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Structural Forces in Biomolecules
Published online by Cambridge University Press: 02 July 2020
Extract
The high spatial resolution and the force sensitivity of the Atomic Force Microscope have made it possible to perform mechanical experiments with single molecules. These experiments give direct access to the forces that stabilize biomolecule structure. In a variety of examples we show how different molecular interactions determine the mechanical stability of polysaccharides, proteins, DNA and other biomolecules.
Under the influence of a stretching force of around 750 pN the polysaccharide dextran undergoes a transition into a stretched conformation during which bond angles flip into a new conformation. Molecular dynamics simulations corroborated this conformational change.
Proteins fold into compact domains. Especially for structural proteins the mechanical stability of these domains is of importance. We show that the immunoglobulin and fibronectin III domains of the muscle protein titin exhibit exceptionally high unfolding forces (150-250 pN) when stretched at speeds of normal muscle operation (Fig. 1).
- Type
- Biological Applications of Scanning Probe Microscopies
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- Copyright
- Copyright © Microscopy Society of America
References
1. Rief, M., Oesterhelt, F., Heymann, B., and Gaub, H. E. (1997). Single molecule force spectroscopy on polysaccharides by AFM. Science 275, 1295–1297.CrossRefGoogle Scholar
2. Rief, M., Gautel, M., Oesterhelt, F., J. M., Fernandez, and Gaub, H. E. (1997). Reversible Unfolding of Individual Titin Immunoglobulin Domains by AFM. Science 276, 1109–1112.CrossRefGoogle ScholarPubMed
3. Smith, S. B., Cui, Y., and Bustamante, C. (1996). Overstretching B-DNA: the elastic response of individual double-stranded and single-stranded DNA molecules. Science 271, 795–798.CrossRefGoogle ScholarPubMed
4. Cluzel, P., Lebrun, A., Heller, C, Lavery, R., Viovy, J.-L., Chateny, D., and Caron, F. (1996). DNA: an extensible molecule. Science 271, 792–794.Google Scholar