4.6 Article

A novel strategy for programmable DNA tile self-assembly with a DNAzyme-mediated DNA cross circuit

Journal

NEW JOURNAL OF CHEMISTRY
Volume 46, Issue 14, Pages 6775-6782

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/d1nj06012k

Keywords

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Funding

  1. National Key Technology R&D Program of China [2018YFC0910500]
  2. National Natural Science Foundation of China [61425002, 61751203, 61772100, 61972266, 61802040]
  3. LiaoNing Revitalization Talents Program [XLYC2008017]
  4. Innovation and Entrepreneurship Team of Dalian University [XQN202008]
  5. Natural Science Foundation of Liaoning Province [2021-MS-344]
  6. Liaoning BaiQianWan Talents Program
  7. General Project of the Education Department of Liaoning Province [LJKZ1186]

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This article introduces a controllable DNA cross circuit based on a new control method and realizes a programmable DNA tile self-assembly strategy by integrating a DNA cross circuit and DNA tile self-assembly. The design of this system provides a new idea for generating dynamic and controllable trigger elements and broadens the programmable range of stimuli-responsive self-assembly.
As people are placing great importance on controlling the construction process of complex nanostructures, an increasing number of self-assembly strategies have been developed and utilized. Among them, dynamic DNA circuits as a trigger element to control DNA tile assembly have become an area of intense research. However, many significant challenges still exist in terms of improving the modularity and controllability of dynamic DNA circuits and realizing programmable DNA tile self-assembly. In this article, we construct a controllable DNA cross circuit based on a DNAzyme using a new control method and realize a programmable DNA tile self-assembly strategy by integrating a DNA cross circuit and DNA tile self-assembly. The basic idea of this new control method is to bidirectionally control the activity of the DNAzyme by changing the conformation of the DNAzyme, so as to realize the controllability of signal conversion in the DNA cross circuit. Based on this new control method, we design two double-stranded structures. Then, different inputs are used to activate the corresponding DNAzymes to further construct the modular DNA cross circuit. At the same time, the modular DNA cross circuit is used to realize different DNA tile assembly methods. The design of this system provides a new idea for generating dynamic and controllable trigger elements and broadens the programmable range of stimuli-responsive self-assembly.

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