Observation of Individual Microtubule Motor Steps in Living Cells with Endocytosed Quantum Dots
- 1 December 2005
- journal article
- research article
- Published by American Chemical Society (ACS) in The Journal of Physical Chemistry B
- Vol. 109 (51) , 24220-24224
- https://doi.org/10.1021/jp056360w
Abstract
We report the observation of individual steps taken by motor proteins in living cells by following movements of endocytic vesicles that contain quantum dots (QDs) with a fast camera. The brightness and photostability of quantum dots allow us to record motor displacement traces with 300 μs time resolution and 1.5 nm spatial precision. We observed individual 8 nm steps in active transport toward both the microtubule plus- and minus-ends, the directions of kinesin and dynein movements, respectively. In addition, we clearly resolved abrupt 16 nm steps in the plus-end direction and often consecutive 16 nm and occasional 24 nm steps in minus-end directed movements. This work demonstrates the ability of the QD assay to probe the operation of motor proteins at the molecular level in living cells under physiological conditions.Keywords
This publication has 28 references indexed in Scilit:
- Use of negative stain and single-particle image processing to explore dynamic properties of flexible macromoleculesJournal of Structural Biology, 2004
- Kinesin Walks Hand-Over-HandScience, 2004
- Near-Complete Suppression of Quantum Dot Blinking in Ambient ConditionsJournal of the American Chemical Society, 2004
- Kinesin Moves by an Asymmetric Hand-Over-Hand MechanismScience, 2003
- Myosin V Walks Hand-Over-Hand: Single Fluorophore Imaging with 1.5-nm LocalizationScience, 2003
- Dynein structure and power strokeNature, 2003
- Precise Nanometer Localization Analysis for Individual Fluorescent ProbesPublished by Elsevier ,2002
- Semiconductor Nanocrystals as Fluorescent Biological LabelsScience, 1998
- The Kinetic Cycles of Myosin, Kinesin, and DyneinAnnual Review of Physiology, 1996
- Force generation of organelle transport measured in vivo by an infrared laser trapNature, 1990