Diffusive tail anchorage determines velocity and force produced by kinesin-14 between crosslinked microtubules
Form and function of the mitotic spindle depend on motor proteins that crosslink microtubules and move them relative to each other. Among these are kinesin-14s, such as Ncd, which interact with one microtubule via their non-processive motor domains and with another via their diffusive tail domains,...
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Veröffentlicht in: | Nature communications 2018-06, Vol.9 (1), p.2214-9, Article 2214 |
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Sprache: | eng |
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Zusammenfassung: | Form and function of the mitotic spindle depend on motor proteins that crosslink microtubules and move them relative to each other. Among these are kinesin-14s, such as Ncd, which interact with one microtubule via their non-processive motor domains and with another via their diffusive tail domains, the latter allowing the protein to slip along the microtubule surface. Little is known about the influence of the tail domains on the protein’s performance. Here, we show that diffusive anchorage of Ncd’s tail domains impacts velocity and force considerably. Tail domain slippage reduced velocities from 270 nm s
−1
to 60 nm s
−1
and forces from several piconewtons to the sub-piconewton range. These findings challenge the notion that kinesin-14 may act as an antagonizer of other crosslinking motors, such as kinesin-5, during mitosis. It rather suggests a role of kinesin-14 as a flexible element, pliantly sliding and crosslinking microtubules to facilitate remodeling of the mitotic spindle.
Kinesin-14s, such as Ncd, interact with microtubules with their non-processive motor domains and their diffusive tail domains, but the influence of the tail domains on motor performance is not known. Here the authors show that tail domain slippage limits the velocities and forces generated by Ncd, suggesting it acts as a slippery crosslinker. |
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ISSN: | 2041-1723 2041-1723 |
DOI: | 10.1038/s41467-018-04656-0 |