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无标记双信号电化学适体传感器系统的布尔逻辑树用于生物传感、三态逻辑计算和键盘锁安全操作。

Boolean Logic Tree of Label-Free Dual-Signal Electrochemical Aptasensor System for Biosensing, Three-State Logic Computation, and Keypad Lock Security Operation.

机构信息

State Key Laboratory of Developmental Biology of Freshwater Fish, College of Life Science, Hunan Normal University , Changsha 410081, People's Republic of China.

Key Laboratory of Ecoenvironments in Three Gorges Reservoir Region (Ministry of Education), School of Chemistry and Chemical Engineering, Southwest University , Chongqing 400715, People's Republic of China.

出版信息

Anal Chem. 2017 Sep 19;89(18):9734-9741. doi: 10.1021/acs.analchem.7b01498. Epub 2017 Sep 6.

DOI:10.1021/acs.analchem.7b01498
PMID:28809114
Abstract

The most serious and yet unsolved problems of molecular logic computing consist in how to connect molecular events in complex systems into a usable device with specific functions and how to selectively control branchy logic processes from the cascading logic systems. This report demonstrates that a Boolean logic tree is utilized to organize and connect "plug and play" chemical events DNA, nanomaterials, organic dye, biomolecule, and denaturant for developing the dual-signal electrochemical evolution aptasensor system with good resettability for amplification detection of thrombin, controllable and selectable three-state logic computation, and keypad lock security operation. The aptasensor system combines the merits of DNA-functionalized nanoamplification architecture and simple dual-signal electroactive dye brilliant cresyl blue for sensitive and selective detection of thrombin with a wide linear response range of 0.02-100 nM and a detection limit of 1.92 pM. By using these aforementioned chemical events as inputs and the differential pulse voltammetry current changes at different voltages as dual outputs, a resettable three-input biomolecular keypad lock based on sequential logic is established. Moreover, the first example of controllable and selectable three-state molecular logic computation with active-high and active-low logic functions can be implemented and allows the output ports to assume a high impediment or nothing (Z) state in addition to the 0 and 1 logic levels, effectively controlling subsequent branchy logic computation processes. Our approach is helpful in developing the advanced controllable and selectable logic computing and sensing system in large-scale integration circuits for application in biomedical engineering, intelligent sensing, and control.

摘要

分子逻辑计算中最严重但尚未解决的问题包括如何将复杂系统中的分子事件连接成具有特定功能的可用设备,以及如何从级联逻辑系统中选择性地控制分支逻辑过程。本报告证明,利用布尔逻辑树来组织和连接“即插即用”的化学事件 DNA、纳米材料、有机染料、生物分子和变性剂,开发具有良好可重置性的双信号电化学进化适体传感器系统,用于放大检测凝血酶,可控和可选的三态逻辑计算以及键盘锁安全操作。该适体传感器系统结合了 DNA 功能化纳米扩增结构和简单的双信号电活性染料灿烂甲酚蓝的优点,用于灵敏和选择性检测凝血酶,具有 0.02-100 nM 的宽线性响应范围和 1.92 pM 的检测限。通过将这些上述化学事件用作输入,并且将不同电压下的差分脉冲伏安电流变化作为双输出,建立了基于顺序逻辑的可重置三输入生物分子键盘锁。此外,可以实现具有高电平有效和低电平有效的逻辑功能的可控和可选三态分子逻辑计算的第一个示例,并允许输出端口除了 0 和 1 逻辑电平之外还采用高阻抗或无(Z)状态,有效地控制后续分支逻辑计算过程。我们的方法有助于开发用于生物医学工程、智能传感和控制的大规模集成电路中的先进可控和可选逻辑计算和传感系统。

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