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Store-operated Ca2+ entry controls ameloblast cell function and enamel development
Miriam Eckstein, Martin Vaeth, Cinzia Fornai, Manikandan Vinu, Timothy G. Bromage, Meerim K. Nurbaeva, Jessica L. Sorge, Paulo G. Coelho, Youssef Idaghdour, Stefan Feske, Rodrigo S. Lacruz
Miriam Eckstein, Martin Vaeth, Cinzia Fornai, Manikandan Vinu, Timothy G. Bromage, Meerim K. Nurbaeva, Jessica L. Sorge, Paulo G. Coelho, Youssef Idaghdour, Stefan Feske, Rodrigo S. Lacruz
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Research Article Bone biology Cell biology

Store-operated Ca2+ entry controls ameloblast cell function and enamel development

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Abstract

Loss-of-function mutations in stromal interaction molecule 1 (STIM1) impair the activation of Ca2+ release–activated Ca2+ (CRAC) channels and store-operated Ca2+ entry (SOCE), resulting in a disease syndrome called CRAC channelopathy that is characterized by severe dental enamel defects. The cause of these enamel defects has remained unclear given a lack of animal models. We generated Stim1/2K14cre mice to delete STIM1 and its homolog STIM2 in enamel cells. These mice showed impaired SOCE in enamel cells. Enamel in Stim1/2K14cre mice was hypomineralized with decreased Ca content, mechanically weak, and thinner. The morphology of SOCE-deficient ameloblasts was altered, showing loss of the typical ruffled border, resulting in mislocalized mitochondria. Global gene expression analysis of SOCE-deficient ameloblasts revealed strong dysregulation of several pathways. ER stress genes associated with the unfolded protein response were increased in Stim1/2-deficient cells, whereas the expression of components of the glutathione system were decreased. Consistent with increased oxidative stress, we found increased ROS production, decreased mitochondrial function, and abnormal mitochondrial morphology in ameloblasts of Stim1/2K14cre mice. Collectively, these data show that loss of SOCE in enamel cells has substantial detrimental effects on gene expression, cell function, and the mineralization of dental enamel.

Authors

Miriam Eckstein, Martin Vaeth, Cinzia Fornai, Manikandan Vinu, Timothy G. Bromage, Meerim K. Nurbaeva, Jessica L. Sorge, Paulo G. Coelho, Youssef Idaghdour, Stefan Feske, Rodrigo S. Lacruz

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Figure 7

Abnormal mitochondrial morphology and kinetics in store-operated Ca2+ entry–deficient ameloblasts.

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Abnormal mitochondrial morphology and kinetics in store-operated Ca2+ en...
(A) Ameloblast cells in WT and Stim1/2K14cre mice show a similar number of mitochondria per section (n = 15 cells). (B) Increased percentage of abnormal mitochondria in Stim1/2K14cre ameloblasts. (C) Transmission electron microscopy analyses of the abnormal mitochondrial phenotype in Stim1/2K14cre ameloblasts showing a lack of well-defined cristae, presence of nonelectron dense white material (white arrowheads), and multilayered mitochondria (bottom right). The lack of tonofilaments (TF) (black arrowhead) in the mutant cells is also apparent. Scale bar: 200 nm (bottom right); 500 nm (top and bottom left). (D) Increased mitochondrial ROS levels detected by MitoSOX were identified in enamel cells from Stim1/2K14cre mice. Data represent mean (± SEM) of n = 4 mice per group. Normalization was done using CellTrace (**P < 0.005 by 2-tailed unpaired Student’s t test). (E) Mitochondrial membrane potential measured using TMRM showing a significant decrease in Stim1/2K14cre enamel cells. Normalization was done using CellTrace. Data represent mean (± SEM) of n = 7 mice per group (*P < 0.5, 2-tailed unpaired Student’s t test).

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