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DNA Computing Circuits Using Libraries of DNAzyme Subunits

Overview
Journal Nat Nanotechnol
Specialty Biotechnology
Date 2010 Jun 1
PMID 20512129
Citations 82
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Abstract

Biological systems that are capable of performing computational operations could be of use in bioengineering and nanomedicine, and DNA and other biomolecules have already been used as active components in biocomputational circuits. There have also been demonstrations of DNA/RNA-enzyme-based automatons, logic control of gene expression, and RNA systems for processing of intracellular information. However, for biocomputational circuits to be useful for applications it will be necessary to develop a library of computing elements, to demonstrate the modular coupling of these elements, and to demonstrate that this approach is scalable. Here, we report the construction of a DNA-based computational platform that uses a library of catalytic nucleic acids (DNAzymes), and their substrates, for the input-guided dynamic assembly of a universal set of logic gates and a half-adder/half-subtractor system. We demonstrate multilayered gate cascades, fan-out gates and parallel logic gate operations. In response to input markers, the system can regulate the controlled expression of anti-sense molecules, or aptamers, that act as inhibitors for enzymes.

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References
1.
Shlyahovsky B, Li Y, Lioubashevski O, Elbaz J, Willner I . Logic gates and antisense DNA devices operating on a translator nucleic Acid scaffold. ACS Nano. 2009; 3(7):1831-43. DOI: 10.1021/nn900085x. View

2.
Penchovsky R, Breaker R . Computational design and experimental validation of oligonucleotide-sensing allosteric ribozymes. Nat Biotechnol. 2005; 23(11):1424-33. DOI: 10.1038/nbt1155. View

3.
Breaker R, Joyce G . A DNA enzyme with Mg(2+)-dependent RNA phosphoesterase activity. Chem Biol. 1995; 2(10):655-60. DOI: 10.1016/1074-5521(95)90028-4. View

4.
Khachigian L . Catalytic DNAs as potential therapeutic agents and sequence-specific molecular tools to dissect biological function. J Clin Invest. 2000; 106(10):1189-95. PMC: 381443. DOI: 10.1172/JCI11620. View

5.
Elbaz J, Moshe M, Shlyahovsky B, Willner I . Cooperative multicomponent self-assembly of nucleic acid structures for the activation of DNAzyme cascades: a paradigm for DNA sensors and aptasensors. Chemistry. 2009; 15(14):3411-8. DOI: 10.1002/chem.200802004. View