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Updated: Sep 10, 2025

Design and Synthesis of a Reconfigurable DNA Accordion Rack
Published on: August 15, 2018
Designing a DNA synchronizer for compact single-rail DNA logic circuits.
Chenyun Sun1, Zhikun Zhao1, Jinyan Zhang1
1State Key Laboratory of Synergistic Chem-Bio Synthesis, School of Chemistry and Chemical Engineering, New Cornerstone Science Laboratory, Frontiers Science Center for Transformative Molecules, Zhang Jiang Institute for Advanced Study and National Center for Translational Medicine, Shanghai Jiao Tong University, Shanghai 200240, China.
This study introduces a DNA synchronizer (DSN) to enable time-dependent NOT functions in single-rail DNA circuits. This innovation allows for more complex DNA computing with fewer gates, advancing diagnostics and therapeutics.
Area of Science:
- Molecular engineering
- Synthetic biology
- DNA computing
Background:
- DNA circuits enable complex logic operations but often require dual-rail designs, limiting scalability.
- Conventional single-rail DNA circuits face limitations with non-first-layer NOT operations.
Purpose of the Study:
- To introduce a DNA synchronizer (DSN) for temporal regulation, enabling time-dependent NOT functions in single-rail DNA circuits.
- To overcome the limitations of conventional single-rail designs for enhanced DNA circuit complexity.
Main Methods:
- Designed a DNA synchronizer (DSN) as a temporal regulation module.
- Tuned binding affinity between DSN and inverter strands to control NOT gate execution time.
- Implemented single-rail NAND and NOR gates using DSNs, demonstrating Boolean completeness.
Main Results:
- Demonstrated a time-dependent NOT function in single-rail DNA circuits using the DSN.
- Successfully implemented Boolean complete single-rail NAND and NOR gates.
- Constructed a 4-bit square root circuit using a minimal set of five gates.
Conclusions:
- The DSN enables compact and scalable single-rail DNA computing architectures.
- This approach overcomes fundamental limitations in single-rail DNA circuit design.
- The developed architecture holds potential for advanced diagnostics and therapeutics.

