Mechanical Properties of Single Motor Molecules Studied by Three‐Dimensional Thermal Force Probing in Optical Tweezers
- 10 August 2004
- journal article
- Published by Wiley in Chemphyschem
- Vol. 5 (8) , 1150-1158
- https://doi.org/10.1002/cphc.200301027
Abstract
A new method combining three‐dimensional (3D) force measurements in an optical trap with the analysis of thermally induced (Brownian) position fluctuations of a trapped probe was used to investigate the mechanical properties of a single molecule, the molecular motor kinesin. One kinesin molecule attached to the probe was bound in a rigorlike state to one microtubule. The optical trap was kept weak to measure the thermal forces acting on the probe, which were mainly counterbalanced by the kinesin tether. The stiffness of kinesin during stretching and compression with respect to its backbone axis were measured. Our results indicate that a section of kinesin close to the motor domain is the dominating element in the flexibility of the motor structure. The experiments demonstrate the power of 3D thermal fluctuation analysis to characterize mechanical properties of individual motor proteins and indicate its usefulness to study single molecule in general.Keywords
This publication has 39 references indexed in Scilit:
- Closing of the Nucleotide Pocket of Kinesin-Family Motors upon Binding to MicrotubulesScience, 2003
- The Overall Conformation of Conventional Kinesins Studied by Small Angle X-ray and Neutron ScatteringPublished by Elsevier ,2001
- Searching for kinesin's mechanical amplifierPhilosophical Transactions Of The Royal Society B-Biological Sciences, 2000
- The Coiled-Coil Helix in the Neck of KinesinJournal of Structural Biology, 1998
- The Crystal Structure of Dimeric Kinesin and Implications for Microtubule-Dependent MotilityCell, 1997
- Switches, latches, and amplifiers: common themes of G proteins and molecular motors.The Journal of cell biology, 1996
- Crystal structure of the kinesin motor domain reveals a structural similarity to myosinNature, 1996
- Adhesion Forces Between Individual Ligand-Receptor PairsScience, 1994
- X-Ray Structure of the GCN4 Leucine Zipper, a Two-Stranded, Parallel Coiled CoilScience, 1991
- Submolecular domains of bovine brain kinesin identified by electron microscopy and monoclonal antibody decorationCell, 1989