Erasable and Field Programmable DNA Circuits Based on Configurable Logic Blocks

Author:

Liu Yizhou12,Zhai Yuxuan1,Hu Hao2,Liao Yuheng2,Liu Huan2,Liu Xiao2,He Jiachen2,Wang Limei1,Wang Hongxun1,Li Longjie12,Zhou Xiaoyu3,Xiao Xianjin24ORCID

Affiliation:

1. School of Life Science and Technology Wuhan Polytechnic University Wuhan 430023 China

2. Institute of Reproductive Health Tongji Medical College Huazhong University of Science and Technology Wuhan 430030 China

3. Department of Precision Diagnostic and Therapeutic Technology City University of Hong Kong Shenzhen Futian Research Institute Shenzhen Guangdong 518000 China

4. Department of Laboratory Medicine Tongji Hospital Tongji Medical College Huazhong University of Science and Technology Wuhan 430030 China

Abstract

AbstractDNA is commonly employed as a substrate for the building of artificial logic networks due to its excellent biocompatibility and programmability. Till now, DNA logic circuits are rapidly evolving to accomplish advanced operations. Nonetheless, nowadays, most DNA circuits remain to be disposable and lack of field programmability and thereby limits their practicability. Herein, inspired by the Configurable Logic Block (CLB), the CLB‐based erasable field‐programmable DNA circuit that uses clip strands as its operation‐controlling signals is presented. It enables users to realize diverse functions with limited hardware. CLB‐based basic logic gates (OR and AND) are first constructed and demonstrated their erasability and field programmability. Furthermore, by adding the appropriate operation‐controlling strands, multiple rounds of programming are achieved among five different logic operations on a two‐layer circuit. Subsequently, a circuit is successfully built to implement two fundamental binary calculators: half‐adder and half‐subtractor, proving that the design can imitate silicon‐based binary circuits. Finally, a comprehensive CLB‐based circuit is built that enables multiple rounds of switch among seven different logic operations including half‐adding and half‐subtracting. Overall, the CLB‐based erasable field‐programmable circuit immensely enhances their practicability. It is believed that design can be widely used in DNA logic networks due to its efficiency and convenience.

Funder

National Key Research and Development Program of China

Publisher

Wiley

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