Literature DB >> 22126326

Effect of DNA hairpin loops on the twist of planar DNA origami tiles.

Zhe Li1, Lei Wang, Hao Yan, Yan Liu.   

Abstract

The development of scaffolded DNA origami, a technique in which a long single-stranded viral genome is folded into arbitrary shapes by hundreds of short synthetic oligonucleotides, represents an important milestone in DNA nanotechnology. Recent findings have revealed that two-dimensional (2D) DNA origami structures based on the original design parameters adopt a global twist with respect to the tile plane, which may be because the conformation of the constituent DNA (10.67 bp/turn) deviates from the natural B-type helical twist (10.4 bp/turn). Here we aim to characterize the effects of DNA hairpin loops on the overall curvature of the tile and explore their ability to control, and ultimately eliminate any unwanted curvature. A series of dumbbell-shaped DNA loops were selectively displayed on the surface of DNA origami tiles with the expectation that repulsive interactions among the neighboring dumbbell loops and between the loops and the DNA origami tile would influence the structural features of the underlying tiles. A systematic, atomic force microscopy (AFM) study of how the number and position of the DNA loops influenced the global twist of the structure was performed, and several structural models to explain the results were proposed. The observations unambiguously revealed that the first generation of rectangular shaped origami tiles adopt a conformation in which the upper right (corner 2) and bottom left (corner 4) corners bend upward out of the plane, causing linear superstructures attached by these corners to form twisted ribbons. Our experimental observations are consistent with the twist model predicted by the DNA mechanical property simulation software CanDo. Through the systematic design and organization of various numbers of dumbbell loops on both surfaces of the tile, a nearly planar rectangular origami tile was achieved.
© 2011 American Chemical Society

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Year:  2011        PMID: 22126326      PMCID: PMC3319873          DOI: 10.1021/la2037873

Source DB:  PubMed          Journal:  Langmuir        ISSN: 0743-7463            Impact factor:   3.882


  59 in total

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2.  Self-assembly of chiral DNA nanotubes.

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5.  Engineering a 2D protein-DNA crystal.

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6.  Rapid chiral assembly of rigid DNA building blocks for molecular nanofabrication.

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8.  A study of DNA tube formation mechanisms using 4-, 8-, and 12-helix DNA nanostructures.

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  8 in total

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6.  Choosing dyes for cw-STED nanoscopy using self-assembled nanorulers.

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7.  Binary control of enzymatic cleavage of DNA origami by structural antideterminants.

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8.  Coarse-grained modelling of the structural properties of DNA origami.

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Journal:  Nucleic Acids Res       Date:  2019-02-20       Impact factor: 16.971

  8 in total

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