Human kinesin-5 KIF11 drives the helical motion of anti-parallel and parallel microtubules around each other
Publication date
2024-04-02
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Abstract
During mitosis, motor proteins and microtubule-associated protein organize the spindle apparatus by cross-linking and sliding microtubules. Kinesin-5 plays a vital role in spindle formation and maintenance, potentially inducing twist in the spindle fibers. The off-axis power stroke of kinesin-5 could generate this twist, but its implications in microtubule organization remain unclear. Here, we investigate 3D microtubule-microtubule sliding mediated by the human kinesin-5, KIF11, and found that the motor caused right-handed helical motion of anti-parallel microtubules around each other. The sidestepping ratio increased with reduced ATP concentration, indicating that forward and sideways stepping of the motor are not strictly coupled. Further, the microtubule-microtubule distance (motor extension) during sliding decreased with increasing sliding velocity. Intriguingly, parallel microtubules cross-linked by KIF11 orbited without forward motion, with nearly full motor extension. Altering the length of the neck linker increased the forward velocity and pitch of microtubules in anti-parallel overlaps. Taken together, we suggest that helical motion and orbiting of microtubules, driven by KIF11, contributes to flexible and context-dependent filament organization, as well as torque regulation within the mitotic spindle.
Keywords
Helical Motion, Kinesin, Spindle, Torque, General Neuroscience, Molecular Biology, General Biochemistry,Genetics and Molecular Biology, General Immunology and Microbiology
Citation
Meißner, L, Niese, L, Schüring, I, Mitra, A & Diez, S 2024, 'Human kinesin-5 KIF11 drives the helical motion of anti-parallel and parallel microtubules around each other', EMBO Journal, vol. 43, no. 7, pp. 1244-1256. https://doi.org/10.1038/s44318-024-00048-x