Background: Cleidocranial dysplasia (CCD) is an autosomal dominant disease that affects the skeletal system. Common symptoms of CCD include hypoplasia or aplasia of the clavicles, delayed or even absent closure of the fontanels, midface hypoplasia, short stature, and delayed eruption of permanent and supernumerary teeth. Previous studies reported a connection between CCD and the haploinsufficiency of runt-related transcription factor 2 (RUNX2). Here, we report a sporadic Chinese case presenting typical symptoms of CCD.
Methods: We made genetic testing on this sporadic Chinese case and identified a novel RUNX2 frameshift mutation: c.1111dupT. In situ immunofluorescence microscopy and osteocalcin promoter luciferase assay were performed to compare the functions of the RUNX2 mutation with those of wild-type RUNX2.
Results: RUNX2 mutation was observed in the perinuclear region, cytoplasm, and nuclei. In contrast, wild-type RUNX2 was confined in the nuclei, which indicated that the subcellular compartmentalization of RUNX2 mutation was partially perturbed. The transactivation function on osteocalcin promoter of the RUNX2 mutation was obviously abrogated.
Conclusions: We identified a sporadic CCD patient carrying a novel insertion/frameshift mutation of RUNX2. This finding expanded our understanding of CCD-related phenotypes.
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http://dx.doi.org/10.4103/0366-6999.197996 | DOI Listing |
Oral Dis
December 2024
Department of Oral Health Sciences-Orthodontics, KU Leuven and Service of Dentistry, University Hospitals Leuven, Leuven, Belgium.
Introduction: To systematically review the available literature reporting on genetic mutations leading to dento-maxillofacial malformations in mice.
Materials And Methods: An electronic search was performed across Embase, PubMed, Web of Science, and Scopus databases up to May 2024, targeting all in vivo studies on gene mutations causing dento-maxillofacial deformities in mice. Studies reporting oral clefts were excluded.
Int J Mol Sci
November 2024
Center of Marine Sciences (CCMAR), University of Algarve, 8005-139 Faro, Portugal.
Matrix Gla protein (MGP) is a vitamin K-dependent γ-carboxylated protein that was initially identified as a physiological inhibitor of ectopic calcification, primarily affecting cartilage and the vascular system. Mutations in the gene were found to be responsible for the Keutel syndrome, a condition characterized by abnormal calcifications in the cartilage, lungs, brain, and vascular system. has been shown to be dysregulated in several tumors, including cervical, ovarian, urogenital, and breast cancers.
View Article and Find Full Text PDFJ Transl Med
December 2024
Department of Physiology, Center of Excellence in Genomics and Precision Dentistry, Faculty of Dentistry, Chulalongkorn University, Bangkok, 10330, Thailand.
Cleidocranial Dysplasia (CCD) is a rare genetic disorder characterized by skeletal abnormalities and dental anomalies, primarily caused by variants in the RUNX2 gene. Understanding the spectrum of RUNX2 variants and their effects on CCD phenotypes is crucial for accurate diagnosis and management strategies. This systematic review aimed to comprehensively analyze the genotypic and phenotypic spectra of RUNX2 variants in CCD patients, assess their distribution across functional regions, and investigate genotype-phenotype correlations.
View Article and Find Full Text PDFHeliyon
November 2024
Department of Orthodontics, School of Stomatology, Beijing Stomatological Hospital, Capital Medical University, No.4 Tiantan Xili, Dong cheng District, Beijing, 100050, China.
Pathogenic genes in most patients with cleidocranial dysplasia have been confirmed to be runt-related transcription factor 2 (), which controls mutations in specific osteoblast transcription factors and affects skull ossification and suture adhesion. This study aimed to explore the role of mutations. Here, we report a rare case of a splice site mutation in a Chinese population with typical cleidocranial dysplasia symptoms, cranial suture insufficiency, clavicle dysplasia, and dental anomalies.
View Article and Find Full Text PDFNat Commun
November 2024
Shanghai Engineering Research Center of Tooth Restoration and Regeneration & Tongji Research Institute of Stomatology, Shanghai, 200072, China.
The initial fine-tuning processes are crucial for successful bone regeneration, as they guide skeletal stem cells through progenitor differentiation toward osteo- or chondrogenic fate. While fate determination processes are well-documented, the mechanisms preceding progenitor commitment remain poorly understood. Here, we identified a transcription factor, Zfp260, as pivotal for stem cell maturation into progenitors and directing osteogenic differentiation.
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