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发夹 DNA 模板银纳米簇作为通用双输出发生器,揭示多样化伴随 DNA 逻辑门和级联电路。

Illuminating Diverse Concomitant DNA Logic Gates and Concatenated Circuits with Hairpin DNA-Templated Silver Nanoclusters as Universal Dual-Output Generators.

机构信息

Chinese Academy of Sciences, Changchun, Jilin, 130022, China.

University of Chinese Academy of Sciences, Beijing, 100049, China.

出版信息

Adv Mater. 2020 Apr;32(17):e1908480. doi: 10.1002/adma.201908480. Epub 2020 Mar 20.

DOI:10.1002/adma.201908480
PMID:32196133
Abstract

Exquisite administration of a new type of hairpin DNA-templated silver nanoclusters (H-AgNCs) as universal dual-output generators in DNA-based logic systems is reported. Diverse concomitant contrary logic gates (CCLGs) with opposite functions (YES NOT, OR NOR, INHIBIT IMPLICATION, XOR XNOR, and MAJORITY MINORITY) and extended concatenated logic circuits are presented and some of them perform specific functions, such as parity generators and checkers. The introduction of H-AgNCs as noncovalent signal reporters avoids tedious and high-cost labeling procedures. Of note, the concomitant feature of CCLGs attributed to the dual-emitter AgNCs conduces to reducing the time and cost to devise multiple logic gates. As compared to previous ones, this design eliminates numerous substances (e.g., organic dyes) and unstable components (hydrogen peroxide), which not only decreases the complexity of logic performs and improves repeatability of operation, but also makes it convenient to connect distinct DNA-based logic gates. It is worthy to anticipate that the cost-effective strategy will inspire researchers to develop much more complex logic systems and contribute to the field of molecular computing.

摘要

报道了一种新型发夹 DNA 模板银纳米团簇(H-AgNCs)的精巧调控,可作为基于 DNA 的逻辑系统中的通用双输出发生器。提出了具有相反功能(YES NOT、OR NOR、INHIBIT IMPLICATION、XOR XNOR 和 MAJORITY MINORITY)和扩展级联逻辑电路的多种伴随相反逻辑门(CCLGs),其中一些具有特定功能,如奇偶校验生成器和校验器。引入 H-AgNCs 作为非共价信号报告器避免了繁琐和昂贵的标记程序。值得注意的是,归因于双发射器 AgNCs 的 CCLGs 的伴随特征有助于减少设计多个逻辑门的时间和成本。与以前的设计相比,该设计消除了许多物质(例如,有机染料)和不稳定的成分(过氧化氢),不仅降低了逻辑执行的复杂性并提高了操作的可重复性,而且还方便了不同的基于 DNA 的逻辑门的连接。可以预期,这种具有成本效益的策略将激发研究人员开发更复杂的逻辑系统,并为分子计算领域做出贡献。

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