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Updated: May 11, 2026

Quantification of Orofacial Phenotypes in Xenopus
Published on: November 6, 2014
Conditional deletion of the human ortholog gene Dicer1 in Pax2-Cre expression domain impairs orofacial development
Laura C Barritt1, Joseph M Miller, Laura R Scheetz
1Department of Oral Biology, Creighton University School of Dentistry, Omaha, NE, USA.
Background:
Orofacial clefts are common worldwide and result from insufficient growth and/or fusion during the genesis of the derivatives of the first pharyngeal arch and the frontonasal prominence. Recent studies in mice carrying conditional and tissue-specific deletions of the human ortholog Dicer1, an RNAse III family member, have highlighted its importance in cell survival, differentiation, proliferation, and morphogenesis. Nevertheless, information regarding Dicer1 and its dependent microRNAs (miRNAs) in mammalian palatogenesis and orofacial development is limited.
Aims:
To describe the craniofacial phenotype, gain insight into potential mechanisms underlying the orofacial defects in the Pax2-Cre/Dicer1 CKO mouse, and shed light on the role of Dicer1 in mammalian palatogenesis.
Materials And Methods:
Histological and molecular assays of wild type (WT) and Pax2-Cre/Dicer1(loxP/loxP) (Dicer1 CKO) mice dissected tissues have been performed to characterize and analyze the orofacial dysmorphism in Pax2-Cre/Dicer1(loxP/loxP) mouse.
Results:
Dicer1 CKO mice exhibit late embryonic lethality and severe craniofacial dysmorphism, including a secondary palatal cleft. Further analysis suggest that Dicer1 deletion neither impacts primary palatal development nor the initial stages of secondary palatal formation. Instead, Dicer1 is implicated in growth, differentiation, mineralization, and survival of cells in the lateral palatal shelves. Histological and molecular analysis demonstrates that secondary palatal development becomes morphologically arrested prior to mineralization around E13.5 with a significant increase in the expression levels of apoptotic markers (P < 0.01).
Conclusions:
Pax2-Cre-mediated Dicer1 deletion disrupts lateral palatal outgrowth and bone mineralization during palatal shelf development, therefore providing a mammalian model for investigating the role of miRNA-mediated signaling pathways during palatogenesis.
Insights
Dicer1 deletion in mice causes severe craniofacial defects and secondary palatal clefts by impacting cell growth and survival during palatogenesis. This study models orofacial clefts and highlights miRNA roles.
Area of Science:
- Developmental Biology
- Genetics
- Molecular Biology
Background:
- Orofacial clefts are common congenital anomalies affecting facial and oral structure development.
- Dicer1 is crucial for cell survival, differentiation, proliferation, and morphogenesis, but its role in palatogenesis is not well understood.
- MicroRNAs (miRNAs) regulated by Dicer1 are implicated in various developmental processes.
Purpose of the Study:
- To characterize the craniofacial phenotype of Pax2-Cre/Dicer1 CKO mice.
- To investigate the mechanisms underlying orofacial defects in these mice.
- To elucidate the role of Dicer1 in mammalian palatogenesis.
Main Methods:
- Generation of Pax2-Cre/Dicer1(loxP/loxP) conditional knockout (CKO) mice.
- Histological and molecular analyses of craniofacial tissues from WT and Dicer1 CKO embryos.
- Assessment of cell survival, differentiation, and mineralization in palatal shelves.
Main Results:
- Dicer1 CKO mice display late embryonic lethality and severe craniofacial dysmorphism, including secondary palatal clefts.
- Dicer1 deletion primarily affects secondary palatal shelf development, not primary palate formation.
- Impaired cell growth, differentiation, mineralization, and survival in lateral palatal shelves were observed, with increased apoptosis.
- Secondary palatal development arrested morphologically around E13.5.
Conclusions:
- Pax2-Cre-mediated Dicer1 deletion disrupts lateral palatal outgrowth and bone mineralization.
- This mouse model is valuable for studying miRNA-mediated signaling in palatogenesis.
- Dicer1 is essential for normal palatal shelf development and mineralization.
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