Kinetic Modeling and Test-Retest Reproducibility of <sup>11</sup>C-EKAP and <sup>11</sup>C-FEKAP, Novel Agonist Radiotracers for PET Imaging of the κ-Opioid Receptor in Humans.

Naganawa, Mika; Li, Songye; Nabulsi, Nabeel; Lin, Shu-Fei; Labaree, David; Ropchan, Jim; Gao, Hong; Mei, Michael et al. · J Nucl Med · 2020

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Abstract

The κ-opioid receptor (KOR) is implicated in various neuropsychiatric disorders. We previously evaluated an agonist tracer, <sup>11</sup>C-GR103545, for PET imaging of KOR in humans. Although <sup>11</sup>C-GR103545 showed high brain uptake, good binding specificity, and selectivity for KOR, it displayed slow kinetics and relatively large test-retest variability of total distribution volume (<i>V</i><sub>T</sub>) estimates (15%). Therefore, we set out to develop 2 novel KOR agonist radiotracers, <sup>11</sup>C-EKAP and <sup>11</sup>C-FEKAP. In nonhuman primates, both tracers exhibited faster kinetics than <sup>11</sup>C-GR103545 and comparable binding parameters to <sup>11</sup>C-GR103545. The aim of this study was to assess their kinetic and binding properties in humans. <b>Methods:</b> Six healthy subjects underwent 120-min test-retest PET scans with both <sup>11</sup>C-EKAP and <sup>11</sup>C-FEKAP. Metabolite-corrected arterial input functions were measured. Regional time-activity curves were generated for 14 regions of interest. One-tissue-compartment and 2-tissue-compartment (2TC) models and the multilinear analysis-1 (MA1) method were applied to the regional time-activity curves to calculate <i>V</i><sub>T</sub> The time stability of <i>V</i><sub>T</sub> and test-retest reproducibility were evaluated. Levels of specific binding, as measured by the nondisplaceable binding potential (<i>BP</i><sub>ND</sub>) for the 3 tracers (<sup>11</sup>C-EKAP, <sup>11</sup>C-FEKAP, and <sup>11</sup>C-GR103545), were compared using a graphical method. <b>Results:</b> For both tracers, regional time-activity curves were fitted well with the 2TC model and MA1 method (<i>t</i>* = 20 min) but not with the 1-tissue-compartment model. Given the unreliably estimated parameters in several fits with the 2TC model and a good <i>V</i><sub>T</sub> match between MA1 and 2TC, MA1 was chosen as the appropriate model for both tracers. Mean MA1 <i>V</i><sub>T</sub> was highest for <sup>11</sup>C-GR103545, followed by <sup>11</sup>C-EKAP and then <sup>11</sup>C-FEKAP. The minimum scan time for stable <i>V</i><sub>T</sub> measurement was 90 and 110 min for <sup>11</sup>C-EKAP and <sup>11</sup>C-FEKAP, respectively, compared with 140 min for <sup>11</sup>C-GR103545. The mean absolute test-retest variability in MA1 <i>V</i><sub>T</sub> estimates was 7% and 18% for <sup>11</sup>C-EKAP and <sup>11</sup>C-FEKAP, respectively. <i>BP</i><sub>ND</sub> levels were similar for <sup>11</sup>C-FEKAP and <sup>11</sup>C-GR103545 but were about 25% lower for <sup>11</sup>C-EKAP. <b>Conclusion:</b> The 2 novel KOR agonist tracers showed faster tissue kinetics than <sup>11</sup>C-GR103545. Even with a slightly lower <i>BP</i><sub>ND</sub>, <sup>11</sup>C-EKAP is judged to be a better tracer for imaging and quantification of KOR in humans, on the basis of the shorter minimum scan time and the excellent test-retest reproducibility of regional <i>V</i><sub>T</sub>.

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