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Algorithmic Self-Assembly of DNA Sierpinski Triangles

PLoS Biology · 2004 · Vol. 2(12) · pp. e424–e424
Paul W. K. RothemundNick PapadakisErik Winfree

Abstract

Algorithms and information, fundamental to technological and biological organization, are also an essential aspect of many elementary physical phenomena, such as molecular self-assembly. Here we report the molecular realization, using two-dimensional self-assembly of DNA tiles, of a cellular automaton whose update rule computes the binary function XOR and thus fabricates a fractal pattern--a Sierpinski triangle--as it grows. To achieve this, abstract tiles were translated into DNA tiles based on double-crossover motifs. Serving as input for the computation, long single-stranded DNA molecules were used to nucleate growth of tiles into algorithmic crystals. For both of two independent molecular realizations, atomic force microscopy revealed recognizable Sierpinski triangles containing 100-200 correct tiles. Error rates during assembly appear to range from 1% to 10%. Although imperfect, the growth of Sierpinski triangles demonstrates all the necessary mechanisms for the molecular implementation of arbitrary cellular automata. This shows that engineered DNA self-assembly can be treated as a Turing-universal biomolecular system, capable of implementing any desired algorithm for computation or construction tasks.

Advanced biosensing and bioanalysis techniquesDNA and Biological ComputingModular Robots and Swarm IntelligenceSierpinski triangleCellular automatonComputationCrossoverFractalRealization (probability)DNADNA computingAlgorithmComputer science

MeSH terms

AlgorithmsBase SequenceBiophysicsComputer SimulationDNAGenetic EngineeringModels, GeneticUltraviolet RaysReproducibility of ResultsSequence Analysis, DNAMicroscopy, Atomic ForceComputational BiologyComputers, Molecular

Funding

  • National Science Foundation
  • National Aeronautics and Space Administration
  • California Institute of Technology
  • Defense Advanced Research Projects Agency
  • Division of Materials Research
Citations
866
FWCI
13.57
field-weighted impact
References
53
Percentile
99%
vs. same field & year
Citations per year
Cited by
Dynamic DNA nanotechnology using strand-displacement reactions
Nature Chemistry · 2011 · 1,761 citations
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Nucleic acid junctions and lattices
Journal of Theoretical Biology · 1982 · 2,478 citations
Theory of Self-Reproducing Automata
Mathematics of Computation · 1967 · 5,475 citations
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