自催化
稳健性(进化)
电子线路
纳米技术
泄漏(经济)
级联
化学
计算机科学
生物系统
材料科学
催化作用
生物
工程类
电气工程
生物化学
宏观经济学
色谱法
经济
基因
作者
Xiaole Han,Hongyan Yu,Li Zhang,Zhi Weng,Ling Dai,Li Wang,Lin Song,Zhongzhong Wang,Rong Zhao,Luojia Wang,Weitao Wang,Dan Bai,Yongcan Guo,Ke Lv,Guoming Xie
标识
DOI:10.1016/j.bios.2023.115823
摘要
Nonenzymatic self-assembly circuit utilizing hairpin substrates has been developed to be a powerful tool for information transduction, amplification and computation. However, the sensitivity, stability and application of this circuit are impeded by the presence of leakage which refers to undesired triggering in the absence of input. Herein, we proposed a movable toehold principle to suppress leakage and accelerate the catalytic reaction through removing partial hairpin toehold responsible for the leakage and transferring it to the catalyst. With movable toehold, catalytic hairpin assembly (called mtCHA) exhibited an excellent signal-to-background ratio of over 100, high robustness and improved specificity. In more complex circuit, including proximity recognition, signal amplification of small molecules (such as ATP), logic network, autocatalysis circuit and two-layer cascade circuit, mtCHA also demonstrated satisfactory performance. Our findings suggest that mtCHA holds great potential for broader applications, and the approach of repurposing harmful fragments into beneficial candidates can provide valuable insights for other chemical systems.
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