Imaging of opioid receptors in the central nervous system
Визуализация опиоидных рецепторов в центральной нервной системе
2007-11-29
SCID: 54.1/23xxgq59
Discuss with AI
PET tracerscentral nervous systemmu-, kappa and delta-opioid receptorsopioid receptor imagingpositron emission tomography
Figures from the paper
Abstract (AI)
In vivo functional imaging by means of positron emission tomography (PET) is the sole method for providing a quantitative measurement of mu-, kappa and delta-opioid receptor-mediated signalling in the central nervous system. During the last two decades, measurements of changes to the regional brain opioidergic neuronal activation--mediated by endogenously produced opioid peptides, or exogenously administered opioid drugs--have been conducted in numerous chronic pain conditions, in epilepsy, as well as by stimulant- and opioidergic drugs. Although several PET-tracers have been used clinically for depiction and quantification of the opioid receptors changes, the underlying mechanisms for regulation of changes to the availability of opioid receptors are still unclear. After a presentation of the general signalling mechanisms of the opioid receptor system relevant for PET, a critical survey of the pharmacological properties of some currently available PET-tracers is presented. Clinical studies performed with different PET ligands are also reviewed and the compound-dependent findings are summarized. An outlook is given concluding with the tailoring of tracer properties, in order to facilitate for a selective addressment of dynamic changes to the availability of a single subclass, in combination with an optimization of the quantification framework are essentials for further progress in the field of in vivo opioid receptor imaging.
Key Findings
1
Clinical findings vary among PET ligands, indicating that tracer-dependent pharmacological properties substantially influence observed opioid receptor measurements.
2
Further progress requires tailoring tracer properties to selectively target individual opioid receptor subclasses and optimizing quantitative analysis frameworks for dynamic receptor-availability changes.
3
Multiple PET tracers enable clinical depiction and quantification of opioid receptor changes, but the mechanisms regulating receptor availability remain unclear.
4
PET imaging has been used to measure regional brain opioidergic activation changes in chronic pain, epilepsy, and following stimulant or opioid drug administration.
5
PET is currently the sole method described for quantitatively measuring mu-, kappa-, and delta-opioid receptor-mediated signaling in the living central nervous system.
Research Object
opioid receptors in the central nervous system
Research Subject
PET-based quantitative imaging of opioid receptor-mediated signaling and dynamic changes in receptor availability across mu-, kappa-, and delta-opioid receptor subtypes
Publication Details
Publication Date
2007-11-29
Journal
Publisher
ISSN
Open access PDF
Access Type
Author Information
Download PDF
Subscribe to digest