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Updated: Jul 2, 2026

Analysis of Craniomaxillofacial Malformations in Mice Using Three-dimensional Microcomputed Tomography
Published on: January 17, 2025
Differential impact of MSX1 and MSX2 homeogenes on mouse maxillofacial skeleton
Ariane Berdal1, Muriel Molla, Dominique Hotton
1Cordeliers Research Centre INSERM UMRS872, Universities Paris 5, 6 and 7, Paris, France. biol_odonto_fr@yahoo.com
Abstract:
Craniofacial development involves a large number of genes involved in a complex time- and site-specific cascade of cellular crosstalk. Msx homeobox genes are expressed very early and have been implicated in multiple signaling processes. However, little is known about their role in postnatal growth and at adult stages. The aim of this study was to compare the patterns of expression of Msx1 and Msx2 during postnatal growth and homeostasis. We used transgenic mice with a knock-in for Msx1 or Msx2. Msx expression was analyzed on whole-mount experiments on heterozygous mice. The results were confirmed by quantitative RT-PCR on mandible and tibia samples. Steady-state levels of Msx2 mRNA were determined at 2 ages, at postnatal day 14 and after 3 months, corresponding to phases of growth and homeostasis, respectively. Consistent with previous findings, the expression profiles of Msx1 and Msx2 overlapped during embryonic development. By contrast, marked differences in the patterns of expression of these 2 genes were observed during the growth phase. Msx1 was found to be expressed in basal bone during postnatal growth. Msx1 was not expressed in alveolar bone, whereas Msx2 was strongly and continually expressed. Msx2 was present in all growth plate cartilages, as previously shown for Msx1. Autopods displayed different patterns of expression during the mouse life cycle, with continuous expression of Msx1 only. Interestingly, both secretory cells (osteoblasts) and cells involved in bone resorption (osteoclasts) were found to be involved in Msx molecular pathways, their precise involvement depending on the anatomical site. The observed patterns correspond to specific sites during growth and constitute landmarks in our understanding of growth-related oral facial dysmorphologies.
Insights
Msx1 and Msx2 genes show distinct expression patterns during postnatal mouse growth, differing from embryonic development. These differences in Msx gene expression are crucial for understanding craniofacial growth and related disorders.
Area of Science:
- Developmental Biology
- Genetics
- Craniofacial Development
Background:
- Craniofacial development relies on complex gene interactions.
- Msx homeobox genes are early regulators, but their postnatal roles are unclear.
- Understanding Msx gene expression is vital for craniofacial growth research.
Purpose of the Study:
- To compare Msx1 and Msx2 expression during postnatal growth and homeostasis.
- To investigate the role of Msx genes in bone development and cellular processes.
Main Methods:
- Utilized transgenic mice with Msx1 or Msx2 knock-ins.
- Analyzed Msx expression via whole-mount experiments and quantitative RT-PCR.
- Examined gene expression at postnatal day 14 (growth) and 3 months (homeostasis).
Main Results:
- Msx1 and Msx2 expression overlapped during embryonic development but diverged postnatally.
- Msx1 expressed in basal bone, Msx2 in alveolar bone during growth.
- Both Msx1 and Msx2 found in growth plate cartilages; Msx1 uniquely in autopods.
- Msx pathways involve osteoblasts and osteoclasts, site-dependently.
Conclusions:
- Msx1 and Msx2 exhibit distinct postnatal expression patterns.
- These patterns are site-specific and crucial for craniofacial growth.
- Findings provide insights into growth-related craniofacial dysmorphologies.
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