The mitotic crosslinking protein PRC1 acts as a mechanical dashpot to resist microtubule sliding
Gaska, I.; Armstrong, M.; Alfieri, A.; Forth, S.
Show abstract
Cell division in eukaryotes requires the regulated assembly of the spindle apparatus. The proper organization of microtubules within the spindle is driven by motor proteins that exert forces to push and slide filaments, while non-motor proteins can crosslink filaments into higher order motifs such as overlapping bundles. It has not been clear how active and passive forces are integrated to produce regulated mechanical outputs within spindles. Here we employ a combined optical tweezers and TIRF microscopy instrument to directly measure the resistive forces produced by the mitotic crosslinking protein PRC1. We observe that PRC1 generates frictional forces that resist microtubule sliding. These forces scale with microtubule sliding velocity and the number of PRC1 crosslinks, but do not depend on overlap length or PRC1 density within overlaps. Our results suggest that PRC1 ensembles act like a mechanical dashpot, producing significant resistance against fast motions, but minimal resistance against slow motions, allowing for the integration of diverse motor activities into a single mechanical outcome.
Matching journals
The top 3 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Rapid binding to protofilament edge sites facilitates tip tracking of EB1 at growing microtubule plus-ends 96%
- The Kinesin-5 Tail Domain Directly Modulates the Mechanochemical Cycle of the Motor for Anti-Parallel Microtubule Sliding 96%
- The molecular mechanism of load adaptation by branched actin networks 95%
Similar papers in this journal
Similar papers in this journal
- PRC1 resists microtubule sliding in two distinct resistive modes due to variations in the separation between overlapping microtubules 97%
- Spire stimulates nucleation by Cappuccino and binds both ends of actin filaments 95%
- Microtubule competition and cell growth recenter the nucleus after anaphase in fission yeast. 95%
Similar papers in this journal
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.