The kinesin-5 tail domain directly modulates the mechanochemical cycle of the motor domain for anti-parallel microtubule sliding

Author:

Bodrug Tatyana1ORCID,Wilson-Kubalek Elizabeth M2,Nithianantham Stanley1ORCID,Thompson Alex F3,Alfieri April4,Gaska Ignas4,Major Jennifer56,Debs Garrett7,Inagaki Sayaka6,Gutierrez Pedro1,Gheber Larisa8ORCID,McKenney Richard J1,Sindelar Charles Vaughn7ORCID,Milligan Ronald2,Stumpff Jason3,Rosenfeld Steven S56,Forth Scott T4,Al-Bassam Jawdat1ORCID

Affiliation:

1. Department of Molecular and Cellular Biology, University of California, Davis, Davis, United States

2. Department of Integrative Structural and Computational Biology, Scripps Research Institute, La Jolla, United States

3. Department of Molecular Physiology and Biophysics, University of Vermont, Burlington, United States

4. Department of Biological Sciences, Rensselaer Polytechnic Institute, Troy, United States

5. Department of Cancer Biology, Lerner Research Institute, Cleveland Clinic, Lorain, United States

6. Department of Pharmacology, Mayo Clinic, Jacksonville, United States

7. Department of Molecular Biophysics and Biochemistry, Yale University, New Haven, United States

8. Department of Chemistry and Ilse Katz Institute for Nanoscale Science and Technology, Ben-Gurion University of the Negev, Negev, Israel

Abstract

Kinesin-5 motors organize mitotic spindles by sliding apart microtubules. They are homotetramers with dimeric motor and tail domains at both ends of a bipolar minifilament. Here, we describe a regulatory mechanism involving direct binding between tail and motor domains and its fundamental role in microtubule sliding. Kinesin-5 tails decrease microtubule-stimulated ATP-hydrolysis by specifically engaging motor domains in the nucleotide-free or ADP states. Cryo-EM reveals that tail binding stabilizes an open motor domain ATP-active site. Full-length motors undergo slow motility and cluster together along microtubules, while tail-deleted motors exhibit rapid motility without clustering. The tail is critical for motors to zipper together two microtubules by generating substantial sliding forces. The tail is essential for mitotic spindle localization, which becomes severely reduced in tail-deleted motors. Our studies suggest a revised microtubule-sliding model, in which kinesin-5 tails stabilize motor domains in the microtubule-bound state by slowing ATP-binding, resulting in high-force production at both homotetramer ends.

Funder

National Science Foundation

National Institutes of Health

Israel Science Foundation

United States-Israel Binational Science Foundation

Publisher

eLife Sciences Publications, Ltd

Subject

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

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