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PMID: 9083660 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, P.H.S.

Dynamic strength of molecular adhesion bonds.

Biophysical journal ·Vol. 72 ·No. 4 ·1997-04-00 ·Pages 1541-55

Evans E, Ritchie K

Abstract

In biology, molecular linkages at, within, and beneath cell interfaces arise mainly from weak noncovalent interactions. These bonds will fail under any level of pulling force if held for sufficient time. Thus, when tested with ultrasensitive force probes, we expect cohesive material strength and strength of adhesion at interfaces to be time- and loading rate-dependent properties. To examine what can be learned from measurements of bond strength, we have extended Kramers' theory for reaction kinetics in liquids to bond dissociation under force and tested the predictions by smart Monte Carlo (Brownian dynamics) simulations of bond rupture. By definition, bond strength is the force that produces the most frequent failure in repeated tests of breakage, i.e., the peak in the distribution of rupture forces. As verified by the simulations, theory shows that bond strength progresses through three dynamic regimes of loading rate. First, bond strength emerges at a critical rate of loading (> or = 0) at which spontaneous dissociation is just frequent enough to keep the distribution peak at zero force. In the slow-loading regime immediately above the critical rate, strength grows as a weak power of loading rate and reflects initial coupling of force to the bonding potential. At higher rates, there is crossover to a fast regime in which strength continues to increase as the logarithm of the loading rate over many decades independent of the type of attraction. Finally, at ultrafast loading rates approaching the domain of molecular dynamics simulations, the bonding potential is quickly overwhelmed by the rapidly increasing force, so that only naked frictional drag on the structure remains to retard separation. Hence, to expose the energy landscape that governs bond strength, molecular adhesion forces must be examined over an enormous span of time scales. However, a significant gap exists between the time domain of force measurements in the laboratory and the extremely fast scale of molecular motions. Using results from a simulation of biotin-avidin bonds (Izrailev, S., S. Stepaniants, M. Balsera, Y. Oono, and K. Schulten. 1997. Molecular dynamics study of unbinding of the avidin-biotin complex. Biophys. J., this issue), we describe how Brownian dynamics can help bridge the gap between molecular dynamics and probe tests.

MeSH Terms
Avidin/chemistry,metabolism Biotin/chemistry,metabolism Chemical Phenomena Chemistry, Physical Computer Simulation Mathematics Monte Carlo Method Protein Binding
Chemicals
Avidin Biotin
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Evans E
Department of Physics, University of British Columbia, Vancouver, Canada. [email protected]
Ritchie K
References (16)
16 references, click to expand
  1. Avidin.
    Adv Protein Chem. 1975;29:85-133 PMID: 237414
  2. Molecular dynamics study of unbinding of the avidin-biotin complex.
    Biophys J. 1997 Apr;72(4):1568-81 PMID: 9083662
  3. The reaction-limited kinetics of membrane-to-surface adhesion and detachment.
    Proc R Soc Lond B Biol Sci. 1988 Jun 22;234(1274):55-83 PMID: 2901109
  4. Force generation of organelle transport measured in vivo by an infrared laser trap.
    Nature. 1990 Nov 22;348(6299):346-8 PMID: 2250707
  5. Detachment of agglutinin-bonded red blood cells. I. Forces to rupture molecular-point attachments.
    Biophys J. 1991 Apr;59(4):838-48 PMID: 2065188
  6. The role of solvent viscosity in the dynamics of protein conformational changes.
    Science. 1992 Jun 26;256(5065):1796-8 PMID: 1615323
  7. From molecules to cells: imaging soft samples with the atomic force microscope.
    Science. 1992 Sep 25;257(5078):1900-5 PMID: 1411505
  8. Force of single kinesin molecules measured with optical tweezers.
    Science. 1993 Apr 9;260(5105):232-4 PMID: 8469975
  9. Interaction forces between red cells agglutinated by antibody. IV. Time and force dependence of break-up.
    Biophys J. 1993 Sep;65(3):1318-34 PMID: 8241411
  10. Adhesion forces between individual ligand-receptor pairs.
    Science. 1994 Apr 15;264(5157):415-7 PMID: 8153628
  11. Conformational relaxation and ligand binding in myoglobin.
    Biochemistry. 1994 May 3;33(17):5128-45 PMID: 8172888
  12. Intermolecular forces and energies between ligands and receptors.
    Science. 1994 Oct 14;266(5183):257-9 PMID: 7939660
  13. Lifetime of the P-selectin-carbohydrate bond and its response to tensile force in hydrodynamic flow.
    Nature. 1995 Apr 6;374(6522):539-42 PMID: 7535385
  14. Sensitive force technique to probe molecular adhesion and structural linkages at biological interfaces.
    Biophys J. 1995 Jun;68(6):2580-7 PMID: 7647261
  15. Ligand binding: molecular mechanics calculation of the streptavidin-biotin rupture force.
    Science. 1996 Feb 16;271(5251):997-9 PMID: 8584939
  16. Models for the specific adhesion of cells to cells.
    Science. 1978 May 12;200(4342):618-27 PMID: 347575
Article Info
Journal
Biophysical journal
Abbr.
Biophys J
ISSN
0006-3495
Published
1997-04-00
Pages
1541-55
Language
English
Region
United States
NLM ID
0370626
PMCID
PMC1184350
Subset
IM
Grants
NHLBI NIH HHS · HL 31579 · United States
NHLBI NIH HHS · HL 54700 · United States
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