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Decreased water activity in nanoconfinement contributes to the folding of G-quadruplex and i-motif structures
Author(s) -
Sagun Jonchhe,
Shankar Pandey,
Tomoko Emura,
Kumi Hidaka,
Mohammad Akter Hossain,
Prakash Shrestha,
Hiroshi Sugiyama,
Masayuki Endo,
Hanbin Mao
Publication year - 2018
Publication title -
proceedings of the national academy of sciences
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.011
H-Index - 771
eISSN - 1091-6490
pISSN - 0027-8424
DOI - 10.1073/pnas.1805939115
Subject(s) - nanocages , biomolecule , polyethylene glycol , chemistry , structural motif , folding (dsp implementation) , dna , molecule , biophysics , peg ratio , g quadruplex , nanotechnology , dna nanotechnology , dna origami , protein folding , biochemistry , materials science , biology , organic chemistry , finance , engineering , economics , electrical engineering , catalysis
Due to the small size of a nanoconfinement, the property of water contained inside is rather challenging to probe. Herein, we measured the amount of water molecules released during the folding of individual G-quadruplex and i-motif structures, from which water activities are estimated in the DNA nanocages prepared by 5 × 5 to 7 × 7 helix bundles (cross-sections, 9 × 9 to 15 × 15 nm). We found water activities decrease with reducing cage size. In the 9 × 9-nm cage, water activity was reduced beyond the reach of regular cosolutes such as polyethylene glycol (PEG). With this set of nanocages, we were able to retrieve the change in water molecules throughout the folding trajectory of G-quadruplex or i-motif. We found that water molecules absorbed from the unfolded to the transition states are much fewer than those lost from the transition to the folded states. The overall loss of water therefore drives the folding of G-quadruplex or i-motif in nanocages with reduced water activities.

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