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lüll Biophysical characterization of DNA binding from single molecule force measurements Chaurasiya KR; Paramanathan T; McCauley MJ; Williams MCPhys Life Rev 2010[Sep]; 7 (3): 299-341Single molecule force spectroscopy is a powerful method that uses the mechanical properties of DNA to explore DNA interactions. Here we describe how DNA stretching experiments quantitatively characterize the DNA binding of small molecules and proteins. Small molecules exhibit diverse DNA binding modes, including binding into the major and minor grooves and intercalation between base pairs of double-stranded DNA (dsDNA). Histones bind and package dsDNA, while other nuclear proteins such as high mobility group proteins bind to the backbone and bend dsDNA. Single-stranded DNA (ssDNA) binding proteins slide along dsDNA to locate and stabilize ssDNA during replication. Other proteins exhibit binding to both dsDNA and ssDNA. Nucleic acid chaperone proteins can switch rapidly between dsDNA and ssDNA binding modes, while DNA polymerases bind both forms of DNA with high affinity at distinct binding sites at the replication fork. Single molecule force measurements quantitatively characterize these DNA binding mechanisms, elucidating small molecule interactions and protein function.|*Microscopy, Atomic Force[MESH]|Biophysics/*methods[MESH]|DNA, Single-Stranded/chemistry/metabolism[MESH]|DNA-Binding Proteins/chemistry/*metabolism[MESH]|DNA-Directed DNA Polymerase/chemistry/metabolism[MESH]|DNA/chemistry/*metabolism/ultrastructure[MESH]|Molecular Chaperones/chemistry/metabolism[MESH] |