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.A minimalist design of robust DNA nanotubes from only 4 DNA strands, with tunable geometry, chirality, length, and assembly dynamics is reported. The method leads to robust nanotubes under physiologically relevant conditions, as cost-efficient nanomaterial templates or drug-delivery vehicles.+image

Luo, X., Saliba, D., Yang, T., Gentile, S., Mori, K., Islas, P., et al. (2023). Minimalist Design of Wireframe DNA Nanotubes: Tunable Geometry, Size, Chirality, and Dynamics. ANGEWANDTE CHEMIE. INTERNATIONAL EDITION, 62(44) [10.1002/anie.202309869].

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

Gentile, Serena;Bagheri, Neda;Porchetta, Alessandro;
2023-10-26

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.A minimalist design of robust DNA nanotubes from only 4 DNA strands, with tunable geometry, chirality, length, and assembly dynamics is reported. The method leads to robust nanotubes under physiologically relevant conditions, as cost-efficient nanomaterial templates or drug-delivery vehicles.+image
26-ott-2023
Pubblicato
Rilevanza internazionale
Articolo
Esperti anonimi
Settore CHIM/01
English
Con Impact Factor ISI
Biocompatible DNA Structures
Controlled Chirality
DNA Nanotubes
Dynamic Self-Assembly
Tunable Geometry
Luo, X., Saliba, D., Yang, T., Gentile, S., Mori, K., Islas, P., et al. (2023). Minimalist Design of Wireframe DNA Nanotubes: Tunable Geometry, Size, Chirality, and Dynamics. ANGEWANDTE CHEMIE. INTERNATIONAL EDITION, 62(44) [10.1002/anie.202309869].
Luo, X; Saliba, D; Yang, T; Gentile, S; Mori, K; Islas, P; Das, T; Bagheri, N; Porchetta, A; Guarne, A; Cosa, G; Sleiman, Hf
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2108/347463
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