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Codallos, N.

Publications and source records attributed to Codallos, N..

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↗

Orchestration of SARS-CoV-2 Nsp4 and host-cell ESCRT proteins induces morphological changes of the endoplasmic reticulum

Upon entry into the host cell, the non-structural proteins 3, 4, and 6 (Nsp3, Nsp 4, and Nsp6) of severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) facilitate the formation of double- membrane vesicles (DMVs) through extensive rearrangement of the host cell endoplasmic reticulum (ER) to replicate the viral genome and translate viral proteins. To dissect the functional roles of each Nsp and the molecular mechanisms underlying the ER changes, we exploited both yeast S. cerevisiae and human cell experimental systems. Our results demonstrate that Nsp4 alone is sufficient to induce ER structural changes. Nsp4 expression led to robust activation of both the unfolded protein response (UPR) and the ER surveillance (ERSU) cell cycle checkpoint, resulting in cortical ER inheritance block and septin ring mislocalization. Interestingly, these ER morphological changes occurred independently of the canonical UPR and ERSU components but were mediated by the endosomal sorting complex for transport (ESCRT) proteins Vps4 and Vps24 in yeast. Similarly, ER structural changes occurred in human cells upon Nsp4 expression, providing a basis for a minimal experimental system for testing the involvement of human ESCRT proteins and ultimately advancing our understanding of DMV formation.

cell biology↗