Kinetics of nucleotide-dependent structural transitions in the kinesin-1 hydrolysis cycle

Symplectic ID
587076
Source
Ora (Hyrax)
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1
Last Synced with Symplectic
Sunday, 30 August, 2026 - 08:17
DOI
10.1073/pnas.1517638112
Publication Date
Tuesday, 29 December, 2015
First Page
E7186
Last Page
E7193
Keywords
drosophila proteins
models, chemical
animals
algorithms
molecular motor proteins
models, molecular
adenosine triphosphate
protein structure, tertiary
kinetics
microscopy, interference
hydrolysis
kinesin
SBTMR
Authors
Mickolajczyk, KJ
Deffenbaugh, NC
Arroyo, JO
Andrecka, J
Kukura, P
Hancock, WO
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0
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Abstract
To dissect the kinetics of structural transitions underlying the stepping cycle of kinesin-1 at physiological ATP, we used interferometric scattering microscopy to track the position of gold nanoparticles attached to individual motor domains in processively stepping dimers. Labeled heads resided stably at positions 16.4 nm apart, corresponding to a microtubule-bound state, and at a previously unseen intermediate position, corresponding to a tethered state. The chemical transitions underlying these structural transitions were identified by varying nucleotide conditions and carrying out parallel stopped-flow kinetics assays. At saturating ATP, kinesin-1 spends half of each stepping cycle with one head bound, specifying a structural state for each of two rate-limiting transitions. Analysis of stepping kinetics in varying nucleotides shows that ATP binding is required to properly enter the one-head-bound state, and hydrolysis is necessary to exit it at a physiological rate. These transitions differ from the standard model in which ATP binding drives full docking of the flexible neck linker domain of the motor. Thus, this work defines a consensus sequence of mechanochemical transitions that can be used to understand functional diversity across the kinesin superfamily.
Publisher
National Academy of Sciences
ISSN
1091-6490
Journal Title
Proceedings of the National Academy of Sciences
Volume
112
Issue
52
ID at Source
uuid_0dad7f9b-972c-4fec-b0bf-1c31da9fd770
Publication Status
Published
Open access
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chem0643