4.8 Article

Substrate-assisted 2D DNA lattices and algorithmic lattices from single-stranded tiles

Journal

NANOSCALE
Volume 7, Issue 29, Pages 12336-12342

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/c5nr03088a

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Funding

  1. Korea Research Institute of Bioscience and Biotechnology (KRIBB) Research Initiative Program
  2. National Research Foundation of Korea (NFR) - Ministry of Science, ICT Future Planning (MSIP) [NRF-2014R1A2A1A11053213]

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We present a simple route to circumvent kinetic traps which affect many types of DNA nanostructures in their self-assembly process. Using this method, a new 2D DNA lattice made up of short, single-stranded tile (SST) motifs was created. Previously, the growth of SST DNA assemblies was restricted to 1D (tubes and ribbons) or finite-sized 2D (molecular canvases). By utilizing the substrate-assisted growth method, sets of SSTs were designed as unit cells to self-assemble into periodic and aperiodic 2D lattices which continuously grow both along and orthogonal to the helical axis. Notably, large-scale (similar to 1 mu m(2)) fully periodic 2D lattices were fabricated using a minimum of just 2 strand species. Furthermore, the ability to create 2D lattices from a few motifs enables certain rules to be encoded into these SSTs to carry out algorithmic self-assembly. A set of these motifs was designed to execute simple 1-input 1-output COPY and NOT algorithms, the space-time manifestations which were aperiodic 2D algorithmic SST lattices. The methodology presented here can be straightforwardly applied to other motifs which fall into this type of kinetic trap to create novel DNA crystals.

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