Huang Chun, Duan Xiaoqiang, Guo Yifei, Li Panlong, Sun Junwei, Shao Jiaying, Wang Yanfeng
School of Electrical and Information Engineering, Zhengzhou University of Light Industry, Zhengzhou, China.
Zhengzhou Kechuang Electronics Co., Ltd., Zhengzhou, China.
Front Genet. 2024 Jan 23;14:1331951. doi: 10.3389/fgene.2023.1331951. eCollection 2023.
DNA strand displacement (DSD) is an efficient technology for constructing molecular circuits. However, system computing speed and the scale of logical gate circuits remain a huge challenge. In this paper, a new method of coding DNA domains is proposed to carry out logic computation. The structure of DNA strands is designed regularly, and the rules of domain coding are described. Based on this, multiple-input and one-output logic computing modules are built, which are the basic components forming digital circuits. If the module has n inputs, it can implement 2 logic functions, which reduces the difficulty of designing and simplifies the structure of molecular logic circuits. In order to verify the superiority of this method for developing large-scale complex circuits, the square root and exponentiation molecular circuits are built. Under the same experimental conditions, compared with the dual-track circuits, the simulation results show that the molecular circuits designed based on the domain coding strategy have faster response time, simpler circuit structure, and better parallelism and scalability. The method of forming digital circuits based on domain coding provides a more effective way to realize intricate molecular control systems and promotes the development of DNA computing.
DNA链置换(DSD)是构建分子电路的一种有效技术。然而,系统计算速度和逻辑门电路规模仍然是一个巨大的挑战。本文提出了一种新的DNA域编码方法来进行逻辑计算。对DNA链的结构进行了规则设计,并描述了域编码规则。在此基础上,构建了多输入单输出逻辑计算模块,它们是构成数字电路的基本组件。如果该模块有n个输入,则可以实现2种逻辑功能,这降低了设计难度并简化了分子逻辑电路的结构。为了验证该方法在开发大规模复杂电路方面的优越性,构建了平方根和指数分子电路。在相同实验条件下,与双轨电路相比,仿真结果表明基于域编码策略设计的分子电路具有更快的响应时间、更简单的电路结构以及更好的并行性和可扩展性。基于域编码形成数字电路的方法为实现复杂的分子控制系统提供了一种更有效的途径,并推动了DNA计算的发展。