Chemistry (Aug 2023)

Ratiometric Detection of Zn<sup>2+</sup> Using DNAzyme-Based Bioluminescence Resonance Energy Transfer Sensors

  • Yuting Wu,
  • Whitney Lewis,
  • Jing Luen Wai,
  • Mengyi Xiong,
  • Jiao Zheng,
  • Zhenglin Yang,
  • Chloe Gordon,
  • Ying Lu,
  • Siu Yee New,
  • Xiao-Bing Zhang,
  • Yi Lu

DOI
https://doi.org/10.3390/chemistry5030119
Journal volume & issue
Vol. 5, no. 3
pp. 1745 – 1759

Abstract

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While fluorescent sensors have been developed for monitoring metal ions in health and diseases, they are limited by the requirement of an excitation light source that can lead to photobleaching and a high autofluorescence background. To address these issues, bioluminescence resonance energy transfer (BRET)-based protein or small molecule sensors have been developed; however, most of them are not highly selective nor generalizable to different metal ions. Taking advantage of the high selectivity and generalizability of DNAzymes, we report herein DNAzyme-based ratiometric sensors for Zn2+ based on BRET. The 8-17 DNAzyme was labeled with luciferase and Cy3. The proximity between luciferase and Cy3 permitted BRET when coelenterazine, the substrate for luciferase, was introduced. Adding samples containing Zn2+ resulted in a cleavage of the substrate strand, causing dehybridization of the DNAzyme construct, thus increasing the distance between Cy3 and luciferase and changing the BRET signals. Using these sensors, we detected Zn2+ in serum samples and achieved Zn2+ detection with a smartphone camera. Moreover, since the BRET pair is not the component that determines the selectivity of the sensors, this sensing platform has the potential to be adapted for the detection of other metal ions with other metal-dependent DNAzymes.

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