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工程化模块化 DNA 反应网络用于信号处理。

Engineering Modular DNA Reaction Networks for Signal Processing.

机构信息

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

School of Software Engineering, Dalian University, Dalian, 116622, China.

出版信息

Chemistry. 2024 Jun 17;30(34):e202400740. doi: 10.1002/chem.202400740. Epub 2024 May 17.

DOI:10.1002/chem.202400740
PMID:38623910
Abstract

Diversified molecular information-processing methods have significant implications for nanoscale manipulation and control, monitoring and disease diagnosis of organisms, and direct intervention in biological activities. However, as an effective approach for implementing multifunctional molecular information processing, DNA reaction networks (DRNs) with numerous functionally specialized molecular structures have challenged them on scale design, leading to increased network complexity, further causing problems such as signal leakage, attenuation, and cross-talk in network reactions. Our study developed a strategy for performing various signal-processing tasks through engineering modular DRNs. This strategy is based on a universal core unit with signal selection capability, and a time-adjustable signal self-resetting module is achieved by combing the core unit and self-resetting unit, which improves the time controllability of modular DRNs. In addition, multi-input and -output signal cross-catalytic and continuously adjustable signal delay modules were realized by combining core and threshold units, providing a flexible, precise method for modular DRNs to process the signal. The strategy simplifies the design of DRNs, helps generate design ideas for large-scale integrated DRNs with multiple functions, and provides prospects in biocomputing, gene regulation, and biosensing.

摘要

多元化的分子信息处理方法对纳米级操作和控制、生物体的监测和疾病诊断以及对生物活性的直接干预具有重要意义。然而,作为实现多功能分子信息处理的有效方法,具有众多功能专门化分子结构的 DNA 反应网络(DRNs)在规模设计方面对其提出了挑战,导致网络复杂性增加,从而在网络反应中出现信号泄漏、衰减和串扰等问题。我们的研究通过工程模块化 DRNs 开发了执行各种信号处理任务的策略。该策略基于具有信号选择能力的通用核心单元,并通过组合核心单元和自复位单元来实现可调节时间的信号自复位模块,从而提高了模块化 DRNs 的时间可控性。此外,通过组合核心和门限单元实现了多输入和多输出信号交叉催化和连续可调信号延迟模块,为模块化 DRNs 处理信号提供了灵活、精确的方法。该策略简化了 DRNs 的设计,有助于生成具有多种功能的大规模集成 DRNs 的设计思路,并为生物计算、基因调控和生物传感提供了前景。

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