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Energy Transfer Between i-Motif DNA Encapsulated Silver Nanoclusters and Fluorescein Amidite Efficiently Visualizes the Redox State of Live Cells

  • Hari Chandana Yadavalli
  • , Yeolhoe Kim
  • , Il Lae Jung
  • , Sooyeon Park
  • , Tae Hwan Kim
  • , Jin Young Shin
  • , Riddhi Nagda
  • , Peter Waaben Thulstrup
  • , Morten Jannik Bjerrum
  • , Yong Joo Bhang
  • , Phil Hyu Lee
  • , Won Ho Yang*
  • , Pratik Shah*
  • , Seong Wook Yang*
  • *Corresponding author for this work
  • Yonsei University
  • Korea Atomic Energy Research Institute
  • University of Copenhagen
  • Xenohelix Research Institute
  • Roskilde University

Research output: Contribution to journalJournal articlepeer-review

Abstract

The redox regulation, maintaining a balance between oxidation and reduction in living cells, is vital for cellular homeostasis, intricate signaling networks, and appropriate responses to physiological and environmental cues. Here, a novel redox sensor, based on DNA-encapsulated silver nanoclusters (DNA/AgNCs) and well-defined chemical fluorophores, effectively illustrating cellular redox states in live cells is introduced. Among various i-motif DNAs, the photophysical property of poly-cytosines (C20)-encapsulated AgNCs that sense reactive oxygen species (ROS) is adopted. However, the sensitivity of C20/AgNCs is insufficient for evaluating ROS levels in live cells. To overcome this drawback, the ROS sensing mechanism of C20/AgNCs through gel electrophoresis, mass spectrometry, and small-angle X-ray scattering is primarily defined. Then, by tethering fluorescein amidite (FAM) and Cyanine 5 (Cy5) dyes to each end of the C20/AgNCs sensor, an Energy Transfer (ET) between AgNCs and FAM is achieved, resulting in intensified green fluorescence upon ROS detection. Taken together, the FAM-C20/AgNCs-Cy5 redox sensor enables dynamic visualization of intracellular redox states, yielding insights into oxidative stress-related processes in live cells.

Original languageEnglish
Article number2401629
JournalSmall
Volume20
Issue number40
DOIs
StatePublished - 2024.10.3

Keywords

  • DNA
  • energy transfer
  • imaging
  • redox sensing
  • silver nanoclusters

Quacquarelli Symonds(QS) Subject Topics

  • Materials Science
  • Chemistry
  • Biological Sciences

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