Minimalist Design of Wireframe DNA Nanotubes: Tunable Geometry, Size, Chirality, and Dynamics

Angew Chem Int Ed Engl. 2023 Oct 26;62(44):e202309869. doi: 10.1002/anie.202309869. Epub 2023 Sep 21.

Abstract

DNA nanotubes (NTs) have attracted extensive interest as artificial cytoskeletons for biomedical, synthetic biology, and materials applications. Here, we report the modular design and assembly of a minimalist yet robust DNA wireframe nanotube with tunable cross-sectional geometry, cavity size, chirality, and length, while using only four DNA strands. We introduce an h-motif structure incorporating double-crossover (DX) tile-like DNA edges to achieve structural rigidity and provide efficient self-assembly of h-motif-based DNA nanotube (H-NT) units, thus producing programmable, micrometer-long nanotubes. We demonstrate control of the H-NT nanotube length via short DNA modulators. Finally, we use an enzyme, RNase H, to take these structures out of equilibrium and trigger nanotube assembly at a physiologically relevant temperature, underlining future cellular applications. The minimalist H-NTs can assemble at near-physiological salt conditions and will serve as an easily synthesized, DNA-economical modular template for biosensors, plasmonics, or other functional materials and as cost-efficient drug-delivery vehicles for biomedical applications.

Keywords: Biocompatible DNA Structures; Controlled Chirality; DNA Nanotubes; Dynamic Self-Assembly; Tunable Geometry.

MeSH terms

  • Biosensing Techniques*
  • DNA / chemistry
  • DNA Replication
  • Nanotechnology
  • Nanotubes* / chemistry

Substances

  • DNA