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- W2898891503 abstract "The mechanical properties of cells and of subcellular components are important to obtain a mechanistic molecular understanding of biological processes. The quantification of mechanical resistance of cells and biomolecules using biophysical methods matured thanks to the development of nanotechnologies such as optical and magnetic tweezers, the biomembrane force probe, and atomic force microscopy (AFM). The quantitative nature of force spectroscopySpectroscopy measurements has converted AFM into a valuable tool in biophysics. Force spectroscopy allows the determination of the forces required to unfold protein domainsDomains and to disrupt individual receptor/ligand bonds. Molecular simulations as a computational microscope allow investigation of similar biological processes with an atomistic detail. In this chapter, we first provide a step-by-step protocol of force spectroscopyForce spectroscopy experiments using AFM, including sample preparation, measurements, and analysis and interpretation of the resulting dynamic force spectrum in terms of available theories. Next, we present the backgroundBackground for molecular dynamics (MD) simulations focusing on steered molecular dynamicsDynamics (SMD) and the importance of bridging computational tools with experimental techniques." @default.
- W2898891503 created "2018-11-09" @default.
- W2898891503 creator A5056660550 @default.
- W2898891503 creator A5081274006 @default.
- W2898891503 date "2018-10-30" @default.
- W2898891503 modified "2023-10-17" @default.
- W2898891503 title "Single-Molecule Force Spectroscopy: Experiments, Analysis, and Simulations" @default.
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