Literature DB >> 16741313

Preclinical pharmacokinetic, biodistribution, toxicology, and dosimetry studies of 111In-DTPA-human epidermal growth factor: an auger electron-emitting radiotherapeutic agent for epidermal growth factor receptor-positive breast cancer.

Raymond M Reilly1, Paul Chen, Judy Wang, Deborah Scollard, Ross Cameron, Katherine A Vallis.   

Abstract

UNLABELLED: Our objective was to evaluate the pharmacokinetics, normal tissue distribution, radiation dosimetry, and toxicology of human epidermal growth factor (hEGF) labeled with (111)In ((111)In-diethylenetriaminepentaacetic acid [DTPA]-hEGF) in mice and rabbits.
METHODS: (111)In-DTPA-hEGF (3.6 MBq; 1.3 or 13 microg) was administered intravenously to BALB/c mice. The blood concentration-time data were fitted to a 3-compartment model. Acute toxicity was studied with female BALB/c mice at 42 times the maximum planned human dose (MBq/kg) or with New Zealand White rabbits at 1 times the maximum planned human dose (MBq/kg) for a phase I clinical trial. Toxicity was evaluated by monitoring body weight, by determination of hematology and clinical biochemistry parameters, and by morphologic examination of tissues. Radiation dosimetry projections in humans were estimated on the basis of the residence times in mice by use of the OLINDA version 1.0 computer program.
RESULTS: The largest amounts of radioactivity were taken up by the liver (41.3 +/- 7.8 [mean +/- SD] percentage injected dose [%ID] at 1 h after injection and decreasing to 4.9 +/- 0.3 %ID at 72 h after injection) and kidneys (18.6 +/- 0.8 %ID at 1 h and decreasing to 4.5 +/- 0.2 %ID at 72 h after injection). (111)In-DTPA-hEGF was cleared rapidly from the blood, with a half-life at alpha-phase of 2.7-6.2 min and a half-life at beta-phase of 24.0-36.3 min. The half-life of the long terminal phase could not be accurately determined. The volume of distribution of the central compartment was 340-375 mL/kg, and the volume of distribution at steady state was 430-685 mL/kg. There was no significant difference in the ratio of body weight at 15 d to pretreatment weight for mice administered (111)In-DTPA-hEGF (1.02 +/- 0.01) and mice administered unlabeled DTPA-hEGF (1.01 +/- 0.01). Erythrocyte, leukocyte, and platelet counts and serum alanine aminotransferase and creatinine levels remained in the normal ranges. No morphologic changes were observed by light microscopy in any of 19 tissues sampled. Minor morphologic changes in the liver were observed by electron microscopy. The projected whole-body dose in humans was 0.19 mSv.MBq(-1). The projected doses to the liver, kidneys, and lower large intestine were 0.76, 1.82, and 1.12 mSv.MBq(-1), respectively.
CONCLUSION: (111)In-DTPA-hEGF was safely administered to mice and rabbits at multiples of the maximum dose planned for a phase I trial in breast cancer patients.

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Year:  2006        PMID: 16741313

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


  14 in total

Review 1.  Coordinating radiometals of copper, gallium, indium, yttrium, and zirconium for PET and SPECT imaging of disease.

Authors:  Thaddeus J Wadas; Edward H Wong; Gary R Weisman; Carolyn J Anderson
Journal:  Chem Rev       Date:  2010-05-12       Impact factor: 60.622

Review 2.  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

3.  Pharmacokinetics and dosimetry of (111)In/(188)Re-labeled PEGylated liposomal drugs in two colon carcinoma-bearing mouse models.

Authors:  Yi-Yu Lin; Chih-Hsien Chang; Jia-Je Li; Michael G Stabin; Ya-Jen Chang; Liang-Cheng Chen; Ming-Hsien Lin; Yun-Long Tseng; Wuu-Jyh Lin; Te-Wei Lee; Gann Ting; Cheng Allen Chang; Fu-Du Chen; Hsin-Ell Wang
Journal:  Cancer Biother Radiopharm       Date:  2011-06-28       Impact factor: 3.099

4.  Biodistribution, pharmacokinetics and radioimmunotherapy of 188Re-cetuximab in NCI-H292 human lung tumor-bearing nude mice.

Authors:  Ya-Jen Chang; Chung-Li Ho; Kai-Hung Cheng; Wan-I Kuo; Wan-Chi Lee; Keng-Li Lan; Chih-Hsien Chang
Journal:  Invest New Drugs       Date:  2019-01-05       Impact factor: 3.850

5.  Synthesis and preliminary biological evaluation of high-drug-load paclitaxel-antibody conjugates for tumor-targeted chemotherapy.

Authors:  Sherly Quiles; Kevin P Raisch; Leisa L Sanford; James A Bonner; Ahmad Safavy
Journal:  J Med Chem       Date:  2010-01-28       Impact factor: 7.446

6.  The effect of metal-chelating polymers (MCPs) for 111In complexed via the streptavidin-biotin system to trastuzumab Fab fragments on tumor and normal tissue distribution in mice.

Authors:  Amanda J Boyle; Peng Liu; Yijie Lu; Dirk Weinrich; Deborah A Scollard; Ghislaine Ngo Njock Mbong; Mitchell A Winnik; Raymond M Reilly
Journal:  Pharm Res       Date:  2012-08-21       Impact factor: 4.200

7.  Measuring the pharmacodynamic effects of a novel Hsp90 inhibitor on HER2/neu expression in mice using Zr-DFO-trastuzumab.

Authors:  Jason P Holland; Eloisi Caldas-Lopes; Vadim Divilov; Valerie A Longo; Tony Taldone; Danuta Zatorska; Gabriela Chiosis; Jason S Lewis
Journal:  PLoS One       Date:  2010-01-25       Impact factor: 3.240

Review 8.  Nanotargeted radionuclides for cancer nuclear imaging and internal radiotherapy.

Authors:  Gann Ting; Chih-Hsien Chang; Hsin-Ell Wang; Te-Wei Lee
Journal:  J Biomed Biotechnol       Date:  2010-08-03

Review 9.  Auger processes in the 21st century.

Authors:  Roger W Howell
Journal:  Int J Radiat Biol       Date:  2008-12       Impact factor: 2.694

10.  PET and SPECT Imaging of Tumor Biology: New Approaches towards Oncology Drug Discovery and Development.

Authors:  Marcian E Van Dort; Alnawaz Rehemtulla; Brian D Ross
Journal:  Curr Comput Aided Drug Des       Date:  2008       Impact factor: 1.606

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