Myosin V stepping mechanism
- 25 September 2007
- journal article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 104 (39) , 15328-15333
- https://doi.org/10.1073/pnas.0706653104
Abstract
We observe the myosin V stepping mechanism by traveling wave tracking. This technique, associated with optical tweezers, allows one to follow a scattering particle in a two-dimensional plane, with nanometer accuracy and a temporal resolution in the microsecond range. We have observed that, at the millisecond time scale, the myosin V combines longitudinal and vertical motions during the step. Because at this time scale the steps appear heterogeneous, we deduce their general features by aligning and averaging a large number of them. Our data show that the 36-nm step occurs in three main stages. First, the myosin center of mass moves forward 5 nm; the duration of this short prestep depends on the ATP concentration. Second, the motor performs a fast motion over 23 nm; this motion is associated to a vertical movement of the myosin center of mass, whose distance from the actin filament increases by 6 nm. Third, the myosin head freely diffuses toward the next binding site and the vertical position is recovered. We propose a simple model to describe the step mechanism of the dimeric myosin V.Keywords
This publication has 40 references indexed in Scilit:
- Myosin-V is a mechanical ratchetProceedings of the National Academy of Sciences, 2006
- The Complex Interplay between the Neck and Hinge Domains in Kinesin-1 Dimerization and Motor ActivityMolecular Biology of the Cell, 2005
- Kinesin Walks Hand-Over-HandScience, 2004
- Load-dependent kinetics of force production by smooth muscle myosin measured with optical tweezersNature Cell Biology, 2003
- Myosin V Walks Hand-Over-Hand: Single Fluorophore Imaging with 1.5-nm LocalizationScience, 2003
- Brownian motors: noisy transport far from equilibriumPhysics Reports, 2002
- Mechanics of Motor Proteins and the CytoskeletonApplied Mechanics Reviews, 2002
- Modeling molecular motorsReviews of Modern Physics, 1997
- Porters versus rowers: a unified stochastic model of motor proteins.The Journal of cell biology, 1993
- Identification of a factor in conventional muscle actin preparations which inhibits actin filament self-associationBiochemical and Biophysical Research Communications, 1980