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Updated: Mar 28, 2026

Isolation and Time-Lapse Imaging of Primary Mouse Embryonic Palatal Mesenchyme Cells to Analyze Collective Movement Attributes
Published on: February 13, 2021
Mapping cellular processes in the mesenchyme during palatal development in the absence of Tbx1 reveals complex
Lara J Brock1, Andrew D Economou1, Martyn T Cobourne1
1Department of Craniofacial Development and Stem Cell Biology, King's College London, London, UK.
Insights
The TBX1 gene is crucial for palate development. Its absence in mice leads to cleft palate due to altered cell proliferation, packing, and random cell orientation in developing palatal shelves.
Area of Science:
- Developmental Biology
- Genetics
- Craniofacial Development
Background:
- 22q11 deletion syndromes cause craniofacial malformations, notably cleft palate.
- TBX1 gene haploinsufficiency is implicated in these developmental anomalies.
- The cellular mechanisms underlying TBX1-related cleft palate are poorly understood.
Purpose of the Study:
- To investigate the cellular basis of cleft palate in the absence of TBX1.
- To analyze cell proliferation, packing, and orientation in developing palatal shelves.
- To understand the role of TBX1 in palatogenesis.
Main Methods:
- Analysis of palatal development in Tbx1-deficient mouse models.
- Application of novel image analysis tools to quantify cellular properties.
- Mapping of cell proliferation rates, cell packing, and cell orientation (nucleus-Golgi axis).
Main Results:
- Significantly lower cell proliferation in Tbx1(-/-) mutant palatal shelves by embryonic day 15.5.
- Subtle differences in cell packing, with lower density before elevation and higher density at E15.5 in mutants.
- Randomized cell orientation in Tbx1(-/-) mutant shelves compared to polarized orientation in wild-type embryos.
Conclusions:
- TBX1 deficiency disrupts normal palatal shelf development through altered cellular behaviors.
- Randomized cell orientation suggests impaired directed cell rearrangement is a key factor in cleft palate.
- Findings provide insights into TBX1 function and offer new methods for genotype-phenotype analysis.
Abstract:
The 22q11 deletion syndromes represent a spectrum of overlapping conditions including cardiac defects and craniofacial malformations. Amongst the craniofacial anomalies that are seen, cleft of the secondary palate is a common feature. Haploinsufficiency of TBX1 is believed to be a major contributor toward many of the developmental structural anomalies that occur in these syndromes, and targeted deletion of Tbx1 in the mouse reproduces many of these malformations, including cleft palate. However, the cellular basis of this defect is only poorly understood. Here, palatal development in the absence of Tbx1 has been analysed, focusing on cellular properties within the whole mesenchymal volume of the palatal shelves. Novel image analyses and data presentation tools were applied to quantify cell proliferation rates, including regions of elevated as well as reduced proliferation, and cell packing in the mesenchyme. Also, cell orientations (nucleus-Golgi axis) were mapped as a potential marker of directional cell movement. Proliferation differed only subtly between wild-type and mutant until embryonic day (E)15.5 when proliferation in the mutant was significantly lower. Tbx1(-/-) palatal shelves had slightly different cell packing than wild-type, somewhat lower before elevation and higher at E15.5 when the wild-type palate has elevated and fused. Cell orientation is biased towards the shelf distal edge in the mid-palate of wild-type embryos but is essentially random in the Tbx1(-/-) mutant shelves, suggesting that polarised processes such as directed cell rearrangement might be causal for the cleft phenotype. The implications of these findings in the context of further understanding Tbx1 function during palatogenesis and of these methods for the more general analysis of genotype-phenotype functional relationships are discussed.
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