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Soares-de-Oliveira, J.

Publications and source records attributed to Soares-de-Oliveira, J..

2 recordsLinked to original sources

Microtubule occupancy at kinetochores links checkpoint silencing with mitotic memory

The spindle assembly checkpoint (SAC) promotes faithful chromosome segregation by delaying mitosis until all kinetochores attach to spindle microtubules. Paradoxically, a p53-dependent memory mechanism--the mitotic stopwatch" --blocks daughter cell proliferation after unusually prolonged mitoses. How the SAC coordinates with the mitotic stopwatch remains unknown. Here, we found that microtubule occupancy at kinetochores is a cornerstone linking SAC silencing with mitotic memory. By combining live-cell with super-resolution microscopy, FRAP, laser microsurgery, biochemistry and molecular perturbations in Indian muntjac fibroblasts, we show that SAC silencing at kinetochores is gradual, non-uniform and confined to highly-localized microtubule attachments. Augmin promotes timely SAC silencing with high microtubule occupancy at kinetochores, whereas MPS1/CDK1 inhibition bypasses this requirement. Conversely, low microtubule occupancy delays SAC silencing, increases segregation errors and blocks daughter cell proliferation due to mitotic stopwatch surveillance. Thus, timely SAC silencing with high microtubule occupancy avoids "bad memories" of mitosis to allow daughter cell proliferation.

cell biology↗

Bridging the resolution-sectioning gap in stimulated emission depletion microscopy: theory and experiment

Microscopes generally exhibit superior performance in 2D compared to 3D. Fluorescence super-resolution imaging often intensifies this discrepancy, such as with the gold-standard vortex-based stimulated emission depletion (STED) microscope, which narrows the point-spread function only laterally. In this study, we developed a semi-analytical theory based on the Nijboer-Zernike expansion, conducted simulations and performed experiments to establish the merits of the alternative bivortex-based STED. We find that this mode reduces the axial-lateral resolution mismatch and effectively emulates noisier multi-beam approaches by providing access to point-spread function geometries that are strictly forbidden to the two conventional single-beam modes, 2D-STED and z-STED. Notably, theory and experiment indicate that, besides filling the gap, bivortex STED delivers a higher signal-to-background than the two modes it bridges.

biophysics↗