Nucleotide-free structures of KIF20A illuminate atypical mechanochemistry in this kinesin-6

Author:

Ranaivoson Fanomezana Moutse1ORCID,Crozet Vincent1ORCID,Benoit Matthieu P. M. H.2ORCID,Abdalla Mohammed Khalid Amna3,Kikuti Carlos1ORCID,Sirkia Helena1ORCID,El Marjou Ahmed1ORCID,Miserey-Lenkei Stéphanie1ORCID,Asenjo Ana B.2ORCID,Sosa Hernando2ORCID,Schmidt Christoph F.34ORCID,Rosenfeld Steven S.5ORCID,Houdusse Anne1ORCID

Affiliation:

1. Structural Motility, CNRS UMR144, Institut Curie, Université Paris Sciences et Lettres, Sorbonne Université, 75248 Paris, France

2. Department of Biochemistry, Albert Einstein College of Medicine, Bronx, NY 10461, USA

3. Third Institute of Physics-Biophysics, Georg August University Göttingen, 37077 Göttingen, Germany

4. Department of Physics and Soft Matter Center, Duke University, Durham, NC 27708, USA

5. Department of Pharmacology, Mayo Clinic, Jacksonville, FL 32224, USA

Abstract

KIF20A is a critical kinesin for cell division and a promising anti-cancer drug target. The mechanisms underlying its cellular roles remain elusive. Interestingly, unusual coupling between the nucleotide- and microtubule-binding sites of this kinesin-6 has been reported, but little is known about how its divergent sequence leads to atypical motility properties. We present here the first high-resolution structure of its motor domain that delineates the highly unusual structural features of this motor, including a long L6 insertion that integrates into the core of the motor domain and that drastically affects allostery and ATPase activity. Together with the high-resolution cryo-electron microscopy microtubule-bound KIF20A structure that reveals the microtubule-binding interface, we dissect the peculiarities of the KIF20A sequence that influence its mechanochemistry, leading to low motility compared to other kinesins. Structural and functional insights from the KIF20A pre-power stroke conformation highlight the role of extended insertions in shaping the motor's mechanochemical cycle. Essential for force production and processivity is the length of the neck linker in kinesins. We highlight here the role of the sequence preceding the neck linker in controlling its backward docking and show that a neck linker four times longer than that in kinesin-1 is required for the activity of this motor.

Funder

Fondation pour la Recherche Médicale

Ligue Contre le Cancer

IDEX

Labex Cell(n)Scale

Biokinesis, Inc.

NIH

INCA

Agence Nationale de la Recherche

European Research Council

European Union

Simons Foundation

Centre National de la Recherche Scientifique

FP7 Ideas: European Research Council

National Institute of General Medical Sciences

Agouron Institute

ARC

Publisher

The Royal Society

Subject

General Biochemistry, Genetics and Molecular Biology,Immunology,General Neuroscience

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