Bioelectronic Interface Connecting Reversible Logic Gates Based on Enzyme and DNA Reactions.
Nataliia Guz,Tatiana A. Fedotova,Brian E. Fratto,Orr Schlesinger,Lital Alfonta,Dmitry M. Kolpashchikov,Evgeny Katz +6 more
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TL;DR: The designed system represents the first example of high complexity biocomputing processes integrating enzyme and DNA reactions and performing logically reversible signal processing.
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Abstract: It is believed that connecting biomolecular computation elements in complex networks of communicating molecules may eventually lead to a biocomputer that can be used for diagnostics and/or the cure of physiological and genetic disorders. Here, a bioelectronic interface based on biomolecule-modified electrodes has been designed to bridge reversible enzymatic logic gates with reversible DNA-based logic gates. The enzyme-based Fredkin gate with three input and three output signals was connected to the DNA-based Feynman gate with two input and two output signals-both representing logically reversible computing elements. In the reversible Fredkin gate, the routing of two data signals between two output channels was controlled by the control signal (third channel). The two data output signals generated by the Fredkin gate were directed toward two electrochemical flow cells, responding to the output signals by releasing DNA molecules that serve as the input signals for the next Feynman logic gate based on the DNA reacting cascade, producing, in turn, two final output signals. The Feynman gate operated as the controlled NOT gate (CNOT), where one of the input channels controlled a NOT operation on another channel. Both logic gates represented a highly sophisticated combination of input-controlled signal-routing logic operations, resulting in redirecting chemical signals in different channels and performing orchestrated computing processes. The biomolecular reaction cascade responsible for the signal processing was realized by moving the solution from one reacting cell to another, including the reacting flow cells and electrochemical flow cells, which were organized in a specific network mimicking electronic computing circuitries. The designed system represents the first example of high complexity biocomputing processes integrating enzyme and DNA reactions and performing logically reversible signal processing.
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Citations
Enzyme-based logic gates and circuits—analytical applications and interfacing with electronics
TL;DR: An overview of enzyme-based logic gates and their short circuits, with specific examples of Boolean AND and OR gates, and concatenated logic gates composed of multi-step enzyme-biocatalyzed reactions.
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Enzyme-Based Logic Gates and Networks with Output Signals Analyzed by Various Methods
TL;DR: The paper overviews various methods that are used for the analysis of output signals generated by enzyme-based logic systems, and emphasizes the broad variability of the bioanalytical systems applied for signal transduction in biocomputing processes.
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DNA Release from Fe3+-cross-linked Alginate Films Triggered by Logically Processed Biomolecular Signals - Integration of Biomolecular Computing and Actuation
TL;DR: Signal-controlled release of DNA from Fe3+ -cross-linked alginate hydrogel electrochemically deposited on an electrode surface was studied and illustrates a novel concept of functional integration of biomolecular computing and actuation.
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Graphene-Based Steganographically Aptasensing System for Information Computing, Encryption and Hiding, Fluorescence Sensing and in Vivo Imaging of Fish Pathogens.
Qiu Yan Zhu,Fu Rui Zhang,Yan Du,Xin Xing Zhang,Jiao Yang Lu,Qing Feng Yao,Wei Tao Huang,Xue Zhi Ding,Li Qiu Xia +8 more
TL;DR: This study provides a novel nanobiosensing assay for rapid and effective sensing and in vivo imaging of fish pathogens, and demonstrates a prototype of (bio)molecular steganography as an important and interesting extension direction of molecular information technology, which is helpful in probably promoting the development of multifunctional molecular-level devices or machines.
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DNA Computing Systems Activated by Electrochemically-triggered DNA Release from a Polymer-brush-modified Electrode Array.
Maria Gamella,Andrey Zakharchenko,Nataliia Guz,Madeline Masi,Sergiy Minko,Dmitry M. Kolpashchikov,Heiko Iken,Arshak Poghossian,Michael J. Schöning,Evgeny Katz +9 more
TL;DR: The developed system represents a step forward in DNA computing, combining for the first time DNA chemical processes with electronic input signals for activation of the Boolean logic gates.
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