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Pedroso, P. D.

Publications and source records attributed to Pedroso, P. D..

2 recordsLinked to original sources

POLO kinase inhibits Protein Phosphatase 1 to promote the Spindle Assembly Checkpoint and prevent aneuploidy

Protein phosphatase 1 (PP1) is essential for spindle assembly checkpoint (SAC) silencing and mitotic exit, but its regulation during mitosis remains ill-defined. Here, we demonstrate in vitro and in Drosophila cells that the mitotic kinase POLO phosphorylates PP187B at a conserved residue (T286) within a pocket implicated in the recognition of RVxF-containing target proteins. Phosphorylation of T286 inhibits PP187B binding to the RVxF motif of the SAC kinase MPS1, dampening the dephosphorylation of MPS1 T-loop. Phosphorylation of T286 is dynamically regulated during mitosis. It occurs at unattached/tensionless kinetochores and decreases as chromosomes congress. Expression of phosphomimetic PP187BT286D prevents MPS1 inactivation in metaphase and causes a SAC-dependent delay of anaphase onset. Conversely, an unphosphorylatable PP187BT286A mutant impairs MPS1 activation at unattached kinetochores and weakens the SAC. In vivo, larval neuroblasts expressing PP187BT286 phosphomutants exhibit frequent chromosome mis-segregation and aneuploidy. Thus, our findings identify POLO-mediated phosphorylation of PP187B as a critical regulatory strategy that fine-tunes phosphatase activity to ensure a robust and timely SAC and prevent genome instability.

cell biology↗

Proximity-based activation of AURORA A by MPS1 potentiates error correction

Faithfull cell division relies on mitotic chromosomes becoming bioriented with each pair of sister kinetochores bound to microtubules oriented toward opposing spindle poles. Erroneous kinetochore-microtubule attachments often form during early mitosis, but are destabilized through the phosphorylation of outer kinetochore proteins by centromeric AURORA B kinase (ABK) and centrosomal AURORA A kinase (AAK), thus allowing for re-establishment of attachments until biorientation is achieved. MPS1-mediated phosphorylation of NDC80 has also been shown to directly weaken the kinetochore-microtubule interface in yeast. In human cells, MPS1 has been proposed to transiently accumulate at end-on attached kinetochores and phosphorylate SKA3 to promote microtubule release. Whether MPS1 directly targets NDC80 and/or promotes the activity of AURORA kinases in metazoans remains unclear. Here, we report a novel mechanism involving communication between kinetochores and centrosomes, wherein MPS1 acts upstream of AAK to promote error correction. MPS1 on pole-proximal kinetochores phosphorylates the C-lobe of AAK thereby increasing its activation at centrosomes. This proximity-based activation ensures the establishment of a robust AAK activity gradient that locally destabilizes mal-oriented kinetochores near spindle poles. Accordingly, MPS1 depletion from Drosophila cells causes severe chromosome misalignment and erroneous kinetochore-microtubule attachments, which can be rescued by tethering either MPS1 or constitutively active AAK mutants to centrosomes. Proximity-based activation of AAK by MPS1 also occurs in human cells to promote AAK-mediated phosphorylation of the NDC80 N-terminal tail. These findings uncover an MPS1-AAK cross-talk that is required for efficient error correction, showcasing the ability of kinetochores to modulate centrosome outputs to ensure proper chromosome segregation.

cell biology↗