| Literature DB >> 28194629 |
Roland Haubner1, Andreas M Schmid2, Andreas Maurer2, Christine Rangger3, Llanos Geraldo Roig3, Bernd J Pichler2, Irene J Virgolini3.
Abstract
PURPOSE: Non-invasive techniques allowing quantitative determination of the functional liver mass are of great interest for patient management in a variety of clinical settings. Recently, we presented [68Ga]DTPA-GSA to target the hepatic asialoglycoprotein receptor for this purpose. Here, we introduce [68Ga]NOTA-GSA to improve metabolic stability of the radiopharmaceutical and compare the imaging properties with [68Ga]DTPA-GSA. PROCEDURES: Labeling of the compounds was carried out at room temperature using 1.9 M sodium acetate as buffer. For quality control, thin-layer, high-performance liquid, and size exclusion chromatographies were used. Metabolic stability was studied in rat and human serums. For in vivo evaluation, Fischer rats were scanned by positron emission tomography and magnetic resonance imaging and subsequently sacrificed for biodistribution studies. Time activity curves (TACs) for heart and liver were generated and corresponding parameters (T50, T90, LHL15, HH15) were calculated.Entities:
Keywords: Galactosyl human serum albumin; Gallium-68; Liver function imaging; Nota; Positron emission tomography
Mesh:
Substances:
Year: 2017 PMID: 28194629 PMCID: PMC5574957 DOI: 10.1007/s11307-017-1046-1
Source DB: PubMed Journal: Mol Imaging Biol ISSN: 1536-1632 Impact factor: 3.488
Fig. 1.Schematic structure of a [68Ga]DTPA-GSA and b [68Ga]NOTA-GSA. Differences are found in the chelator type and the amount of sugar conjugated to the human serum albumin (HSA).
Fig. 2.a Comparison of the metabolic stability of [68Ga]NOTA-GSA (blue) and [68Ga]DTPA-GSA (red) in human serum after 30-, 60-, and 120-min incubation at 37 °C (for [68Ga]NOTA-GSA additional samples were taken approx. 2 min after start of incubation) and comparison of the stability in rat serum ([68Ga]NOTA-GSA (light blue), [68Ga]DTPA-GSA (orange)) after 2-, 30-, and 60-min incubation at 37 °C. Studies were carried out in duplicate (for [68Ga]NOTA-GSA standard deviation is very low and cannot be visualized due to the size of the used symbols). b HPLC diagrams of the different compounds after 120-min incubation in human serum. The retention times of the intact tracers are 16.6 min (gradient A) and 12.3 min (gradient B) for [68Ga]NOTA-GSA and [68Ga]DTPA-GSA, respectively.
Fig. 3.Comparison of [68Ga]NOTA-GSA and [68Ga]DTPA-GSA accumulation in vivo. In representative images a both compounds yielded comparable results 30 min post injection. High uptake in the liver is found while in all other organ activity concentration was negligible. At first glance time activity curves (b, c) were comparable. However, [68Ga]DTPA-GSA reached a slightly higher uptake followed by a wash-out in the liver (b) and higher background activity in the blood pool (c) compared to [68Ga]NOTA-GSA.
Fig. 4.Comparison of [68Ga]NOTA-GSA and [68Ga]DTPA-GSA ex vivo. In vivo imaging results were verified by biodistribution studies, which were performed approximately 35 min after the PET emission scan, leading to a further reduction of liver uptake in the [68Ga]DTPA-GSA group. a Again, both tracers showed high accumulation in the liver with only minor activity in all other investigated organs. b Analysis of time activity curves revealed increased T 90 times for [68Ga]NOTA-GSA; however, all other calculated parameters were identical.
Characteristic parameters for blood clearance (T50 = time to reach 50 % of the maximum heart uptake, HH15 = blood activity at 15 min divided by the blood activity at 3 min, and decaying constant b of the fit) and functional liver reserve (T90 = time to reach 90 % of the maximum liver uptake and LHL15 = liver activity at 15 min divided by the sum of liver and blood activity at 15 min). Data are given as mean ± standard deviation
| Compound |
|
| Clearance b | HH15 | LHL15 |
|---|---|---|---|---|---|
| [68Ga]NOTA-GSA | 42 ± 7 | 123 ± 10 | 1.39 ± 0.33 | 0.90 ± 0.05 | 0.92 ± 0.01 |
| [68Ga]DTPA-GSA | 46 ± 12 | 89 ± 3 | 1.47 ± 0.30 | 0.94 ± 0.06 | 0.90 ± 0.02 |