4.8 Article

Cooperative Branch Migration: A Mechanism for Flexible Control of DNA Strand Displacement

期刊

ACS NANO
卷 16, 期 2, 页码 3135-3144

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsnano.1c10797

关键词

DNA strand displacement; nucleic acids; self-assembly; DNA circuits; kinetics

资金

  1. National Natural Science Foundation of China [81802115]
  2. Chongqing Natural Science Foundation [cstc2019jcyj-msxmX0203]
  3. Outstanding Project of Chongqing Medical University [BJRC202022]
  4. Graduate Scientific Research and Innovation Project of Chongqing [CYS20206]

向作者/读者索取更多资源

In this study, a regulatory tool called cooperative branch migration (CBM) is introduced to flexibly control DNA strand displacement by regulating the complementarity of branch migration domains. CBM exhibits multifunctional regulatory abilities, including rate fine-tuning and continuous dynamic regulation.
DNA strand displacement plays an essential role in the field of dynamic DNA nanotechnology. However, flexible regulation of strand displacement remains a significant challenge. Most previous regulatory tools focused on controllable activation of toehold and thus limited the design flexibility. Here, we introduce a regulatory tool termed cooperative branch migration (CBM), through which DNA strand displacement can be controlled by regulating the complementarity of branch migration domains. CBM shows perfect compatibility with the majority of existing regulatory tools, and when combined with forked toehold, it permits continuous fine-tuning of the strand displacement rate spanning 5 orders of magnitude. CBM manifests multifunctional regulation ability, including rate fine-tuning, continuous dynamic regulation, reaction resetting, and selective activation. To exemplify the powerful function, we also constructed a nested if-function signal processing system on the basis of cascading CBM reactions. We believe that the proposed regulatory strategy would effectively enrich the DNA strand displacement toolbox and ultimately promote the construction of DNA machines of higher complexity in nucleic acid research and biomedical applications.

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