Chen Qi, Yoo Si-Youl, Chung Yong-Ho, Lee Ji-Young, Min Junhong, Choi Jeong-Woo
Department of Chemical and Biomolecular Engineering, Sogang University, 35 Baekbeom-ro, Mapo-gu, Seoul 121-742, Republic of Korea.
Department of Chemical Engineering, Hoseo University, Hoseoro 79 bungil 20, Baebang, Asan, Chungnam 336-795, Republic of Korea.
Bioelectrochemistry. 2016 Oct;111:1-6. doi: 10.1016/j.bioelechem.2016.04.004. Epub 2016 Apr 20.
Various bio-logic gates have been studied intensively to overcome the rigidity of single-function silicon-based logic devices arising from combinations of various gates. Here, a simple control tool using electrochemical signals from quantum dots (QDs) was constructed using DNA and organic materials for multiple logic functions. The electrochemical redox current generated from QDs was controlled by the DNA structure. DNA structure, in turn, was dependent on the components (organic materials) and the input signal (pH). Independent electrochemical signals from two different logic units containing QDs were merged into a single analog-type logic gate, which was controlled by two inputs. We applied this electrochemical biodevice to a simple logic system and achieved various logic functions from the controlled pH input sets. This could be further improved by choosing QDs, ionic conditions, or DNA sequences. This research provides a feasible method for fabricating an artificial intelligence system.
为克服由各种门电路组合而成的单功能硅基逻辑器件的刚性,人们对各种生物逻辑门进行了深入研究。在此,利用DNA和有机材料构建了一种基于量子点(QD)电化学信号的简单控制工具,以实现多种逻辑功能。量子点产生的电化学氧化还原电流由DNA结构控制。反过来,DNA结构又取决于组件(有机材料)和输入信号(pH值)。来自两个包含量子点的不同逻辑单元的独立电化学信号被合并到一个由两个输入控制的单模拟型逻辑门中。我们将这种电化学生物器件应用于一个简单的逻辑系统,并通过受控的pH输入集实现了各种逻辑功能。通过选择量子点、离子条件或DNA序列,这一性能还可进一步提升。该研究为制造人工智能系统提供了一种可行的方法。