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DNA Self-Assembly Mediated by Programmable Soft-Patchy Interactions

delete2020-10-13
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OA
AI
S
Sanja Novak
张静 cover
张静 (Jing Zhang)
E
Emmanuel Kentzinger
R
Ruecker, Ulrich
G
Giuseppe Portale *
N
Niklas Jung
U
Ulrich Jonas
M
Myung, Jin S.
R
Roland G. Winkler
G
Gerhard Gompper
D
Dhont, Jan K. G.
E
Emmanuel Stiakakis *
DOI:10.1021/acsnano.0c05536delete
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Abstract

Abstract

En 中文
Adding shape and interaction anisotropy to a colloidal particle offers exquisitely tunable routes to engineer a rich assortment of complex-architected structures. Inspired by the hierarchical self-assembly concept with block copolymers and DNA liquid crystals and exploiting the unique assembly properties of DNA, we report here the construction and self-assembly of DNA-based soft-patchy anisotropic particles with a high degree of modularity in the system's design. By programmable positioning of thermoresponsive polymeric patches on the backbone of a stiff DNA duplex with linear and star-shaped architecture, wet reversibly drive the DNA from a disordered ensemble to a diverse array of long-range ordered multidimensional nanostructures with tunable lattice spacing, ranging from lamellar to bicontinuous double-gyroid and double-diamond cubic morphologies, through the alteration of temperature. Our results demonstrate that the proposed hierarchical self-assembly strategy can be applied to any kind of DNA nanoarchitecture, highlighting the design principles for integration of self-assembly concepts from the physics of liquid crystals, block copolymers, and patchy colloids into the continuously growing interdisciplinary research field of structural DNA nanotechnology.
Keywords:
DNA
self-assembly
anisotropic patchy particles
liquid crystals
block copolymers
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ACS Nano cover
ACS Nano
IF:
16
Papers:
2.6W
Citations:
25.6W

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H
Heinrich Heine University Dusseldorf
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U
Universitat Siegen
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