Li Xiao-Qiong, Jia Yi-Lei, Zhang Yu-Wen, Chen Hong-Yuan, Xu Jing-Juan
State Key Laboratory of Analytical Chemistry for Life Science, School of Chemistry and Chemical Engineering, Nanjing University Nanjing 210023 China
Chem Sci. 2023 Jun 20;14(28):7699-7708. doi: 10.1039/d3sc01162c. eCollection 2023 Jul 19.
DNA molecular machines based on DNA logic circuits show unparalleled potential in precision medicine. However, delivering DNA nanomachines into real biological systems and ensuring that they perform functions specifically, quickly and logically remain a challenge. Here, we developed an efficient DNA molecular machine integrating transfer-sensor-computation-output functions to achieve high fidelity detection of intracellular biomolecules. The introduction of pH nanoswitches enabled the nanomachines to be activated after entering the cell, and the spatial-confinement effect of the DNA triangular prism (TP) enables the molecular machine to process complex information at the nanoscale, with higher sensitivity and shorter response time than diffuse-dominated logic circuits. Such cascaded activation molecular machines follow the logic of AND to achieve specific capture and detection of biomolecules in living cells through a multi-hierarchical response, providing a new insight into the construction of efficient DNA molecular machines.
基于DNA逻辑电路的DNA分子机器在精准医学中展现出无与伦比的潜力。然而,将DNA纳米机器递送至真实生物系统并确保它们能特异性、快速且按逻辑地执行功能仍是一项挑战。在此,我们开发了一种整合转运-传感-计算-输出功能的高效DNA分子机器,以实现对细胞内生物分子的高保真检测。pH纳米开关的引入使纳米机器在进入细胞后能够被激活,而DNA三角棱柱(TP)的空间限制效应使分子机器能够在纳米尺度上处理复杂信息,与以扩散为主的逻辑电路相比,具有更高的灵敏度和更短的响应时间。这种级联激活分子机器遵循与逻辑,通过多级响应实现对活细胞中生物分子的特异性捕获和检测,为构建高效DNA分子机器提供了新的思路。