Aug 2026· Advances in Materials· pp.
e74516
· 0 citations· 34 references
Medicine
TL;DR
This work synthesized a fluorescein-bearing silica precursor which imparts fluorescence to the silica coating of both individual DNA origami nanostructures and crystals, enabling intracellular tracking of silica-stabilized structures.
Abstract
The silicification of DNA origami nanostructures offers a powerful strategy for enhancing their mechanical stability and resistance against detrimental environmental conditions. In the past years, several studies have investigated key aspects of the silicification process, resulting in a variety of established protocols. However, until now, the silica coating generally served as a passive protective layer or as the base for the further deposition of inorganic materials, but it did not carry any additional functionality itself. Here, we introduce two complementary, programmable approaches for the direct fabrication of functionalized silica coatings of DNA origami nanostructures. First, we synthesized a fluorescein-bearing silica precursor which imparts fluorescence to the silica coating of both individual DNA origami nanostructures and crystals, enabling intracellular tracking of silica-stabilized structures. Second, we employed a silica precursor containing a disulfide bridge to generate a redox responsive silica coating that degrades in a reducing environment. By introducing functionality at the precursor level, our approach establishes silicification as a modular platform for constructing responsive and traceable DNA-based hybrid materials. These strategies expand the chemical scope of DNA nanotechnology and facilitate future applications in drug delivery and advanced materials science.
Reversible functionalization of DNA nanostructures is essential for their integration into dynamic biological constructs and biomedical applications. Current strategies typically rely on strand displacement or stimuli-responsive sequences, while approaches based on dynamic covalent chemistry remain largely unexplored....
A. Postigo, Enrique Guerreiro, Joseba Ruiz et al.· Journal of the American Chem...· 0 citations
The tetrahedral DNA nanostructure (TDN) has emerged as a premier, highly programmable framework for targeted drug delivery and diagnostics. This review provides a definitive, chemistry‐first design guide for TDN engineering, systematically structured across three translational tiers. First, we examine foundational deri...
Tyler J. Rutherford, C. Wilds· Chemical Biology and Drug De...· 0 citations
DNA nanotechnology offers unique opportunities for creating various accurate and responsive nanostructures. Nevertheless, large-scale conformational changes with high geometric precision and efficiency remain major challenges. Herein we report a topologically engineered DNA origami that undergoes a dramatic transform...
Qiuyan Huang, Kun Wang, Xingye Zheng et al.· ACS Materials Letters· 0 citations
DNA-mediated colloidal crystal engineering offers a powerful route for constructing three-dimensional nanoparticle superlattices with programmable structures and properties. However, achieving room-temperature fabrication of DNA-bonded colloidal crystals with long-range order remains challenging because nanoparticle as...
Yun Wang, Wen-Qiang Hua, D. Ni et al.· Nano letters (Print)· 0 citations
The diversity of programmable DNA architecture offers exceptional design flexibility, yet the limited bioapplication of conventional DNA assemblies constrains their practical utility. Here, we introduce a strategy that employs silver nanoclusters (AgNCs) as a molecular “glue” to cross-link DNA nanostructures, signifi...
Keonwook Nam, Riddhi Nagda, Hari Chandana Yadavalli et al.· ACS Nano· 0 citations
Within the past 20 years, structural DNA nanotechnology has evolved from simple DNA tiles composed of a few strands to more advanced DNA origami nanostructures composed of dozens of unique strands. Meanwhile, the shape space of various RNA structures has also significantly expanded, and the tools for creating custom DN...
Olavi Reinsalu, Pranya Nepoliyan, S. Oras et al.· Nucleic Acid Insights· 0 citations
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