AbstractWe study DNA supercoiling in a quantitative fashion by micromanipulating single linear DNA molecules with a magnetic field gradient. By anchoring one end of the DNA to multiple sites on a magnetic bead and the other end to multiple sites on a glass surface, we were able to exert torsional control on the DNA. A rotating magnetic field was used to induce rotation of the magnetic bead, and reversibly over- and underwind the molecule. The magnetic field was also used to increase or decrease the stretching force exerted by the magnetic bead on the DNA. The molecule’s degree of supercoiling could therefore be quantitatively controlled and monitored, and tethered-particle motion analysis allowed us to measure the stretching force acting on...
We report the development of a magnetic tweezers that can be used to micromanipulate single DNA mole...
Magnetic tweezers (MT) are a powerful tool for the study of DNA-enzyme interactions. Both the magnet...
Magnetic tweezers (MT) are a powerful tool for the study of DNA-enzyme interactions. Both the magnet...
AbstractWe study DNA supercoiling in a quantitative fashion by micromanipulating single linear DNA m...
This paper presents a method for the stretching of DNA molecules on mica surfaces by magnetic field....
Cellular DNA is regularly subject to torsional stress during genomic processes, such as transcriptio...
Submicrometer elasticity of double-stranded DNA (dsDNA) governs nanoscale bending of DNA segments an...
We use an elastic rod model with contact to study the extension versus rotation diagrams of single s...
In living systems DNA is subjected to considerable confinement but the molecule acts itself also as ...
The opening of DNA double strands is extremely relevant to several biological functions, such as rep...
AbstractTwisting a DNA molecule held under constant tension is accompanied by a transition from a li...
In living systems DNA is subjected to considerable confinement but the molecule acts itself also as ...
We report the development of a magnetic tweezers that can be used to micromanipulate single DNA mole...
In living systems DNA is subjected to considerable confinement but the molecule acts itself also as ...
<p><b>A</b> The left diagram shows how an individual double-stranded DNA molecule with DIG labels is...
We report the development of a magnetic tweezers that can be used to micromanipulate single DNA mole...
Magnetic tweezers (MT) are a powerful tool for the study of DNA-enzyme interactions. Both the magnet...
Magnetic tweezers (MT) are a powerful tool for the study of DNA-enzyme interactions. Both the magnet...
AbstractWe study DNA supercoiling in a quantitative fashion by micromanipulating single linear DNA m...
This paper presents a method for the stretching of DNA molecules on mica surfaces by magnetic field....
Cellular DNA is regularly subject to torsional stress during genomic processes, such as transcriptio...
Submicrometer elasticity of double-stranded DNA (dsDNA) governs nanoscale bending of DNA segments an...
We use an elastic rod model with contact to study the extension versus rotation diagrams of single s...
In living systems DNA is subjected to considerable confinement but the molecule acts itself also as ...
The opening of DNA double strands is extremely relevant to several biological functions, such as rep...
AbstractTwisting a DNA molecule held under constant tension is accompanied by a transition from a li...
In living systems DNA is subjected to considerable confinement but the molecule acts itself also as ...
We report the development of a magnetic tweezers that can be used to micromanipulate single DNA mole...
In living systems DNA is subjected to considerable confinement but the molecule acts itself also as ...
<p><b>A</b> The left diagram shows how an individual double-stranded DNA molecule with DIG labels is...
We report the development of a magnetic tweezers that can be used to micromanipulate single DNA mole...
Magnetic tweezers (MT) are a powerful tool for the study of DNA-enzyme interactions. Both the magnet...
Magnetic tweezers (MT) are a powerful tool for the study of DNA-enzyme interactions. Both the magnet...