Dynamic strength of molecular adhesion bonds.
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Summary
How Brownian dynamics can help bridge the gap between molecular dynamics and probe tests is described, which shows that bond strength progresses through three dynamic regimes of loading rate.
- Type
- article
- Published
- 1997-04-01
- Cited by
- 2,247
- References
- 24
- Access
- Open access
- OpenAlex
- https://openalex.org/W2019877102
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:23079401
Keywords
Bond strength, Breakage, Molecular dynamics, Brownian dynamics, Materials science
References
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- From molecules to cells: imaging soft samples with the atomic force microscope.
- Brownian diffusion of particles with hydrodynamic interaction
- The role of solvent viscosity in the dynamics of protein conformational changes.
- Lifetime of the P-selectin-carbohydrate bond and its response to tensile force in hydrodynamic flow
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- Sensitive force technique to probe molecular adhesion and structural linkages at biological interfaces.
- Force generation of organelle transport measured in vivo by an infrared laser trap
- Determination of Single-Bond Forces from Contact Force Variances in Atomic Force Microscopy
- Force of single kinesin molecules measured with optical tweezers.
- Sensing Discrete Streptavidin-Biotin Interactions with Atomic Force Microscopy
- Models for the specific adhesion of cells to cells.
- Brownian dynamics as smart Monte Carlo simulation
- Interaction forces between red cells agglutinated by antibody. IV. Time and force dependence of break-up.
- Intermolecular forces and energies between ligands and receptors.
- Conformational relaxation and ligand binding in myoglobin.
- Reaction-rate theory: fifty years after Kramers
Cited by
- Measuring the forces that control protein interactions.
- Unbinding forces of single antibody-antigen complexes correlate with their thermal dissociation rates.
- Temperature dependence of unbinding forces between complementary DNA strands.
- Cooperative adhesion of ligand-receptor bonds.
- DNA sequences classification and computation scheme based on the symmetry principle
- Fracture Mechanics Studies of Adhesion in Biological Systems
- Cell Adhesion: A surprising cohesive force
- Single molecule studies of protein folding using atomic force microscopy.
- Force-clamp spectroscopy with a small dithering of AFM tip, and its application to explore the energy landscape of single avidin-biotin complex.
- Cell dynamic adhesion and elastic properties probed with cylindrical atomic force microscopy cantilever tips
- Single-molecule dynamic force spectroscopy of the fibronectin-heparin interaction.
- A single-molecule perspective on the role of solvent hydrogen bonds in protein folding and chemical reactions.
- Force and function: probing proteins with AFM-based force spectroscopy.
- Early T‐cell activation biophysics
- Interaction of an anticancer peptide fragment of azurin with p53 and its isolated domains studied by atomic force spectroscopy
- Cell-Biomaterial Mechanical Interaction in the Framework of Tissue Engineering: Insights, Computational Modeling and Perspectives
- Nanoscale mechanical properties of lipid bilayers and their relevance in biomembrane organization and function.
- Secondary Bjerknes forces deform targeted microbubbles
- Simulations reveal that the HIV-1 gp120-CD4 complex dissociates via complex pathways and is a potential target of the polyamidoamine (PAMAM) dendrimer.
- Quantification of red blood cell adhesion using holographic optical tweezers and single cell force spectroscopy
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