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Updated: May 3, 2026

Iterative Optimization of DNA Duplexes for Crystallization of SeqA-DNA Complexes
Published on: November 1, 2012
Crystallization of DNA-capped gold nanoparticles in high-concentration, divalent salt environments
Shawn J Tan1, Jason S Kahn, Thomas L Derrien
1Department of Biomedical Engineering, Cornell University, Ithaca, NY 14853 (USA); Current Address: Institute of Materials Research and Engineering, 3 Research Link, Singapore 117602 (Singapore). jt394@cornell.edu.
Abstract:
The multiparametric nature of nanoparticle self-assembly makes it challenging to circumvent the instabilities that lead to aggregation and achieve crystallization under extreme conditions. By using non-base-pairing DNA as a model ligand instead of the typical base-pairing design for programmability, long-range 2D DNA-gold nanoparticle crystals can be obtained at extremely high salt concentrations and in a divalent salt environment. The interparticle spacings in these 2D nanoparticle crystals can be engineered and further tuned based on an empirical model incorporating the parameters of ligand length and ionic strength.

