Abstract
DNA nanotechnology has emerged as a reliable and programmable way of controlling matter at the nanoscale through the specificity of Watson-Crick base pairing, allowing both complex self-assembled structures with nanometer precision and complex reaction networks implementing digital and analog behaviors. Here we show how two well-developed frameworks, DNA tile self-assembly and DNA strand-displacement circuits, can be systematically integrated to provide programmable kinetic control of self-assembly. We demonstrate the triggered and catalytic isothermal self-assembly of DNA nanotubes over 10 μm long from precursor DNA double-crossover tiles activated by an upstream DNA catalyst network. Integrating more sophisticated control circuits and tile systems could enable precise spatial and temporal organization of dynamic molecular structures. © 2013 Macmillan Publishers Limited. All rights reserved.
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CITATION STYLE
Zhang, D. Y., Hariadi, R. F., Choi, H. M. T., & Winfree, E. (2013). Integrating DNA strand-displacement circuitry with DNA tile self-assembly. Nature Communications, 4. https://doi.org/10.1038/ncomms2965
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