When pulled along the axis, double-strand DNA undergoes a large conformational change and elongates by roughly twice its initial contour length at a pulling force of about 70 pN. The transition to this highly overstretched form of DNA is very cooperative. Applying a force perpendicular to the DNA axis (unzipping), double-strand DNA can also be separated into two single-stranded DNA, this being a fundamental process in DNA replication. We study the DNA\ud overstretching and unzipping transition using fully atomistic molecular dynamics (MD) simulations and argue that the conformational changes of double-strand DNA associated with either of the above mentioned processes can be viewed as force induced DNA melting. As the force at one end of the...
AbstractIn this paper, we consider the implications of the general theory developed in the accompany...
AbstractDNA unzipping, the separation of its double helix into single strands, is crucial in modulat...
We stretched a DNA molecule using an atomic force microscope (AFM) and quantified the mechanical pro...
When pulled along the axis, double-strand DNA undergoes a large conformational change and elongates ...
AbstractThe highly cooperative elongation of a single B-DNA molecule to almost twice its contour len...
Overstretching of DNA occurs at about 60-70 pN when a torsionally unconstrained double-stranded DNA ...
We measure the constant force required to melt double-stranded (ds) DNA as a function of length for ...
AbstractStrand separation of double-stranded DNA is a crucial step for essential cellular processes ...
Single-molecule experiments on double-stranded B-DNA stretching have revealed one or two structural ...
AbstractUsing a modified atomic force microscope (AFM), individual double-stranded (ds) DNA molecule...
Single-molecule manipulation studies have revealed that double-stranded DNA undergoes a structural t...
DNA unzipping, the separation of its double helix into single strands, is crucial in modulating a ho...
ABSTRACT Using a modified atomic force microscope (AFM), individual double-stranded (ds) DNA molecul...
We stretched a DNA molecule using atomic force microscope and quantified the mechanical properties a...
DNA unwinding is an important process that controls binding of proteins, gene expression and melting...
AbstractIn this paper, we consider the implications of the general theory developed in the accompany...
AbstractDNA unzipping, the separation of its double helix into single strands, is crucial in modulat...
We stretched a DNA molecule using an atomic force microscope (AFM) and quantified the mechanical pro...
When pulled along the axis, double-strand DNA undergoes a large conformational change and elongates ...
AbstractThe highly cooperative elongation of a single B-DNA molecule to almost twice its contour len...
Overstretching of DNA occurs at about 60-70 pN when a torsionally unconstrained double-stranded DNA ...
We measure the constant force required to melt double-stranded (ds) DNA as a function of length for ...
AbstractStrand separation of double-stranded DNA is a crucial step for essential cellular processes ...
Single-molecule experiments on double-stranded B-DNA stretching have revealed one or two structural ...
AbstractUsing a modified atomic force microscope (AFM), individual double-stranded (ds) DNA molecule...
Single-molecule manipulation studies have revealed that double-stranded DNA undergoes a structural t...
DNA unzipping, the separation of its double helix into single strands, is crucial in modulating a ho...
ABSTRACT Using a modified atomic force microscope (AFM), individual double-stranded (ds) DNA molecul...
We stretched a DNA molecule using atomic force microscope and quantified the mechanical properties a...
DNA unwinding is an important process that controls binding of proteins, gene expression and melting...
AbstractIn this paper, we consider the implications of the general theory developed in the accompany...
AbstractDNA unzipping, the separation of its double helix into single strands, is crucial in modulat...
We stretched a DNA molecule using an atomic force microscope (AFM) and quantified the mechanical pro...