Engineering the Processive Run Length of the Kinesin Motor
Open Access
- 27 November 2000
- journal article
- Published by Rockefeller University Press in The Journal of cell biology
- Vol. 151 (5) , 1093-1100
- https://doi.org/10.1083/jcb.151.5.1093
Abstract
Conventional kinesin is a highly processive molecular motor that takes several hundred steps per encounter with a microtubule. Processive motility is believed to result from the coordinated, hand-over-hand motion of the two heads of the kinesin dimer, but the specific factors that determine kinesin's run length (distance traveled per microtubule encounter) are not known. Here, we show that the neck coiled-coil, a structure adjacent to the motor domain, plays an important role in governing the run length. By adding positive charge to the neck coiled-coil, we have created ultra-processive kinesin mutants that have fourfold longer run lengths than the wild-type motor, but that have normal ATPase activity and motor velocity. Conversely, adding negative charge on the neck coiled-coil decreases the run length. The gain in processivity can be suppressed by either proteolytic cleavage of tubulin's negatively charged COOH terminus or by high salt concentrations. Therefore, modulation of processivity by the neck coiled-coil appears to involve an electrostatic tethering interaction with the COOH terminus of tubulin. The ability to readily increase kinesin processivity by mutation, taken together with the strong sequence conservation of the neck coiled-coil, suggests that evolutionary pressures may limit kinesin's run length to optimize its in vivo function.Keywords
This publication has 65 references indexed in Scilit:
- Controlling Kinesin by Reversible Disulfide Cross-LinkingThe Journal of cell biology, 2000
- Motor and cargo interactionsEuropean Journal of Biochemistry, 1999
- Image Reconstructions of Microtubules Decorated with Monomeric and Dimeric Kinesins: Comparison with X-Ray Structure and Implications for MotilityThe Journal of cell biology, 1998
- One-Headed Kinesin Derivatives Move by a Nonprocessive, Low-Duty Ratio Mechanism Unlike That of Two-Headed KinesinBiochemistry, 1998
- Alternating Site Mechanism of the Kinesin ATPaseBiochemistry, 1998
- X-ray Structure of Motor and Neck Domains from Rat Brain Kinesin,Biochemistry, 1997
- Kinetic evidence for low chemical processivity in ncd and Eg5Journal of Molecular Biology, 1997
- Probing the Kinesin-Microtubule InteractionJournal of Biological Chemistry, 1997
- The Movement of Kinesin Along MicrotubulesAnnual Review of Physiology, 1996
- Structure of tubulin C‐terminal domain obtained by subtilisin treatment The major α and β tubulin isotypes from pig brain are glutamylatedFEBS Letters, 1992