous system development.
- Defects in cranial closure cause severe human birth defects.
- Cranial closure mechanisms are poorly understood compared to spinal closure.
Purpose of the Study:
- To present protocols for quantifying cell dynamics and tissue remodeling during cranial neural tube closure.
- To enable spatiotemporally resolved investigations into the causes of cranial closure defects.
- To provide tools for analyzing cell and tissue-level morphometrics in mouse embryos.
Main Methods:
- Utilizing brightfield morphometrics, fluorescent staining, and confocal imaging.
- Developing quantitative pipelines for image-based dataset analysis.
- Focusing on quantifying apical cell area and overall tissue shape.
Main Results:
- Enabling quantification of cell dynamics and tissue remodeling events.
- Providing rich datasets on cell-level parameters like apical cell area.
- Facilitating identification of differences between mutant and control embryos.
Conclusions:
- The presented protocols offer flexible and quantitative pipelines for morphogenetic studies.
- Robust methods for cranial tissue mounting and imaging are established.
- The approaches allow assessment of cellular remodeling's role in tissue deformation during closure and in mutants.

