4.8 Article

Multifunctional Clip Strand for the Regulation of DNA Strand Displacement and Construction of Complex DNA Nanodevices

期刊

ACS NANO
卷 15, 期 7, 页码 11573-11584

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsnano.1c01763

关键词

DNA nanodevices; clip-toehold; DNA strand displacement; DNA circuit; DNA walker

资金

  1. National Key Research and Development Plan [2018YFC1004304]
  2. National Science Foundation of China [81871732, 21705053]
  3. Key Technology Innovation Program of Hubei Province [2019ACA138]
  4. Natural Science Foundation of Hubei Province [2017CFB117]
  5. Hubei Province health and family planning scientific research project [J2017Q017]
  6. Wuhan Youth Science and Technology Plan [2017050304010293]

向作者/读者索取更多资源

The development of the Clip tool expands the functionality of DNA strand displacement-based nanodevices, achieving multiple regulatory functions such as fine adjustment of reaction rates, allosteric strand displacement, selective activation, and reaction resetting. DNA walking machines constructed using this tool demonstrate controllable walking, concatenation, and programmable pathways, showcasing the versatility of the Clip-toehold-based DNA nanodevices.
Strand displacement reactions are important bricks for the construction of various DNA nanodevices, among which the toehold-mediated strand displacement reaction is the most prevalently adopted. However, only a limited number of tools could be used to finely regulate the toehold reaction, thus restricting DNA nanodevices from being more multifunctional and powerful. Herein, we developed a regulation tool, Clip, and achieved multiple regulatory functions, including subtle adjustment of the reaction rates, allosteric strand displacement, selective activation, and resetting of the reaction. Taking advantages of the multiple functions, we constructed Clip-toehold-based DNA walking machines. They showed behaviors of controllable walking, concatenation, and programmable pathways. Furthermore, we built Clip-toehold-based AND and OR logic gates and integrated those logic gates to construct multilayer circuits, which could be reset and reused to process different input signals. We believe that the proposed Clip tool has expanded the functionality of DNA strand displacement-based nanodevices to a much more complex and diverse level and anticipate that the tool will be widely adopted in DNA nanotechnology.

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