同步器
与非门逻辑
与非门
电子线路
逆变器
计算机科学
级联
可扩展性
逻辑门
非逻辑
时序逻辑
电子工程
逻辑综合
拓扑(电路)
工程类
逻辑族
电气工程
分布式计算
电压
算法
数据库
化学工程
作者
Chenyun Sun,Zhikun Zhao,Jinyan Zhang,Hui Lv,Haozhi Wang,Haitao Song,Jiabin Wang,Kai Xia,Xiurong Yang,Chunhai Fan,Fei Wang
出处
期刊:Science Advances
[American Association for the Advancement of Science]
日期:2025-08-20
卷期号:11 (34): eady8165-eady8165
标识
DOI:10.1126/sciadv.ady8165
摘要
DNA has emerged as a robust platform for engineering molecular circuits with arbitrary logic operations. Nevertheless, implementing DNA circuits for such functions generally relies on the use of dual-rail expression that doubles the number of required gates, constraining the achievable complexity in a single solution. A fundamental limitation is that conventional single-rail circuits cannot support nonfirst-layer NOT operations. Here, we introduce the design of a DNA synchronizer (DSN), a temporal regulation module that enables time-dependent NOT function, to circumvent the fundamental limitation of conventional single-rail designs. Tuning the binding affinity between the DSN strand and an inverter strand allows for regulating the execution time of NOT gates at varying cascade depths. Single-rail NAND and NOR gates are implemented using DSNs, which are Boolean complete. We further demonstrate a 4-bit square root circuit using a minimal set of only five gates. This single-rail architecture holds promise for developing compact yet scalable DNA computing circuits while advancing applications in diagnostics and therapeutics.
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