Kinesin-8-specific loop-2 controls the dual activities of the motor domain according to tubulin protofilament shape

Author:

Hunter Byron,Benoit Matthieu P. M. H.ORCID,Asenjo Ana B.ORCID,Doubleday Caitlin,Trofimova Daria,Frazer CoreyORCID,Shoukat Irsa,Sosa HernandoORCID,Allingham John S.ORCID

Abstract

AbstractKinesin-8s are dual-activity motor proteins that can move processively on microtubules and depolymerize microtubule plus-ends, but their mechanism of combining these distinct activities remains unclear. We addressed this by obtaining cryo-EM structures (2.6–3.9 Å) ofCandida albicansKip3 in different catalytic states on the microtubule lattice and on a curved microtubule end mimic. We also determined a crystal structure of microtubule-unboundCaKip3-ADP (2.0 Å) and analyzed the biochemical activity ofCaKip3 and kinesin-1 mutants. These data reveal that the microtubule depolymerization activity of kinesin-8 originates from conformational changes of its motor core that are amplified by dynamic contacts between its extended loop-2 and tubulin. On curved microtubule ends, loop-1 inserts into preceding motor domains, forming head-to-tail arrays of kinesin-8s that complement loop-2 contacts with curved tubulin and assist depolymerization. On straight tubulin protofilaments in the microtubule lattice, loop-2-tubulin contacts inhibit conformational changes in the motor core, but in the ADP-Pi state these contacts are relaxed, allowing neck-linker docking for motility. We propose that these tubulin shape-induced alternations between pro-microtubule-depolymerization and pro-motility kinesin states, regulated by loop-2, are the key to the dual activity of kinesin-8 motors.

Funder

U.S. Department of Health & Human Services | National Institutes of Health

Simons Foundation

U.S. Department of Health & Human Services | NIH | National Institute of General Medical Sciences

Agouron Institute

Gouvernement du Canada | Canadian Institutes of Health Research

National Sciences and Engineering Council of Canada

Publisher

Springer Science and Business Media LLC

Subject

General Physics and Astronomy,General Biochemistry, Genetics and Molecular Biology,General Chemistry,Multidisciplinary

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