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一种带切口酶辅助的变构策略,用于自重置 DNA 开关电路。

A nicking enzyme-assisted allosteric strategy for self-resetting DNA switching circuits.

机构信息

Key Laboratory of Advanced Design and Intelligent Computing, Ministry of Education, School of Software Engineering, Dalian University, Dalian 116622, China.

School of Computer Science and Technology, Dalian University of Technology, Dalian 116024, China.

出版信息

Analyst. 2023 Dec 18;149(1):169-179. doi: 10.1039/d3an01677c.

Abstract

The self-regulation of biochemical reaction networks is crucial for maintaining balance, stability, and adaptability within biological systems. DNA switching circuits, serving as basic units, play essential roles in regulating pathways, facilitating signal transduction, and processing biochemical reaction networks. However, the non-reusability of DNA switching circuits hinders its application in current complex information processing. Herein, we proposed a nicking enzyme-assisted allosteric strategy for constructing self-resetting DNA switching circuits to realize complex information processing. This strategy utilizes the unique cleavage ability of the nicking enzyme to achieve the automatic restoration of states. Based on this strategy, we implemented a self-resetting DNA switch. By leveraging the reusability of the DNA switch, we constructed a DNA switching circuit with selective activation characteristics and further extended its functionality to include fan-out and fan-in processes by expanding the number of functional modules and connection modes. Furthermore, we demonstrated the complex information processing capabilities of these switching circuits by integrating recognition, translation, and decision functional modules, which could analyze and transmit multiple input signals and realize parallel logic operations. This strategy simplifies the design of switching circuits and promotes the future development of biosensing, molecular computing, and nanomachines.

摘要

生化反应网络的自我调节对于维持生物系统的平衡、稳定性和适应性至关重要。DNA 开关电路作为基本单元,在调节途径、促进信号转导和处理生化反应网络方面发挥着重要作用。然而,DNA 开关电路的不可重用性限制了其在当前复杂信息处理中的应用。在此,我们提出了一种依赖核酸内切酶的别构策略来构建自我重置 DNA 开关电路,以实现复杂信息处理。该策略利用核酸内切酶的独特切割能力实现状态的自动恢复。基于该策略,我们实现了一个自我重置 DNA 开关。通过利用 DNA 开关的可重复使用性,我们构建了一个具有选择性激活特性的 DNA 开关电路,并通过扩展功能模块的数量和连接方式,进一步扩展其功能,包括扇出和扇入过程。此外,我们通过整合识别、翻译和决策功能模块,展示了这些开关电路的复杂信息处理能力,这些模块可以分析和传输多个输入信号,并实现并行逻辑操作。该策略简化了开关电路的设计,促进了生物传感、分子计算和纳米机器未来的发展。

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