| Literature DB >> 23311872 |
H Umesha Shetty1, Cheryl L Morse, Yi Zhang, Victor W Pike.
Abstract
BACKGROUND: The characterization of fast-decaying radiotracers that are labeled with carbon-11 (t1/2 = 20.38 min), including critical measurement of specific radioactivity (activity per mole at a specific time) before release for use in positron-emission tomography (PET), has relied heavily on chromatographic plus radiometric measurements, each of which may be vulnerable to significant errors. Thus, we aimed to develop a mass-specific detection method using sensitive liquid chromatography-mass spectrometry/mass spectrometry (LC-MS/MS) for identifying 11C-labeled tracers and for verifying their specific radioactivities.Entities:
Year: 2013 PMID: 23311872 PMCID: PMC3570351 DOI: 10.1186/2191-219X-3-3
Source DB: PubMed Journal: EJNMMI Res Impact factor: 3.138
Figure 1Chemical structures of compounds and their C-labeled analogs as PET tracers (A-D). The bond cleavage site in generating product ion by collision-induced dissociation is shown for each molecule.
Figure 2LC-MS/MS of the same [C]PBR28 preparation at four time-points of carbon-11 decay. The ion chromatogram overlay showing peaks for [11C]species as it decayed (A) and unchanging peak for [M + 1]carrier (B) during the same analysis. Their respective product ions m/z 120 and 122 were monitored.
Calculation of specific radioactivity from the peak areas of [C]and [M + 1]in radiotracers
| [11C]PBR28 | 10:21:23 | 2.3920 | 1.8531 | 2.6506 | 2.9849 | 7.9240 | 270.4 | 330.3 |
| 10:42:55 | 1.2103 | 0.9376 | 2.7072 | 3.0486 | 3.9271 | 134.0 | 340.6 | |
| [11C]( | 11:15:49 | 0.5745 | 0.7009 | 1.5974 | 1.1970 | 4.7490 | 162.1 | 463.3 |
| 11:37:19 | 0.2827 | 0.3449 | 1.6280 | 1.2199 | 2.2936 | 78.3 | 464.9 | |
aElution time for coeluting LC peaks of [11C]species and [M + 1]carrier; bcalculated peak area for [11C, M + 1]species (Equation 1); ccalculated peak area from measured M + 1/12C ratio in PBR28 and (R)-rolipram; dpeak area ratio of [11C]species to the sum of carrier and [11C]species; especific radioactivity calculated from the peak area ratio; fdecay-corrected specific radioactivity.
Figure 3Plot of specific radioactivity of [C]PBR28 versus time. It shows exponential loss of [11C]species mass due to radionuclide decay. A semilog plot of the same data is shown in the inset.
Specific radioactivity (decay-corrected) of PET radiotracers measured by LC-MS/MS and radiometric methods
| [11C]PBR28 | 265.5 ± 8.5 | 290.8 | −9.1 |
| 330.4 ± 5.8 | 363.6 | −9.6 | |
| 167.0 ± 2.9 | 173.3 | −3.7 | |
| [11C]dLop | 234.1 ± 3.2 | 237.9 | −1.6 |
| 227.1 ± 6.1 | 253.2 | −10.9 | |
| 241.4 ± 7.0 | 264.0 | −9.1 | |
| [11C]MePPEP | 160.1 ± 7.2 | 151.5 | +5.5 |
| 244.0 ± 11.7 | 238.0 | +2.5 | |
| 82.5 ± 3.0 | 92.4 | −11.3 | |
| [11C]( | 473.9 ± 4.8 | 459.9 | +3.0 |
| 505.0 ± 9.5 | 450.5 | +11.4 | |
| 459.0 ± 5.8 | 411.1 | +11.0 | |
aMean ± SD specific radioactivity from six consecutive analyses; bDifference (%) = [(LC-MS/MS − radiometry) / mean of both methods] × 100.