Lv Xujuan, Han Jiawen, Wang Juan, Lv Zhihua, Huang Baojian, Qin Shuai, Yan Xuxin, Dong Shaojun, Fan Daoqing
Key Laboratory of Marine Drugs, Ministry of Education, School of Medicine and Pharmacy, Ocean University of China, Qingdao, Shandong, 266003, China.
Intelligent Wearable Engineering Research Center of Qingdao, Research Center for Intelligent and Wearable Technology, College of Textiles and Clothing, State Key Laboratory of Bio-Fibers and Eco-Textiles, Qingdao University, Qingdao, 266071, China.
Adv Sci (Weinh). 2025 Sep;12(33):e01430. doi: 10.1002/advs.202501430. Epub 2025 Jun 9.
Developing innovative multi-channel DNA logic systems with strong responses for weak inputs is of paramount significance for versatile molecular computing, information processing, smart biosensing, and early medical diagnostics. However, most previous works usually necessitate abundant inputs equivalent to signal probes or computing elements, and present only single-channel outputs, causing DNAs' over-consumption, limited computing functions, flexibility, and maneuverability. Herein, assisted with a catalytic-hairpin-assembly (CHA) amplifier and rational orthogonal design, the first universal weak-inputs-strong-outputs DNA system (named CP-WISO) with contrary logic responses is reported, which exhibited noticeable advantages over previous works. 1) Excellent FRET effect of dual-signal DNA probes (Cy3/Cy5) brought enriched contrary logic output channels; 2) One-step CHA amplification avoided DNAs' over-consumption, high cost, and complexity; 3) A library of CP-WISO DNA logic nanodevices with the manipulated orthogonal design is realized, accompanied with enhanced flexibility, maneuverability, and computing proficiency; 4) Even and odd parity generators/checkers (pG/pC) are concurrently operated based on the "XOR∧XNOR"-type CP-WISO nanodevice, ensuring the recognition of erroneous bits and secure molecular data transmission; 5) Additionally, taking miRNA-499, miRNA-21 and miRNA-122 as alternative model targets, the "YES∧NOT" and "AND∧NAND" CP-WISO nanodevices achieved intelligent identification and ratiometric fluorescent detection of miRNAs in human serums, promoting the early diagnostics of acute myocardial infarction and liver cancer.
开发对微弱输入具有强烈响应的创新多通道DNA逻辑系统,对于通用分子计算、信息处理、智能生物传感和早期医学诊断至关重要。然而,以前的大多数工作通常需要大量等同于信号探针或计算元件的输入,并且仅呈现单通道输出,导致DNA过度消耗、计算功能、灵活性和可操作性有限。在此,借助催化发夹组装(CHA)放大器和合理的正交设计,报道了首个具有相反逻辑响应的通用弱输入-强输出DNA系统(命名为CP-WISO),其表现出优于以往工作的显著优势。1)双信号DNA探针(Cy3/Cy5)出色的荧光共振能量转移(FRET)效应带来了丰富的相反逻辑输出通道;2)一步CHA扩增避免了DNA的过度消耗、高成本和复杂性;3)实现了具有可控正交设计的CP-WISO DNA逻辑纳米器件库,同时增强了灵活性、可操作性和计算能力;4)基于“异或与同或”型CP-WISO纳米器件同时运行奇偶校验发生器/校验器(pG/pC),确保错误位识别和安全的分子数据传输;5)此外,以miRNA-499、miRNA-21和miRNA-122作为替代模型靶点,“是与非”和“与与非与”CP-WISO纳米器件实现了人血清中miRNA的智能识别和比率荧光检测,促进了急性心肌梗死和肝癌的早期诊断。