Liu Yuan, Zhang Xiaokang, Zhang Xun, Liu Xin, Wang Bin, Zhang Qiang, Wei Xiaopeng
School of Computer Science and Technology, Dalian University of Technology Dalian 116024 China
Key Laboratory of Advanced Design and Intelligent Computing, Ministry of Education, School of Software Engineering, Dalian University Dalian 116622 China.
RSC Adv. 2023 Sep 11;13(39):27125-27134. doi: 10.1039/d3ra03995a. eCollection 2023 Sep 8.
Molecular circuits crafted from DNA molecules harness the inherent programmability and biocompatibility of DNA to intelligently steer molecular machines in the execution of microscopic tasks. In comparison to combinational circuits, DNA-based temporal circuits boast supplementary capabilities, allowing them to proficiently handle the omnipresent temporal information within biochemical systems and life sciences. However, the lack of temporal mechanisms and components proficient in comprehending and processing temporal information presents challenges in advancing DNA circuits that excel in complex tasks requiring temporal control and time perception. In this study, we engineered temporal logic circuits through the design and implementation of a dual cross-inhibition mechanism, which enables the acceptance and processing of temporal information, serving as a fundamental building block for constructing temporal circuits. By incorporating the dual cross-inhibition mechanism, the temporal logic gates are endowed with cascading capabilities, significantly enhancing the inhibitory effect compared to a cross-inhibitor. Furthermore, we have introduced the annihilation mechanism into the circuit to further augment the inhibition effect. As a result, the circuit demonstrates sensitive time response characteristics, leading to a fundamental improvement in circuit performance. This architecture provides a means to efficiently process temporal signals in DNA strand displacement circuits. We anticipate that our findings will contribute to the design of complex temporal logic circuits and the advancement of molecular programming.
由DNA分子构建的分子电路利用DNA固有的可编程性和生物相容性,在执行微观任务时智能地操控分子机器。与组合电路相比,基于DNA的时序电路具有额外的能力,使其能够有效地处理生化系统和生命科学中普遍存在的时序信息。然而,缺乏能够理解和处理时序信息的时序机制和组件,给推进在需要时序控制和时间感知的复杂任务中表现出色的DNA电路带来了挑战。在本研究中,我们通过设计和实现一种双交叉抑制机制来构建时序逻辑电路,该机制能够接受和处理时序信息,作为构建时序电路的基本模块。通过纳入双交叉抑制机制,时序逻辑门具备了级联能力,与单一交叉抑制剂相比,显著增强了抑制效果。此外,我们还将湮灭机制引入电路,进一步增强抑制效果。结果,该电路展现出灵敏的时间响应特性,使电路性能得到了根本提升。这种架构为在DNA链置换电路中高效处理时序信号提供了一种方法。我们预计,我们的研究结果将有助于复杂时序逻辑电路的设计以及分子编程的发展。