Said Raed, Mortazavi Helyasadat, Cooper David, Ovens Katie, McQuillan Ian, Papagerakis Silvana, Papagerakis Petros
College of Dentistry, University of Saskatchewan, Saskatoon, SK, Canada.
Department of Anatomy, Physiology and Pharmacology, College of Medicine, University of Saskatchewan, Saskatoon, SK, Canada.
Front Physiol. 2023 Mar 1;14:1100714. doi: 10.3389/fphys.2023.1100714. eCollection 2023.
The intracellular Ca2+ sensor stromal interaction molecule 1 (STIM1) is thought to play a critical role in enamel development, as its mutations cause Amelogenesis Imperfecta (AI). We recently established an ameloblast-specific (AmelX-iCre) Stim1 conditional deletion mouse model to investigate the role of STIM1 in controlling ameloblast function and differentiation (Stim1 cKO). Our pilot data (Said et al., J. Dent. Res., 2019, 98, 1002-1010) support our hypothesis for a broad role of Stim1 in amelogenesis. This paper aims to provide an in-depth characterization of the enamel phenotype observed in our Stim1 cKO model. We crossed AmelX-iCre mice with Stim1-floxed animals to develop ameloblast-specific Stim1 cKO mice. Scanning electron microscopy, energy dispersive spectroscopy, and micro- CT were used to study the enamel phenotype. RNAseq and RT-qPCR were utilized to evaluate changes in the gene expression of several key ameloblast genes. Immunohistochemistry was used to detect the amelogenin, matrix metalloprotease 20 and kallikrein 4 proteins in ameloblasts. Stim1 cKO animals exhibited a hypomineralized AI phenotype, with reduced enamel volume, diminished mineral density, and lower calcium content. The mutant enamel phenotype was more severe in older Stim1 cKO mice compared to younger ones and changes in enamel volume and mineral content were more pronounced in incisors compared to molars. Exploratory RNAseq analysis of incisors' ameloblasts suggested that ablation of Stim1 altered the expression levels of several genes encoding enamel matrix proteins which were confirmed by subsequent RT-qPCR. On the other hand, RT-qPCR analysis of molars' ameloblasts showed non-significant differences in the expression levels of enamel matrix genes between control and -deficient cells. Moreover, gene expression analysis of incisors' and molars' ameloblasts showed that ablation caused changes in the expression levels of several genes associated with calcium transport and mitochondrial kinetics. Collectively, these findings suggest that the loss of in ameloblasts may impact enamel mineralization and ameloblast gene expression.
细胞内钙离子传感器基质相互作用分子1(STIM1)被认为在釉质发育中起关键作用,因为其突变会导致釉质发育不全(AI)。我们最近建立了一种成釉细胞特异性(AmelX-iCre)Stim1条件性敲除小鼠模型,以研究STIM1在控制成釉细胞功能和分化中的作用(Stim1 cKO)。我们的初步数据(Said等人,《牙科研究杂志》,2019年,98卷,1002 - 1010页)支持我们关于Stim1在釉质形成中具有广泛作用的假设。本文旨在深入描述在我们的Stim1 cKO模型中观察到的釉质表型。我们将AmelX-iCre小鼠与Stim1基因 floxed动物杂交,以培育成釉细胞特异性Stim1 cKO小鼠。使用扫描电子显微镜、能量色散光谱和微型计算机断层扫描来研究釉质表型。利用RNA测序和逆转录定量聚合酶链反应来评估几个关键成釉细胞基因的表达变化。免疫组织化学用于检测成釉细胞中的釉原蛋白、基质金属蛋白酶20和激肽释放酶4蛋白。Stim1 cKO动物表现出矿化不足的AI表型,釉质体积减小、矿物质密度降低且钙含量较低。与年轻的Stim1 cKO小鼠相比,老年小鼠的突变釉质表型更严重,并且与磨牙相比,切牙的釉质体积和矿物质含量变化更明显。对切牙成釉细胞的探索性RNA测序分析表明,Stim1的缺失改变了几个编码釉质基质蛋白的基因的表达水平,随后的逆转录定量聚合酶链反应证实了这一点。另一方面,对磨牙成釉细胞的逆转录定量聚合酶链反应分析显示,对照细胞和缺陷细胞之间釉质基质基因的表达水平无显著差异。此外,对切牙和磨牙成釉细胞的基因表达分析表明,缺失导致了几个与钙转运和线粒体动力学相关的基因的表达水平发生变化。总的来说,这些发现表明成釉细胞中Stim1的缺失可能会影响釉质矿化和成釉细胞基因表达。