Spindle checkpoint silencing at kinetochores with submaximal microtubule occupancy

Publication date

2019-06-17

Authors

Etemad, Banafsheh
Vertesy, Abel
Kuijt, Timo E.F.
Sacristan, Carlos
van Oudenaarden, AlexanderORCID 0000-0002-9442-3551ISNI 0000000042369843
Kops, Geert J P LORCID 0000-0003-3555-5295ISNI 0000000394205033

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Abstract

The spindle assembly checkpoint (SAC) ensures proper chromosome segregation by monitoring kinetochore-microtubule interactions. SAC proteins are shed from kinetochores once stable attachments are achieved. Human kinetochores consist of hundreds of SAC protein recruitment modules and bind up to 20 microtubules, raising the question of how the SAC responds to intermediate attachment states. We show that one protein module ('RZZS-MAD1-MAD2') of the SAC is removed from kinetochores at low microtubule occupancy and remains absent at higher occupancies, while another module ('BUB1-BUBR1') is retained at substantial levels irrespective of attachment states. These behaviours reflect different silencing mechanisms: while BUB1 displacement is almost fully dependent on MPS1 inactivation, MAD1 (also known as MAD1L1) displacement is not. Artificially tuning the affinity of kinetochores for microtubules further shows that ∼50% occupancy is sufficient to shed MAD2 and silence the SAC. Kinetochores thus respond as a single unit to shut down SAC signalling at submaximal occupancy states, but retain one SAC module. Thismay ensure continued SAC silencing on kinetochores with fluctuating occupancy states while maintaining the ability for fast SACre-activation.

Keywords

Chromosome segregation, Kinetochore, Microtubules, Mitosis, Spindle assembly checkpoint, Cell Biology

Citation

Etemad, B, Vertesy, A, Kuijt, T E F, Sacristan, C, Van Oudenaarden, A & Kops, G J P L 2019, 'Spindle checkpoint silencing at kinetochores with submaximal microtubule occupancy', Journal of Cell Science, vol. 132, no. 12, jcs231589. https://doi.org/10.1242/jcs.231589