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Updated: Jul 6, 2026

Single-Molecule Analysis of Sf9 Purified Superprocessive Kinesin-3 Family Motors
Published on: July 27, 2022
Myosin V and Kinesin act as tethers to enhance each others' processivity
M Yusuf Ali1, Hailong Lu, Carol S Bookwalter
1Department of Molecular Physiology and Biophysics, University of Vermont, Burlington, VT 05405.
Abstract:
Organelle transport to the periphery of the cell involves coordinated transport between the processive motors kinesin and myosin V. Long-range transport takes place on microtubule tracks, whereas final delivery involves shorter actin-based movements. The concept that motors only function on their appropriate track required further investigation with the recent observation that myosin V undergoes a diffusional search on microtubules. Here we show, using single-molecule techniques, that a functional consequence of myosin V's diffusion on microtubules is a significant enhancement of the processive run length of kinesin when both motors are present on the same cargo. The degree of run length enhancement correlated with the net positive charge in loop 2 of myosin V. On actin, myosin V also undergoes longer processive runs when kinesin is present on the same cargo. The process that causes run length enhancement on both cytoskeletal tracks is electrostatic. We propose that one motor acts as a tether for the other and prevents its diffusion away from the track, thus allowing more steps to be taken before dissociation. The resulting run length enhancement likely contributes to the successful delivery of cargo in the cell.
Insights
Myosin V motor proteins enhance kinesin motor protein
Area of Science:
- Cell Biology
- Molecular Motors
- Cytoskeletal Dynamics
Background:
- Organelle transport relies on kinesin and myosin V motors.
- Kinesin moves on microtubules; myosin V moves on actin.
- Myosin V can diffuse on microtubules, challenging previous assumptions.
Purpose of the Study:
- Investigate the functional consequences of myosin V diffusion on microtubules.
- Determine how the presence of one motor affects the other's processivity.
- Elucidate the mechanism behind motor-cargo transport enhancement.
Main Methods:
- Single-molecule techniques were employed.
- Kinesin and myosin V motor proteins were studied on the same cargo.
- Motor run lengths and diffusion behaviors were analyzed.
Main Results:
- Myosin V diffusion on microtubules significantly enhances kinesin's processive run length.
- This enhancement is electrostatic and depends on myosin V's net positive charge.
- Kinesin presence also increases myosin V's processive run length on actin.
Conclusions:
- Motor proteins can tether each other, preventing diffusion and increasing processivity.
- Electrostatic interactions are key to this cross-track run length enhancement.
- This mechanism likely ensures efficient cargo delivery within the cell.
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