The folding of various intra- and intermolecular i-motif DNAs is systematically studied to expand the toolbox for the control of mechanical operations in DNA nanoarchitectures. We analyzed i-motif DNAs with two C-tracts under acidic conditions by gel electrophoresis, circular dichroism, and thermal denaturation and show that their intra- versus intermolecular folding primarily depends on the length of the C-tracts. Two stretches of six or fewer C-residues favor the intermolecular folding of i-motifs, whereas longer C-tracts promote the formation of intramolecular i-motif structures with unusually high thermal stability. We then introduced intra- and intermolecular i-motifs formed by DNAs containing two C-tracts into single-stranded regions ...
Cytosine-rich DNA can fold into four-stranded intercalated structures called i-motifs (iMs) under ac...
Under slightly acidic conditions, cytosine-rich DNA sequences can form non-canonical secondary struc...
Mechanically interlocked DNA nanostructures are useful as flexible entities for operating DNA-based ...
The folding of various intra- and intermolecular i-motif DNAs is systematically studied to expand th...
Although the canonical right-handed B-DNA is the predominant form of DNA in cells, DNA can adopt oth...
DNA i-motif is an intercalated quadruplex structure formed by association of hemi- protonated C•CH+ ...
The cytosine (C)-rich sequences that can fold into tetraplex structures known as i-motif are prevale...
We demonstrate the single-molecule operation and observation of the formation and resolution of doub...
We demonstrate the single-molecule operation and observation of the formation and resolution of doub...
We have investigated for the first time the structure of i-motif DNA in solution at various pH condi...
i-Motifs are four-stranded DNA structures consisting of two parallel DNA duplexes held together by h...
Since the first introduction by Seeman in the early 1980s, structural DNA nanotechnology has been ra...
Cytosine-rich DNA sequences are able to fold into noncanonical structures, in which semi-protonated ...
AbstractThe four-stranded i-motif (iM) conformation of cytosine-rich DNA has importance to a wide va...
i-Motifs are alternative DNA secondary structures formed in cytosine-rich sequences. Particular exam...
Cytosine-rich DNA can fold into four-stranded intercalated structures called i-motifs (iMs) under ac...
Under slightly acidic conditions, cytosine-rich DNA sequences can form non-canonical secondary struc...
Mechanically interlocked DNA nanostructures are useful as flexible entities for operating DNA-based ...
The folding of various intra- and intermolecular i-motif DNAs is systematically studied to expand th...
Although the canonical right-handed B-DNA is the predominant form of DNA in cells, DNA can adopt oth...
DNA i-motif is an intercalated quadruplex structure formed by association of hemi- protonated C•CH+ ...
The cytosine (C)-rich sequences that can fold into tetraplex structures known as i-motif are prevale...
We demonstrate the single-molecule operation and observation of the formation and resolution of doub...
We demonstrate the single-molecule operation and observation of the formation and resolution of doub...
We have investigated for the first time the structure of i-motif DNA in solution at various pH condi...
i-Motifs are four-stranded DNA structures consisting of two parallel DNA duplexes held together by h...
Since the first introduction by Seeman in the early 1980s, structural DNA nanotechnology has been ra...
Cytosine-rich DNA sequences are able to fold into noncanonical structures, in which semi-protonated ...
AbstractThe four-stranded i-motif (iM) conformation of cytosine-rich DNA has importance to a wide va...
i-Motifs are alternative DNA secondary structures formed in cytosine-rich sequences. Particular exam...
Cytosine-rich DNA can fold into four-stranded intercalated structures called i-motifs (iMs) under ac...
Under slightly acidic conditions, cytosine-rich DNA sequences can form non-canonical secondary struc...
Mechanically interlocked DNA nanostructures are useful as flexible entities for operating DNA-based ...