Dynamics of single-motor molecules: the thermal ratchet model.
- 1 January 1992
- journal article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 89 (1), 339-343
- https://doi.org/10.1073/pnas.89.1.339
Abstract
We present a model for single-motor molecules--myosin, dynein, or kinesin--that is powered either by thermal fluctuations or by conformational change. In the thermally driven model, the cross-bridge fluctuates about its equilibrium position against an elastic restoring force. The attachment and detachment of the cross-bridge are determined by modeling the electrostatic attraction between the cross-bridge and the fiber binding sites, so that binding depends on the strain in the cross-bridge and its velocity with respect to the fiber. The model correctly predicts the empirical force-velocity characteristics for populations of motor molecules. For a single motor, the apparent cross-bridge step size per ATP hydrolysis depends nonlinearly on the load. When the elastic energy driving the cross-bridge is generated by a conformational change, the velocity and duty cycle are much larger than is observed experimentally for myosin.Keywords
This publication has 24 references indexed in Scilit:
- Simultaneous recordings of force and sliding movement between a myosin-coated glass microneedle and actin cables in vitro.Proceedings of the National Academy of Sciences, 1989
- A self-induced translation model of myosin head motion in contracting muscle I. Force-velocity relation and energy liberationJournal of Muscle Research and Cell Motility, 1988
- The theory of sliding filament models for muscle contraction. I. The two-state modelJournal of Theoretical Biology, 1987
- Sliding distance of actin filament induced by a myosin crossbridge during one ATP hydrolysis cycleNature, 1985
- Muscle Contraction and Free Energy Transduction in Biological SystemsScience, 1985
- Cross-bridge model of muscle contraction. Quantitative analysisBiophysical Journal, 1980
- Computer simulation of movement-generating cross-bridgesBiophysical Journal, 1976
- Some self-consistent two-state sliding filament models of muscle contractionBiophysical Journal, 1975
- Proposed Mechanism of Force Generation in Striated MuscleNature, 1971
- Muscle Structure and Theories of ContractionProgress in Biophysics and Biophysical Chemistry, 1957