For over 25 years, imaging of DNA by atomic force microscopy has been intensely pursued. Ideally, such images are then used to probe the physical properties of DNA and characterize protein–DNA interactions. The atomic flatness of mica makes it the preferred substrate for high signal-to-noise ratio (SNR) imaging, but the negative charge of mica and DNA hinders deposition. Traditional methods for imaging DNA and protein–DNA complexes in liquid have drawbacks: DNA conformations with an anomalous persistence length (p), low SNR, and/or ionic deposition conditions detrimental to preserving protein–DNA interactions. Here, we developed a process to bind DNA to mica in a buffer containing both MgCl2 and KCl that resulted in high SNR images of equil...
This thesis work applies Atomic Force Microscopy (AFM) for single-molecule imaging to understand the...
In buffers containing selected transition metal salts, DNA binds to mica tightly enough to be direct...
DNA supercoiling fundamentally constrains and regulates the storage and use of genetic information. ...
International audienceThe elasticity of double-stranded DNA (dsDNA), as described by its persistence...
DNA on mica can be imaged in the atomic force microscope (AFM) in water or in some buffers If the sa...
In the last two decades, the development of the atomic force microscope has progressed hand-in-hand ...
This paper explores suitable conditions for the imaging of DNA molecules by atomic force microscope ...
A simple, controllable and effective sample preparation method was established for atomic force micr...
AbstractPhotolyase DNA interactions and the annealing of restriction fragment ends are directly visu...
A chemical procedure for anchoring DNA molecules to gold surfaces was used to facilitate the imaging...
A chemical procedure for anchoring DNA molecules to gold surfaces was used to facilitate the imaging...
Compaction of DNA in chromatin is a hallmark of the eukaryotic cell and unravelling its structure is...
AbstractScanning force microscopy (SFM) was used to image intact, nearly fully elongated lambda bact...
Analyses of individual biomolecules, like DNA, or DNA–protein complexes, via atomic force microscop...
In this research, a novel method is proposed to improve DNA straightening under an applied electric ...
This thesis work applies Atomic Force Microscopy (AFM) for single-molecule imaging to understand the...
In buffers containing selected transition metal salts, DNA binds to mica tightly enough to be direct...
DNA supercoiling fundamentally constrains and regulates the storage and use of genetic information. ...
International audienceThe elasticity of double-stranded DNA (dsDNA), as described by its persistence...
DNA on mica can be imaged in the atomic force microscope (AFM) in water or in some buffers If the sa...
In the last two decades, the development of the atomic force microscope has progressed hand-in-hand ...
This paper explores suitable conditions for the imaging of DNA molecules by atomic force microscope ...
A simple, controllable and effective sample preparation method was established for atomic force micr...
AbstractPhotolyase DNA interactions and the annealing of restriction fragment ends are directly visu...
A chemical procedure for anchoring DNA molecules to gold surfaces was used to facilitate the imaging...
A chemical procedure for anchoring DNA molecules to gold surfaces was used to facilitate the imaging...
Compaction of DNA in chromatin is a hallmark of the eukaryotic cell and unravelling its structure is...
AbstractScanning force microscopy (SFM) was used to image intact, nearly fully elongated lambda bact...
Analyses of individual biomolecules, like DNA, or DNA–protein complexes, via atomic force microscop...
In this research, a novel method is proposed to improve DNA straightening under an applied electric ...
This thesis work applies Atomic Force Microscopy (AFM) for single-molecule imaging to understand the...
In buffers containing selected transition metal salts, DNA binds to mica tightly enough to be direct...
DNA supercoiling fundamentally constrains and regulates the storage and use of genetic information. ...