Optimized assembly and covalent coupling of single-molecule DNA origami nanoarrays

133Citations
Citations of this article
183Readers
Mendeley users who have this article in their library.

This article is free to access.

Abstract

Artificial DNA nanostructures, such as DNA origami, have great potential as templates for the bottom-up fabrication of both biological and nonbiological nanodevices at a resolution unachievable by conventional top-down approaches. However, because origami are synthesized in solution, origami-templated devices cannot easily be studied or integrated into larger on-chip architectures. Electrostatic self-Assembly of origami onto lithographically defined binding sites on Si/SiO2 substrates has been achieved, but conditions for optimal assembly have not been characterized, and the method requires high Mg2+ concentrations at which most devices aggregate. We present a quantitative study of parameters affecting origami placement, reproducibly achieving single-origami binding at 94 ± 4% of sites, with 90% of these origami having an orientation within ±10° of their target orientation. Further, we introduce two techniques for converting electrostatic DNA-surface bonds to covalent bonds, allowing origami arrays to be used under a wide variety of Mg2+-free solution conditions.

Cite

CITATION STYLE

APA

Gopinath, A., & Rothemund, P. W. K. (2014). Optimized assembly and covalent coupling of single-molecule DNA origami nanoarrays. ACS Nano, 8(12), 12030–12040. https://doi.org/10.1021/nn506014s

Register to see more suggestions

Mendeley helps you to discover research relevant for your work.

Already have an account?

Save time finding and organizing research with Mendeley

Sign up for free