Literature DB >> 16595488

Gluc-Lys([18F]FP)-TOCA PET in patients with SSTR-positive tumors: biodistribution and diagnostic evaluation compared with [111In]DTPA-octreotide.

Günther Meisetschläger1, Thorsten Poethko, Alexander Stahl, Ingo Wolf, Klemens Scheidhauer, Margret Schottelius, Michael Herz, Hans J Wester, Markus Schwaiger.   

Abstract

UNLABELLED: A recently developed (18)F-labeled PET tracer for somatostatin receptor (sstr) imaging, N(alpha)-(1-deoxy-D-fructosyl)-N(epsilon)-(2-[(18)F]fluoropropionyl)-Lys(0)-Tyr(3)-octreotate (Gluc-Lys([(18)F]FP)-TOCA), was evaluated in patients with sstr-positive tumors by assessing the pharmacokinetics, biodistribution, and diagnostic performance in comparison with [(111)In]DTPA-octreotide.
METHODS: Twenty-five patients with different sstr-positive tumors were included in the study and were injected with 105 +/- 50 MBq Gluc-Lys([(18)F]FP)-TOCA. PET was performed up to 120 min with 2 different dynamic imaging protocols. Tracer kinetics in tumors and nontumor tissues and tumor-to-background ratios were described by region-of-interest analysis and standardized uptake values (SUVs). In 16 patients, sstr scintigraphy with [(111)In]DTPA-octreotide was performed (whole-body scans and SPECT). Two independent experts on PET and gamma- camera scans performed lesion counts.
RESULTS: Gluc-Lys([(18)F]FP)-TOCA showed a fast and intense tumor accumulation as well as a rapid clearance from blood serum (biexponential elimination, with the half-lives of the initial and the terminal elimination phase calculated as t(1/2)(1) = 2.3 +/- 1.3 min and t(1/2)(2) = 26.4 +/- 14.6 min, respectively). Tumor-to-background ratios at 16 +/- 9 min and 34 +/- 12 min were as high as 80% and 90% (% of maximum ratios), respectively. Tumors showed high SUVs ranging from 13.7 +/- 2.3 (tumors in lung) up to 26.9 +/- 15.4 (abdominal tumors). Tracer distribution within tumor and nontumor tissues was stable up to 120 min (except spleen). No significant bowel activity was observed. Comparison of 29 tumors located in the liver showed a mean tumor-to-background ratio of 5.3 +/- 2.6 for Gluc-Lys([(18)F]FP)-TOCA vs. 4.6 +/- 3.3 for [(111)In]DTPA-octreotide (P = 0.24). Visual image analysis revealed a significantly higher number of lesions (factor of 2.4) and improved interobserver correlation (r = 0.99 vs. 0.86) for PET.
CONCLUSION: Gluc-Lys([(18)F]FP)-TOCA PET allows a fast, high- contrast imaging of sstr-positive tumors. The biokinetics and diagnostic performance of Gluc-Lys([(18)F]FP)-TOCA are superior to [(111)In]DTPA-octreotide and-as far as can be derived from the literature-comparable with [(68)Ga]-DOTA-d Phe(1)-Tyr(3)-octreotide ([(68)Ga]DOTATOC).

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Year:  2006        PMID: 16595488

Source DB:  PubMed          Journal:  J Nucl Med        ISSN: 0161-5505            Impact factor:   10.057


  21 in total

Review 1.  Somatostatin receptor PET ligands - the next generation for clinical practice.

Authors:  Elin Pauwels; Frederik Cleeren; Guy Bormans; Christophe M Deroose
Journal:  Am J Nucl Med Mol Imaging       Date:  2018-10-20

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Authors:  Thaddeus J Wadas; Edward H Wong; Gary R Weisman; Carolyn J Anderson
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Review 3.  Applications of molecular imaging.

Authors:  Craig J Galbán; Stefanie Galbán; Marcian E Van Dort; Gary D Luker; Mahaveer S Bhojani; Alnawaz Rehemtulla; Brian D Ross
Journal:  Prog Mol Biol Transl Sci       Date:  2010       Impact factor: 3.622

Review 4.  [Molecular imaging with new PET tracers].

Authors:  A J Beer; M Schwaiger
Journal:  Radiologe       Date:  2007-01       Impact factor: 0.635

Review 5.  Peptides and peptide hormones for molecular imaging and disease diagnosis.

Authors:  Seulki Lee; Jin Xie; Xiaoyuan Chen
Journal:  Chem Rev       Date:  2010-05-12       Impact factor: 60.622

Review 6.  International Union of Basic and Clinical Pharmacology. CV. Somatostatin Receptors: Structure, Function, Ligands, and New Nomenclature.

Authors:  Thomas Günther; Giovanni Tulipano; Pascal Dournaud; Corinne Bousquet; Zsolt Csaba; Hans-Jürgen Kreienkamp; Amelie Lupp; Márta Korbonits; Justo P Castaño; Hans-Jürgen Wester; Michael Culler; Shlomo Melmed; Stefan Schulz
Journal:  Pharmacol Rev       Date:  2018-10       Impact factor: 25.468

7.  Using 5-deoxy-5-[18F]fluororibose to glycosylate peptides for positron emission tomography.

Authors:  Xiang-Guo Li; Kerttuli Helariutta; Anne Roivainen; Sirpa Jalkanen; Juhani Knuuti; Anu J Airaksinen
Journal:  Nat Protoc       Date:  2013-12-19       Impact factor: 13.491

Review 8.  Functional imaging of neuroendocrine tumours with PET.

Authors:  Felix M Mottaghy; Sven N Reske
Journal:  Pituitary       Date:  2006       Impact factor: 4.107

Review 9.  [PET-CT for neuroendocrine tumors and nuclear medicine therapy options].

Authors:  K Scheidhauer; M Miederer; F C Gaertner
Journal:  Radiologe       Date:  2009-03       Impact factor: 0.635

10.  PET/CT with Gluc-Lys-([(18)F]FP)-TOCA: correlation between uptake, size and arterial perfusion in somatostatin receptor positive lesions.

Authors:  Hinrich Wieder; Ambros J Beer; Thorsten Poethko; Guenther Meisetschlaeger; Hans-Juergen Wester; Ernst Rummeny; Markus Schwaiger; Alexander R Stahl
Journal:  Eur J Nucl Med Mol Imaging       Date:  2007-10-03       Impact factor: 9.236

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