Science · 1996 · 929 citations · 18 references
Streptavidin-biotin ComplexSingle Molecule BiophysicsProtein FoldingBiotin LigandBinding ForcesNatural SciencesBiophysical AspectMolecular BiologyCytoskeletonLigand BindingBiomolecular InteractionMolecular MechanicMedicineBiophysicsComputational Biophysics
The authors used computer simulations to calculate the rupture force of streptavidin‑biotin, attributing binding strength to a hydrogen‑bond network and water bridges within the pocket. The calculated rupture force matches single‑molecule AFM measurements and reveals a five‑step, water‑bridge‑dominated unbinding pathway, with steric effects negligible.
The force required to rupture the streptavidin-biotin complex was calculated here by computer simulations. The computed force agrees well with that obtained by recent single molecule atomic force microscope experiments. These simulations suggest a detailed multiple-pathway rupture mechanism involving five major unbinding steps. Binding forces and specificity are attributed to a hydrogen bond network between the biotin ligand and residues within the binding pocket of streptavidin. During rupture, additional water bridges substantially enhance the stability of the complex and even dominate the binding interactions. In contrast, steric restraints do not appear to contribute to the binding forces, although conformational motions were observed.
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J. Andrew McCammon, Bruce R. Gelin, Martin Karplus · Nature · 1977 · 2K citations
Adhesion Forces Between Individual Ligand-Receptor Pairs
Ernst‐Ludwig Florin, Vincent T. Moy, Hermann E. Gaub · Science · 1994 · 1.9K citations