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Kamioka, H.

Publications and source records attributed to Kamioka, H..

2 recordsLinked to original sources

Filamin A mediates embryonical palatal fusion by linking mechanotransduction with β-Catenin/Smad2

To decipher potential mechanisms underlying cleft palate (CP), we used advanced bioinformatic integrated with literature mining and genome-wide association study (GWAS). Re-analysis of RNA-seq data (GSE45568, GSE185279) combined with literature mining highlighted the roles of Filamin A (Flna) and Epithelial-Mesenchymal Transition (EMT) in palatal development. Immunofluorescence of in vivo palatal shelves showed increased Flna in medial edge epithelial (MEE) cells and EMT cells located in an epithelial triangle. Inhibition of TGF-{beta} or RhoA and mechanical stimuli impacted Flna expression in ex vivo cultured palatal shelves. Re-analysis of scRNA-seq data (GSE155928) highlighted a correlation between Flna and Ctnnb1 in EMT cells. Flna knockdown affected {beta}-catenin/Smad2 expression in cultured palatal shelves and HaCaT cells. Epithelium-specific knockout of Flna delayed palatal fusion in female mice but not males. Mendelian randomization analysis suggested that parental habitual physical activity (HPA) was causally associated with lower risk of CP in their offspring. Together, these findings suggested that parental HPA could benefit their offsprings palatal development through Flna by linking mechanotransduction with the Wnt/TGF-{beta}/Smad signaling pathways during palatal fusion.

developmental biology↗

Effect of mechanical stretching stimulation on maturation of human iPS cell-derived cardiomyocytes co-cultured with human gingival fibroblasts

In the realm of regenerative medicine, despite the various techniques available for inducing the differentiation of induced pluripotent stem (iPS) cells into cardiomyocytes, there remains a need to enhance the efficiency of this induction process. This study aimed to improve the differentiation efficiency of iPS-derived cardiomyocytes (iPS-CMs) by incorporating mechanical stretching. Human iPS cells were co-cultured with human gingival fibroblasts (HGF) on a polydimethylsiloxane (PDMS) stretch chamber, where mechanical stretching stimulation was applied during the induction of cardiomyocyte differentiation. The maturation of iPS-CMs was assessed using qRT-PCR, immunofluorescence staining, transmission electron microscopy, and contractility comparisons. Results indicated significantly elevated gene expression levels of cardiomyocyte markers (cTnT) and the mesodermal marker (Nkx2.5) in the stretch group compared to the control group. Fluorescent immunocytochemical staining revealed the presence of cardiac marker proteins (cTnT and HCN4) in both groups, with higher protein expression in the stretch group. Additionally, sarcomere length in the stretch group was notably larger than in the control group. A significant increase in the contractility of iPS-CMs was observed in the stretch group. These findings demonstrate that mechanical stretching stimulation enhances the maturity and differentiation efficiency of iPS-CMs co-cultured with fibroblasts.

cell biology↗