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Biology subjects

Shiozaki, Y.

Publications and source records attributed to Shiozaki, Y..

2 recordsLinked to original sources

Mammalian Cells Integrate Endoplasmic Reticulum and Nuclear Envelope signals to time mitotic entry

Accurate cell division requires coordination between organelle organization and cell-cycle progression, but how architectural and functional cues from the endoplasmic reticulum (ER) and nuclear envelope (NE)--a continuous membrane network--interface with mitotic control remains unclear. Here, we demonstrate that mammalian cells integrate ER/NE structure and functions to regulate the onset and progression of mitosis. Perturbing ER function with diverse stressors causes a selective delay at the metaphase-anaphase transition, accompanied by defective spindle assembly, chromosome misalignment, and loss of coordinated ER-chromosome organization. Under these conditions, the checkpoint protein MAD1 fails to efficiently dissociate from the NE. ER stress also disrupts microtubule-organizing centers and the centriculum, an ER-derived compartment surrounding centrosomes. Restoring ER structure by expressing the shaping proteins CLIMP63(1-192) or REEP4 rescues spindle organization and mitotic progression. Conversely, transient metaphase arrest induced by partial APC/C inhibition remodels ER morphology independently of stress, and this remodeling is reversed by CLIMP63(1-192). These findings uncover a bidirectional link between ER structure function and the spindle assembly checkpoint, identifying the organelle architecture as an instructive signal that modulates mitotic timing in mammalian cell.

cell biology↗

Activation of the IKK2-NFκB pathway in VSMCs inhibits calcified vascular stiffness in CKD by reducing the secretion of calcifying extracellular vesicles.

IKK2-NF{kappa}B pathway mediated-inflammation in vascular smooth muscle cells (VSMCs) has been proposed to be an etiologic factor in medial calcification and stiffness. However, the role of the IKK2-NF{kappa}B pathway in medial calcification remains to be elucidated. In this study, we found that CKD induces inflammatory pathways through the local activation of the IKK2-NF{kappa}B pathway in VMSCs associated with calcified vascular stiffness. Despite reducing the expression of inflammatory mediators, complete inhibition of the IKK2-NF{kappa}B pathway in vitro and in vivo unexpectedly exacerbated vascular mineralization and stiffness. In contrast, activation of NF{kappa}B by SMC-specific I{kappa}B deficiency attenuated calcified vascular stiffness in CKD. Inhibition of the IKK2-NF{kappa}B pathway induced apoptosis of VSMCs by reducing anti-apoptotic gene expression, whereas activation of NF{kappa}B reduced CKD-dependent vascular cell death. In addition, increased calcifying extracellular vesicles through the inhibition of the IKK2-NF{kappa}B pathway induced mineralization of VSMCs, which was significantly reduced by blocking cell death. This study reveals that activation of the IKK2-NF{kappa}B pathway in VSMCs plays a protective role in CKD-dependent calcified vascular stiffness by reducing the release of apoptotic calcifying extracellular vesicles.

physiology↗