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First-in-human imaging and kinetic analysis of vesicular acetylcholine transporter density in the heart using [18F]FEOBV PET

  • Zacharie Saint-Georges
  • , Vanessa K. Zayed
  • , Katie Dinelle
  • , Clifford Cassidy
  • , Jean Paul Soucy
  • , Gassan Massarweh
  • , Benjamin Rotstein
  • , Pablo B. Nery
  • , Synthia Guimond
  • , Robert deKemp
  • , Lauri Tuominen
  • University of Ottawa
  • The Royal’s Institute of Mental Health Research
  • McGill University
  • Université du Québec en Outaouais

Research output: Contribution to journalArticlepeer-review

12 Scopus citations

Abstract

In contrast to cardiac sympathetic activity which can be assessed with established PET tracers, there are currently no suitable radioligands to measure cardiac parasympathetic (cholinergic) activity. A radioligand able to measure cardiac cholinergic activity would be an invaluable clinical and research tool since cholinergic dysfunction has been associated with a wide array of pathologies (e.g., chronic heart failure, myocardial infarction, arrythmias). [18F]Fluoroethoxybenzovesamicol (FEOBV) is a cholinergic radiotracer that has been extensively validated in the brain. Whether FEOBV PET can be used to assess cholinergic activity in the heart is not known. Hence, this study aimed to evaluate the properties of FEOBV for cardiac PET imaging and cholinergic activity mapping. PET data were collected for 40 minutes after injection of 230 ± 50 MBq of FEOBV in four healthy participants (1 female; Age: 37 ± 10; BMI: 25 ± 2). Dynamic LV time activity curves were fitted with Logan graphical, 1-tissue compartment, and 2-tissue compartment models, yielding similar distribution volume estimates for each participant. Our initial data show that FEOBV PET has favorable tracer kinetics for quantification of cholinergic activity and is a promising new method for assessing parasympathetic function in the heart.

Original languageEnglish
Pages (from-to)50-54
Number of pages5
JournalJournal of Nuclear Cardiology
Volume28
Issue number1
DOIs
StatePublished - Feb 2021

Keywords

  • innervation tracers
  • molecular imaging
  • molecular imaging agents
  • PET
  • Tracer development

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