DNA Nanoglue: Silver Nanocluster-Based Cross-Linking of Supramolecular DNA Architectures

Abstract 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, significantly enhancing their biostability. Our design integrates one to six silver-binding hairpins, primarily C6 motifs, into discrete DNA constructs. This approach was extended to supramolecular DNA polymers generated through rolling circle amplification. Formation of DNA/AgNCs nanocomplexes was validated by characteristic orange fluorescence and reduced electrophoretic mobility. Structural analyses using transmission electron microscopy, small-angle X-ray scattering, and scanning electron microscopy revealed that AgNCs size and overall nanocomplex dimensions increased with the number of hairpins, whereas in polymeric C6 sequences, shorter polymers formed larger nanoassemblies. Overall, our findings elucidate the relationship between DNA architecture and AgNCs formation, establishing robust DNA-based systems with enhanced stability and customizable functionality for advanced bioapplications.

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Publication Details

Journal
ACS Nano
Published
2026-09-09
DOI
https://doi.org/10.1021/acsnano.6c08926
Primary Topic
Nanocluster Synthesis and Applications
Type
article
Field-Weighted Citation Impact
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DNA Nanoglue: Silver Nanocluster-Based Cross-Linking of Supramolecular DNA Architectures

Young Hoon Roh, Seong Wook Yang, Molly M. Stevens, Pratik Shah et al.
ACS Nano
Nanocluster Synthesis and Applications
article

DNA Nanoglue: Silver Nanocluster-Based Cross-Linking of Supramolecular DNA Architectures

Young Hoon Roh, Seong Wook Yang, Molly M. Stevens, Pratik Shah, Keonwook Nam, Hari Chandana Yadavalli, Riddhi Nagda, Kyungjik Yang, Tae‐Hwan Kim, Young Min Kim, Dan Luo, Joohyun Oh
article en

Abstract

Abstract 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, significantly enhancing their biostability. Our design integrates one to six silver-binding hairpins, primarily C6 motifs, into discrete DNA constructs. This approach was extended to supramolecular DNA polymers generated through rolling circle amplification. Formation of DNA/AgNCs nanocomplexes was validated by characteristic orange fluorescence and reduced electrophoretic mobility. Structural analyses using transmission electron microscopy, small-angle X-ray scattering, and scanning electron microscopy revealed that AgNCs size and overall nanocomplex dimensions increased with the number of hairpins, whereas in polymeric C6 sequences, shorter polymers formed larger nanoassemblies. Overall, our findings elucidate the relationship between DNA architecture and AgNCs formation, establishing robust DNA-based systems with enhanced stability and customizable functionality for advanced bioapplications.

ACS Nano
Roskilde University (DK), Yonsei University (KR), Cornell University (US), University of Oxford (GB), Jeonbuk National University Hospital (KR), Jeonbuk National University (KR)
Sustainable cities and communities
Openalex Percentile: Top 23%
Nanocluster Synthesis and Applications
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