A Reactive and Specific Sensor for Activity-Based 19F-MRI Sensing of Zn2

ACS Sens. 2024 Nov 22;9(11):5770-5775. doi: 10.1021/acssensors.4c01895. Epub 2024 Oct 24.

Abstract

The rapid fluctuations of metal ion levels in biological systems are faster than the time needed to map fluorinated sensors designed for the 19F-MRI of cations. An attractive modular solution might come from the activity-based sensing approach. Here, we propose a highly reactive but still ultimately specific synthetic fluorinated sensor for 19F-MRI mapping of labile Zn2+. The sensor comprises a dipicolylamine scaffold for Zn2+ recognition conjugated to a fluorophenyl acetate entity. Upon binding to Zn2+, the synthetic sensor is readily hydrolyzed, and the frequency of its 19F-functional group in 19F-NMR is shifted by 12 ppm, allowing the display of the Zn2+ distribution as an artificial MRI-colored map highlighting its specificity compared to other metal ions. The irreversible Zn2+-induced hydrolysis results in a "turn-on" 19F-MRI, potentially detecting the cation even upon a transient elevation of its levels. We envision that additional metal-ion sensors can be developed based on the principles demonstrated in this work, expanding the molecular toolbox currently used for 19F-MRI.

Keywords: 19F-MRI; Activity Based Sensing; Metal Ion Sensing; Responsive Agents; Zn2+ imaging.

MeSH terms

  • Amines / chemistry
  • Fluorine / chemistry
  • Fluorine-19 Magnetic Resonance Imaging / methods
  • Magnetic Resonance Imaging / methods
  • Picolinic Acids / analysis
  • Picolinic Acids / chemistry
  • Zinc* / analysis
  • Zinc* / chemistry

Substances

  • Zinc
  • Picolinic Acids
  • Amines
  • 2,2'-dipicolylamine
  • Fluorine