1.Dental pulp stem cells as a promising model to study imprinting diseases.
Eloïse GIABICANI ; Aurélie PHAM ; Céline SÉLÉNOU ; Marie-Laure SOBRIER ; Caroline ANDRIQUE ; Julie LESIEUR ; Agnès LINGLART ; Anne POLIARD ; Catherine CHAUSSAIN ; Irène NETCHINE
International Journal of Oral Science 2022;14(1):19-19
Parental imprinting is an epigenetic process leading to monoallelic expression of certain genes depending on their parental origin. Imprinting diseases are characterized by growth and metabolic issues starting from birth to adulthood. They are mainly due to methylation defects in imprinting control region that drive the abnormal expression of imprinted genes. We currently lack relevant animal or cellular models to unravel the pathophysiology of growth failure in these diseases. We aimed to characterize the methylation of imprinting regions in dental pulp stem cells and during their differentiation in osteogenic cells (involved in growth regulation) to assess the interest of this cells in modeling imprinting diseases. We collected dental pulp stem cells from five controls and four patients (three with Silver-Russell syndrome and one with Beckwith-Wiedemann syndrome). Methylation analysis of imprinting control regions involved in these syndromes showed a normal profile in controls and the imprinting defect in patients. These results were maintained in dental pulp stem cells cultured under osteogenic conditions. Furthermore, we confirmed the same pattern in six other loci involved in imprinting diseases in humans. We also confirmed monoallelic expression of H19 (an imprinted gene) in controls and its biallelic expression in one patient. Extensive imprinting control regions methylation analysis shows the strong potential of dental pulp stem cells in modeling imprinting diseases, in which imprinting regions are preserved in culture and during osteogenic differentiation. This will allow to perform in vitro functional and therapeutic tests in cells derived from dental pulp stem cells and generate other cell-types.
Adult
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Animals
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DNA Methylation
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Dental Pulp
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Genomic Imprinting
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Humans
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Osteogenesis/genetics*
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Stem Cells
2.Dental impact of anti-fibroblast growth factor 23 therapy in X-linked hypophosphatemia.
Elis J LIRA DOS SANTOS ; Kenta NAKAJIMA ; Julien PO ; Ayako HANAI ; Volha ZHUKOUSKAYA ; Martin BIOSSE DUPLAN ; Agnès LINGLART ; Takashi SHIMADA ; Catherine CHAUSSAIN ; Claire BARDET
International Journal of Oral Science 2023;15(1):53-53
Elevated fibroblast growth factor 23 (FGF23) in X-linked hypophosphatemia (XLH) results in rickets and phosphate wasting, manifesting by severe bone and dental abnormalities. Burosumab, a FGF23-neutralizing antibody, an alternative to conventional treatment (phosphorus and active vitamin D analogs), showed significant improvement in the long bone phenotype. Here, we examined whether FGF23 antibody (FGF23-mAb) also improved the dentoalveolar features associated with XLH. Four-week-old male Hyp mice were injected weekly with 4 or 16 mg·kg-1 of FGF23-mAb for 2 months and compared to wild-type (WT) and vehicle (PBS) treated Hyp mice (n = 3-7 mice). Micro-CT analyses showed that both doses of FGF23-mAb restored dentin/cementum volume and corrected the enlarged pulp volume in Hyp mice, the higher concentration resulting in a rescue similar to WT levels. FGF23-mAb treatment also improved alveolar bone volume fraction and mineral density compared to vehicle-treated ones. Histology revealed improved mineralization of the dentoalveolar tissues, with a decreased amount of osteoid, predentin and cementoid. Better periodontal ligament attachment was also observed, evidenced by restoration of the acellular cementum. These preclinical data were consistent with the retrospective analysis of two patients with XLH showing that burosumab treatment improved oral features. Taken together, our data show that the dentoalveolar tissues are greatly improved by FGF23-mAb treatment, heralding its benefit in clinics for dental abnormalities.
Humans
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Male
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Mice
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Animals
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Familial Hypophosphatemic Rickets/pathology*
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Fibroblast Growth Factor-23
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Retrospective Studies
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Fibroblast Growth Factors/metabolism*
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Bone and Bones/metabolism*
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Phosphates/therapeutic use*