Trial reportClinical pharmacokinetics2011
A combined accelerator mass spectrometry-positron emission tomography human microdose study with 14C- and 11C-labelled verapamil.
Trial report in Clinical pharmacokinetics, 2011. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 15 papers.
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The abstract states no effect estimate the extractor could read, or names no intervention and outcome on the map, so this paper lights no cell and moves no belief. It is still indexed, cited and linked below.
The trial behind it
Trials whose registry record cites this paper, or whose number appears in the abstract. A trial that started after this paper was published is citing it as background, not reporting it.
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Who cites it
15 citing papers in PubMed, 35 citations in OpenAlex.
- Designing a Small Molecule for PET Radiotracing: [Molecules (Basel, Switzerland) · 2025Review
- Evaluation of dose linearity in the systemic availability and pharmacokinetics of topically administered diclofenac: ADrug metabolism and disposition: the biological fate of chemicals · 2025Article
- ATP-binding cassette transporter inhibitor potency and substrate drug affinity are critical determinants of successful drug delivery enhancement to the brain.Fluids and barriers of the CNS · 2024Article
- The application of Phase 0 and microtracer approaches in early clinical development: past, present, and future.Frontiers in pharmacology · 2024Review
- Strategic, feasibility, economic, and cultural aspects of phase 0 approaches: Is it time to change the drug development process in order to increase productivity?Clinical and translational science · 2022Review
- EANM guideline for harmonisation on molar activity or specific activity of radiopharmaceuticals: impact on safety and imaging quality.EJNMMI radiopharmacy and chemistry · 2021Article
- Brain exposure of the ATM inhibitor AZD1390 in humans-a positron emission tomography study.Neuro-oncology · 2021Article
- Predictive Value of Microdose Pharmacokinetics.Clinical pharmacokinetics · 2019Review
- The biodistribution and pharmacokinetics of the oxime acetylcholinesterase reactivator RS194B in guinea pigs.Chemico-biological interactions · 2017Article
- Use of Accelerator Mass Spectrometry in Human Health and Molecular Toxicology.Chemical research in toxicology · 2016Review
- Microdosing and drug development: past, present and future.Expert opinion on drug metabolism & toxicology · 2013Review
- Modeling of PET data in CNS drug discovery and development.Journal of pharmacokinetics and pharmacodynamics · 2013Review
- Positron emission tomography molecular imaging for drug development.British journal of clinical pharmacology · 2012Review
- Approaches using molecular imaging technology -- use of PET in clinical microdose studies.Advanced drug delivery reviews · 2011Review
- Human tissue in the evaluation of safety and efficacy of new medicines: a viable alternative to animal models?ISRN pharmaceutics · 2011Article
Corrections and comments
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Authors and funding
12 authors at 3 institutions in 3 countries.
Funding
Abstract
BACKGROUND AND
objectiveIn microdose studies, the pharmacokinetic profile of a drug in blood after administration of a dose up to 100 μg is measured with sensitive analytical techniques, such as accelerator mass spectrometry (AMS). As most drugs exert their effect in tissue rather than blood, methodology is needed for extending pharmacokinetic analysis to different tissue compartments. In the present study, we combined, for the first time, AMS analysis with positron emission tomography (PET) in order to determine the pharmacokinetic profile of the model drug verapamil in plasma and brain of humans. In order to assess pharmacokinetic dose linearity of verapamil, data were acquired and compared after administration of an intravenous microdose and after an intravenous microdose administered concomitantly with an oral therapeutic dose.
methodsSix healthy male subjects received an intravenous microdose [0.05 mg] (period 1) and an intravenous microdose administered concomitantly with an oral therapeutic dose [80 mg] of verapamil (period 2) in a randomized, crossover, two-period study design. The intravenous dose was a mixture of (R/S)-[14C]verapamil and (R)-[11C]verapamil and the oral dose was unlabelled racaemic verapamil. Brain distribution of radioactivity was measured with PET whereas plasma pharmacokinetics of (R)- and (S)-verapamil were determined with AMS. PET data were analysed by pharmacokinetic modelling to estimate the rate constants for transfer (k) of radioactivity across the blood-brain barrier.
resultsMost pharmacokinetic parameters of (R)- and (S)-verapamil as well as parameters describing exchange of radioactivity between plasma and brain (influx rate constant [K(1)] = 0.030 ± 0.003 and 0.031 ± 0.005 mL/mL/min and efflux rate constant [k(2)] = 0.099 ± 0.006 and 0.095 ± 0.008 min-1 for period 1 and 2, respectively) were not statistically different between the two periods although there was a trend for nonlinear pharmacokinetics for the (R)-enantiomer. On the other hand, all pharmacokinetic parameters (except for the terminal elimination half-life [t1/2;)]) differed significantly between the (R)- and (S)-enantiomers for both periods. The maximum plasma concentration (C(max)), area under the plasma concentration-time curve (AUC) from 0 to 24 hours (AUC(24)) and AUC from time zero to infinity (AUC(∞)) were higher and the total clearance (CL), volume of distribution (V(d)) and volume of distribution at steady state (V(ss)) were lower for the (R)- than for the (S)-enantiomer.
conclusionCombining AMS and PET microdosing allows long-term pharmacokinetic data along with information on drug tissue distribution to be acquired in the same subjects thus making it a promising approach to maximize data output from a single clinical study.
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