Tailed‐Hoogsteen Triplex DNA Silver Nanoclusters Emit Red Fluorescence upon Target miRNA Sensing

Author:

Yadavalli Hari Chandana1ORCID,Park Sooyeon1ORCID,Kim Yeolhoe1ORCID,Nagda Riddhi1ORCID,Kim Tae‐Hwan2,Han Min Kyun1ORCID,Jung Il Lae3,Bhang Yong Joo4,Yang Won Ho1,Dalgaard Louise Torp5,Yang Seong Wook1ORCID,Shah Pratik5ORCID

Affiliation:

1. Department of Systems Biology, Institute of Life Science and Biotechnology Yonsei University Seoul 03722 Republic of Korea

2. Department of Quantum System Engineering Jeonbuk National University Jeonju 54896 Republic of Korea

3. Department of Radiation Biology, Environmental Radiation Research Group Korea Atomic Energy Research Institute Daejeon 34057 Republic of Korea

4. Xenohelix Research Institute BT Centre 305, 56 Songdogwahak‐ro Yeonsugu Incheon 21984 Republic of Korea

5. Department of Science and Environment Roskilde University Roskilde 4000 Denmark

Abstract

AbstractMicroRNAs (miRNAs) are small RNA molecules, typically 21‒22 nucleotides in size, which play a crucial role in regulating gene expression in most eukaryotes. Their significance in various biological processes and disease pathogenesis has led to considerable interest in their potential as biomarkers for diagnosis and therapeutic applications. In this study, a novel method for sensing target miRNAs using Tailed‐Hoogsteen triplex DNA‐encapsulated Silver Nanoclusters (DNA/AgNCs) is introduced. Upon hybridization of a miRNA with the tail, the Tailed‐Hoogsteen triplex DNA/AgNCs exhibit a pronounced red fluorescence, effectively turning on the signal. It is successfully demonstrated that this miRNA sensor not only recognized target miRNAs in total RNA extracted from cells but also visualized target miRNAs when introduced into live cells, highlighting the advantages of the turn‐on mechanism. Furthermore, through gel‐fluorescence assays and small‐angle X‐ray scattering (SAXS) analysis, the turn‐on mechanism is elucidated, revealing that the Tailed‐Hoogsteen triplex DNA/AgNCs undergo a structural transition from a monomer to a dimer upon sensing the target miRNA. Overall, the findings suggest that Tailed‐Hoogsteen triplex DNA/AgNCs hold great promise as practical sensors for small RNAs in both in vitro and cell imaging applications.

Funder

Korea Health Industry Development Institute

Yonsei University

National Research Foundation of Korea

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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