Direct measurement of transversely isotropic DNA nanotube by force–distance curve‐based atomic force microscopy. (1st October 2015)
- Record Type:
- Journal Article
- Title:
- Direct measurement of transversely isotropic DNA nanotube by force–distance curve‐based atomic force microscopy. (1st October 2015)
- Main Title:
- Direct measurement of transversely isotropic DNA nanotube by force–distance curve‐based atomic force microscopy
- Authors:
- Ma, Zhipeng
Kim, Young‐Joo
Park, Seongsu
Hirai, Yoshikazu
Tsuchiya, Toshiyuki
Kim, Do‐Nyun
Tabata, Osamu - Abstract:
- Abstract : DNA origami is one of the most promising ways to create novel two‐dimensional (2D) and 3D structures, assemble inorganic and organic materials, and synthesise functional micro/nano systems. In particular, DNA origami structures consisting of nanotube configurations can function as mechanical components for encapsulating materials such as gold particles or drug proteins, due to their tubular structure, relatively high rigidity, high aspect ratio and other desirable characteristics, but certain mechanical properties such as radial rigidity have yet to be fully determined experimentally. A report is presented on the direct measurement of the radial modulus of a DNA nanotube structure by force–distance curve‐based atomic force microscopy, in a magnesium ion solution. A Hertz model, corrected using the finite‐element method to achieve greater realism, was employed to determine the DNA nanotube's actual radial modulus in two states, corresponding to the rigidity of a porous and electrostatically repulsive nanotube lattice, and the rigidity of a packed and elastic honeycomb lattice. Furthermore, the biphasic radial modulus was verified by estimation of the inter‐helix electrostatic force and torsional rigidity of a six‐helix DNA nanotube, with results comparable to those reported elsewhere. The anisotropy of the DNA nanotube honeycomb lattice revealed by the authors' radial measurements should be useful when developing new DNA structures and may enable furtherAbstract : DNA origami is one of the most promising ways to create novel two‐dimensional (2D) and 3D structures, assemble inorganic and organic materials, and synthesise functional micro/nano systems. In particular, DNA origami structures consisting of nanotube configurations can function as mechanical components for encapsulating materials such as gold particles or drug proteins, due to their tubular structure, relatively high rigidity, high aspect ratio and other desirable characteristics, but certain mechanical properties such as radial rigidity have yet to be fully determined experimentally. A report is presented on the direct measurement of the radial modulus of a DNA nanotube structure by force–distance curve‐based atomic force microscopy, in a magnesium ion solution. A Hertz model, corrected using the finite‐element method to achieve greater realism, was employed to determine the DNA nanotube's actual radial modulus in two states, corresponding to the rigidity of a porous and electrostatically repulsive nanotube lattice, and the rigidity of a packed and elastic honeycomb lattice. Furthermore, the biphasic radial modulus was verified by estimation of the inter‐helix electrostatic force and torsional rigidity of a six‐helix DNA nanotube, with results comparable to those reported elsewhere. The anisotropy of the DNA nanotube honeycomb lattice revealed by the authors' radial measurements should be useful when developing new DNA structures and may enable further applications that utilise DNA origami structures as a mechanical component. … (more)
- Is Part Of:
- Micro & nano letters. Volume 10:Number 10(2015)
- Journal:
- Micro & nano letters
- Issue:
- Volume 10:Number 10(2015)
- Issue Display:
- Volume 10, Issue 10 (2015)
- Year:
- 2015
- Volume:
- 10
- Issue:
- 10
- Issue Sort Value:
- 2015-0010-0010-0000
- Page Start:
- 513
- Page End:
- 517
- Publication Date:
- 2015-10-01
- Subjects:
- DNA -- molecular biophysics -- molecular configurations -- honeycomb structures -- nanoporous materials -- nanotubes -- shear modulus -- finite element analysis -- atomic force microscopy -- electrostatics -- biological techniques -- biomechanics
transversely isotropic DNA nanotube -- force–distance curve‐based atomic force microscopy -- DNA origami structures -- six‐helix DNA nanotube -- torsional rigidity -- interhelix electrostatic force -- biphasic radial modulus -- elastic honeycomb lattice -- porous nanotube lattice -- finite element method -- Hertz model -- magnesium ion solution
Nanotechnology -- Periodicals
Nanostructures -- Periodicals
Microtechnology -- Periodicals
620.5 - Journal URLs:
- http://digital-library.theiet.org/content/journals/mnl ↗
https://ietresearch.onlinelibrary.wiley.com/journal/17500443 ↗
http://www.theiet.org/ ↗ - DOI:
- 10.1049/mnl.2015.0174 ↗
- Languages:
- English
- ISSNs:
- 1750-0443
- Deposit Type:
- Legaldeposit
- View Content:
- Available online (eLD content is only available in our Reading Rooms) ↗
- Physical Locations:
- British Library DSC - 5756.775460
British Library DSC - BLDSS-3PM
British Library HMNTS - ELD Digital store - Ingest File:
- 23200.xml