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Jawish, L.

Publications and source records attributed to Jawish, L..

2 recordsLinked to original sources

A novel mechanism for centrosome expulsion ensures metabolic activity in polyploid cells

Programmed polyploidy is often linked to increase cell size to support enhanced metabolism, barrier function or regeneration. In certain polyploid cells, the cytoskeleton is drastically remodeled-most notably by eliminating centrosomes. However, the purpose and mechanisms underlying centrosome elimination have remained unclear. We investigated this question in Drosophila acentrosomal salivary glands (SGs), a physiological polyploid model where cells reach high chromosome content through endoreplication. Using genetic tools, live imaging approaches, super-resolution microscopy combined with tissue clearing and electron microscopy, our study uncovers a novel centrosome elimination pathway in vivo. This process requires non-muscle myosin II (MyoII) activity and the macroautophagic machinery to drive centrosome release into the lumen of the salivary glands via autolysosomal exocytosis. Failure to eliminate centrosomes disrupts the mitochondria network, impairing respiration and ATP production. Our findings reveal a previously unknown mechanism that removes centrosomes through the secretory autophagy pathway to protect mitochondrial function and support the high metabolic demands of polyploid cells.

cell biology↗

Brain biomechanics governs mitotic fidelity of embryonic neural progenitors

Accurate chromosome segregation is essential to maintain genetic stability and prevent the onset of diseases such as developmental disorders, infertility, and cancer. While many intrinsic factors and processes involved in mitosis have been extensively characterized, less is known about how extrinsic factors and tissue properties contribute to mitotic fidelity. In this study, using both in vivo and ex vivo systems, in combination with pharmacological perturbations and high-resolution microscopy, we investigated mitosis in apical radial glial (aRG) cells--the primary neural progenitors in the developing mammalian brain. We found that the high cell density typical of early neurogenic stages enhances microtubule polymerization rates from the spindle poles, thereby influencing chromosome segregation. Mechanistically, our results indicate that cortical actin and elevated cortical tension function as sensors of biomechanical stress during mitosis. These findings identify biomechanics as a threat to mitotic fidelity in the embryonic brain.

cell biology↗