Abstract
We have recently developed a new method for directly measuring the spring constant of single molecules and molecular complexes on a real-time basis [L.A. Chtcheglova, G.T. Shubeita, S.K. Sekatskii, G. Dietler, Biophys. J. 86 (2004) 1177]. The technique combines standard force spectroscopy with a small dithering of tip. Changes in the amplitude of the oscillations are measured as a function of the pulling-off force to yield the spring constant of the complex. In this report, we present the first results of combination of this approach with the force-clamp spectroscopy. The standard atomic-force microscope has been supplemented with an electronic unit, which is capable of realizing an arbitrary force function, and permits the force-loading regime to be interrupted at any time. Using this method, the time needed to rupture a single bond can be measured as a function of the force that is required to maintain the complex in a stretched condition. The energy landscape of the avidin-biotin complex is explored and discussed.
| Original language | English |
|---|---|
| Pages (from-to) | 882-886 |
| Number of pages | 5 |
| Journal | Ultramicroscopy |
| Volume | 107 |
| Issue number | 10-11 |
| DOIs | |
| Publication status | Published - Oct 2007 |
Fields of science
- 210006 Nanotechnology
- 103 Physics, Astronomy
- 106006 Biophysics
- 106023 Molecular biology
- 301114 Cell biology
JKU Focus areas
- Nano-, Bio- and Polymer-Systems: From Structure to Function
- Engineering and Natural Sciences (in general)
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