The bipolar assembly domain of the mitotic motor kinesin-5

An outstanding unresolved question is how does the mitotic spindle utilize microtubules and mitotic motors to coordinate accurate chromosome segregation during mitosis? This process depends upon the mitotic motor, kinesin-5, whose unique bipolar architecture, with pairs of motor domains lying at opp...

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Veröffentlicht in:Nature communications 2013-01, Vol.4 (1), p.1343, Article 1343
Hauptverfasser: Acar, Seyda, Carlson, David B., Budamagunta, Madhu S., Yarov-Yarovoy, Vladimir, Correia, John J., Niñonuevo, Milady R., Jia, Weitao, Tao, Li, Leary, Julie A., Voss, John C., Evans, James E., Scholey, Jonathan M.
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Sprache:eng
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Zusammenfassung:An outstanding unresolved question is how does the mitotic spindle utilize microtubules and mitotic motors to coordinate accurate chromosome segregation during mitosis? This process depends upon the mitotic motor, kinesin-5, whose unique bipolar architecture, with pairs of motor domains lying at opposite ends of a central rod, allows it to crosslink microtubules within the mitotic spindle and to coordinate their relative sliding during spindle assembly, maintenance and elongation. The structural basis of kinesin-5’s bipolarity is, however, unknown, as protein asymmetry has so far precluded its crystallization. Here we use electron microscopy of single molecules of kinesin-5 and its subfragments, combined with hydrodynamic analysis plus mass spectrometry, circular dichroism and site-directed spin label electron paramagnetic resonance spectroscopy, to show how a staggered antiparallel coiled-coil ‘BASS’ (bipolar assembly) domain directs the assembly of four kinesin-5 polypeptides into bipolar minifilaments. During mitosis, kinesin-5 motors are thought to crosslink microtubules in a muscle-like sliding filament mechanism. By combining electron microscopy with other structural tools, the authors reveal how four kinesin-5 polypeptides are organized into bipolar minifilaments.
ISSN:2041-1723
2041-1723
DOI:10.1038/ncomms2348