4.8 Article

Direct and Efficient Conjugation of Quantum Dots to DNA Nanostructures with Peptide-PNA

Journal

ACS NANO
Volume 15, Issue 5, Pages 9101-9110

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsnano.1c02296

Keywords

quantum dots; DNA nanostructures; nanoparticles; PNA; peptides; bioconjugation

Funding

  1. National Research Council Fellowship through NRL

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DNA nanotechnology has been successfully applied to coordinate multiple NPs with nanometer precision, with peptide-PNA serving as a viable alternative to ssDNA conjugation to enhance capture efficiency. This study demonstrated the direct conjugation of semiconductor quantum dots with DNA nanostructures using peptide-PNA, showcasing the feasibility of this method in achieving site specificity and precise spatial control of NP placement.
DNA nanotechnology has proven to be a powerful strategy for the bottom-up preparation of colloidal nanoparticle (NP) superstructures, enabling the coordination of multiple NPs with orientation and separation approaching nanometer precision. To do this, NPs are often conjugated with chemically modified, single-stranded (ss) DNA that can recognize complementary ssDNA on the DNA nanostructure. The limitation is that many NPs cannot be easily conjugated with ssDNA, and other conjugation strategies are expensive, inefficient, or reduce the specificity and/or precision with which NPs can be placed. As an alternative, the conjugation of nanoparticle-binding peptides and peptide nucleic acids (PNA) can produce peptide-PNA with distinct NP-binding and DNA-binding domains. Here, we demonstrate a simple application of this method to conjugate semiconductor quantum dots (QDs) directly to DNA nanostructures by means of a peptide-PNA with a six-histidine peptide motif that binds to the QD surface. With this method, we achieved greater than 90% capture efficiency for multiple QDs on a single DNA nanostructure while preserving both site specificity and precise spatial control of QD placement. Additionally, we investigated the effects of peptide-PNA charge on the efficacy of QD immobilization in suboptimal conditions. The results validate peptide-PNA as a viable alternative to ssDNA conjugation of NPs and warrant studies of other NP-binding peptides for peptide-PNA conjugation.

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