Directional loading of the kinesin motor molecule as it buckles a microtubule

被引:121
作者
Gittes, F
Meyhofer, E
Baek, S
Howard, J
机构
[1] UNIV WASHINGTON, DEPT PHYSIOL & BIOPHYS, SEATTLE, WA 98195 USA
[2] UNIV WASHINGTON, CTR BIOENGN, SEATTLE, WA 98195 USA
关键词
D O I
10.1016/S0006-3495(96)79585-1
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
Single kinesin motor molecules were observed to buckle the microtubules along which they moved in a modified in vitro gliding assay. In this assay a central portion of the microtubule was clamped to the glass substrate via biotin-streptavidin bonds, while the plus end of the microtubule was free to interact with motors adsorbed at low density to the substrate. A statistical analysis of the length of microtubules buckled by single motors showed a decreasing probability of buckling for loads greater than 4-6 pN parallel to the filament. This is consistent with kinesin stalling forces found in other experiments. A detailed analysis of some buckling events allowed us to estimate both the magnitude and direction of the loading force as it developed a perpendicular component tending to pull the motor away from the microtubule. We also estimated the motor speed as a function of this changing vector force. The kinesin motors consistently reached unexpectedly high speeds as the force became nonparallel to the direction of motor movement. Our results suggest that a perpendicular component of load does not hinder the kinesin motor, but on the contrary causes the motor to move faster against a given parallel load. Because the perpendicular force component speeds up the motor but does no net work, perpendicular force acts as a mechanical catalyst for the reaction. A simple explanation is that there is a spatial motion of the kinesin molecule during its cycle that is rate-limiting under load; mechanical catalysis results if this motion is oriented away from the surface of the microtubule.
引用
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页码:418 / 429
页数:12
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