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PMID: 9790829 Published · ppublish English Journal Article

Hysteresis in force probe measurements: a dynamical systems perspective.

Journal of theoretical biology ·Vol. 194 ·No. 4 ·1998-10-21 ·Pages 551-9

Shapiro BE, Qian H

Abstract

Macromolecular binding forces between single protein-ligand pairs have been directly measured with the Atomic Force Microscope (AFM) in several recent experiments. In a typical measurement, the AFM probe, or cantilever, is attached to the ligand and exerts a disruptive force on the bond between the macromolecular pair while the receptor is held fixed; the probe is then moved away from the substrate until the bond is broken. When the bond actually breaks, the tip is observed to slip; in fact, the ligand is jumping to a new equilibrium point determined purely by the cantilever, as if the receptor had been instantaneously moved to infinity. This "jumping-off" or "minimum rupture force" is determined by measuring cantilever deflection. In a similar manner, the two molecules can be brought together and the "jumping-on" force can be determined. These two measurements will result in different estimates of the binding force due to hysteresis. This hysteresis is caused by a cusp catastrophe in the space defined by probe position and cantilever stiffness. The phenomena of "jumping-off" in macromolecular rupture experiments and "jumping-on" when molecules are brought together occur when the system passes through a saddle-node bifurcation as the probe position is varied. Probe approach and withdrawal result in different post-bifurcation equilibria, different energy dissipation, and different force measurements.

MeSH Terms
Animals Biomechanical Phenomena Macromolecular Substances Microscopy, Atomic Force Models, Biological Nonlinear Dynamics Protein Binding Proteins/metabolism
Chemicals
Macromolecular Substances Proteins
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Shapiro B E
Department of Biomathematics, UCLA School of Medicine, AV-155 CHS, 10833 Le Conte Ave, Los Angeles, CA, 90095-1766, USA. [email protected]
Qian H
Article Info
Journal
Journal of theoretical biology
Abbr.
J Theor Biol
ISSN
0022-5193
Published
1998-10-21
Pages
551-9
Language
English
Region
England
NLM ID
0376342
Subset
IM
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