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Mizukoshi, T.

Publications and source records attributed to Mizukoshi, T..

2 recordsLinked to original sources

Induction of NASH and vacuolar structures in the Nwd1-/- mouse liver via SERCA2-dependent endoplasmic reticulum stress

The endoplasmic reticulum (ER) stores Ca2+ and plays crucial roles in protein folding, lipid transfer, and its perturbations trigger an ER stress. In the liver, chronic ER stress is involved in the pathogenesis of nonalcoholic fatty liver disease (NAFLD) and nonalcoholic steatohepatitis (NASH). Previous studies revealed that dysfunction of sarco/endoplasmic reticulum calcium ATPase (SERCA2), a key regulator of Ca2+ transport from the cytosol to the ER, is associated with the induction of ER stress and lipid droplet formation. We previously identified NACHT and WD repeat domain-containing protein 1 (Nwd1), which is localized in the ER and mitochondria. However, the physiological significance of Nwd1 outside the central nervous system remains unclear. In this study, we revealed that Nwd1 knockout mice exhibited pathological manifestations comparable to NASH. Nwd1 interacts with SERCA2 near ER membranes. Nwd1-/- livers exhibited reduced SERCA2 ATPase activity and a smaller Ca2+ pool in the ER, leading to an exacerbated state of ER stress. These findings highlight the importance of SERCA2 activity mediated by Nwd1 in the pathogenesis of NASH. HighlightsO_LINwd1-/- mice exhibited NASH-like liver steatosis. C_LIO_LIElevated ER stress, fibrosis, and pyroptosis were observed in Nwd1-/- livers. C_LIO_LINwd1 interacts with SERCA2, an ER membrane Ca2+ pump. C_LIO_LINwd1-/- livers exhibited reduced SERCA2 activity and smaller Ca2+ pools in the ER. C_LI

molecular biology↗

Inka2, a novel Pak4 inhibitor, regulates actin dynamics in dendritic spine development

The actin filament is a fundamental part of the cytoskeleton defining cell morphology and regulating various physiological processes, including filopodia formation and dendritic spinogenesis of neurons. Serine/threonine-protein kinase Pak4, an essential effector, links Rho GTPases to control actin polymerization. Previously, we identified the Inka2 gene, a novel mammalian protein exhibiting sequence similarity to Inka1, which serves as a possible inhibitor for Pak4. Although Inka2 is dominantly expressed in the nervous system and involved in focal-adhesion dynamics, its molecular role remains unclear. Here, we found that Inka2-iBox directly binds to Pak4 catalytic domain to suppress actin polymerization. Inka2 promoted actin depolymerization and inhibited the formation of cellular protrusion caused by Pak4 activation. We further generated the conditional knockout mice of the Inka2 gene. The beta-galactosidase reporter indicated the preferential Inka2 expression in the dorsal forebrain neurons. Cortical pyramidal neurons of Inka2-/- mice exhibited decreased density and aberrant morphology of dendritic spines with marked activation/phosphorylation of downstream molecules of Pak4 signal cascade, including LIMK and cofilin. These results uncovered the unexpected function of endogenous Pak4 inhibitor in neurons. Unlike Inka1, Inka2 is a critical mediator for actin reorganization required for dendritic spine development.

neuroscience↗