Bart W Hoogenboom
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Co2+-mediated adsorption facilitates atomic force microscopy of DNA molecules at double-helix resolution
Abstract Atomic force microscopy (AFM) has demonstrated the ability to resolve single DNA molecules in liquid at a spatial resolution that is sufficient to visualize the double helix structure and variations therein. Such variations can be due to inherent configurational flexibility and may be related to, e.g., DNA sequence, ionic screening, supercoiling, or protein binding. These AFM experiments require DNA to be adhered to a solid and preferably flat support.
Finite Element Modelling of Atomic Force Microscopy Imaging on Deformable Surfaces
Finite Element Modelling of Atomic Force Microscopy Imaging on Deformable Surfaces Atomic force microscopy (AFM) provides a three-dimensional topographic representation of a sample surface, at nanometre resolution. Computational simulations can aid the interpretation of such representations, but have mostly been limited to cases where both the AFM probe and the sample are hard and not compressible.
Single-molecule measurements reveal that PARP1 condenses DNA by loop stabilization
Abstract Poly(ADP-ribose) polymerase 1 (PARP1) is an abundant nuclear enzyme that plays important roles in DNA repair, chromatin organization and transcription regulation. Although binding and activation of PARP1 by DNA damage sites has been extensively studied, little is known about how PARP1 binds to long stretches of undamaged DNA and how it could shape chromatin architecture.
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