Literature DB >> 22519890

Positron emission tomography imaging of tumor angiogenesis with a 66Ga-labeled monoclonal antibody.

Jonathan W Engle1, Hao Hong, Yin Zhang, Hector F Valdovinos, Duane V Myklejord, Todd E Barnhart, Charles P Theuer, Robert J Nickles, Weibo Cai.   

Abstract

The goal of this study was to develop a (66)Ga-based positron emission tomography (PET) tracer for noninvasive imaging of CD105 expression during tumor angiogenesis, a hallmark of cancer. (66)Ga was produced using a cyclotron with (nat)Zn or isotopically enriched (66)Zn targets. TRC105, a chimeric anti-CD105 monoclonal antibody, was conjugated to 2-S-(4-isothiocyanatobenzyl)-1,4,7-triazacyclononane-1,4,7-triacetic acid (p-SCN-Bn-NOTA) and labeled with (66)Ga. No difference in CD105 binding affinity or specificity was observed between TRC105 and NOTA-TRC105 based on flow cytometry analysis. Reactivity of (66)Ga for NOTA, corrected to the end of bombardment, was between 74 and 222 GBq/μmol for both target enrichments with <2 ppb of cold gallium. (66)Ga-labeling was achieved with >80% radiochemical yield. Serial PET imaging revealed that the murine breast cancer 4T1 tumor uptake of (66)Ga-NOTA-TRC105 was 5.9 ± 1.6, 8.5 ± 0.6, and 9.0 ± 0.6% ID/g at 4, 20, and 36 h postinjection, respectively (n = 4). At the last time point, tumor uptake was higher than that of all organs, which gave excellent tumor contrast with a tumor/muscle ratio of 10.1 ± 1.1. Biodistribution data as measured by gamma counting were consistent with the PET findings. Blocking experiment, control studies with (66)Ga-NOTA-cetuximab, as well as ex vivo histology all confirmed the in vivo target specificity of (66)Ga-NOTA-TRC105. Successful PET imaging with high specific activity (66)Ga (>700 GBq/μmol has been achieved) as the radiolabel opens many new possibilities for future PET research with antibodies or other targeting ligands.

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Year:  2012        PMID: 22519890      PMCID: PMC3375902          DOI: 10.1021/mp300019c

Source DB:  PubMed          Journal:  Mol Pharm        ISSN: 1543-8384            Impact factor:   4.939


  42 in total

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Review 2.  Cetuximab.

Authors:  Richard M Goldberg
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3.  An investigation of the physical characteristics of 66Ga as an isotope for PET imaging and quantification.

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6.  Positron emission tomography imaging of CD105 expression during tumor angiogenesis.

Authors:  Hao Hong; Yunan Yang; Yin Zhang; Jonathan W Engle; Todd E Barnhart; Robert J Nickles; Bryan R Leigh; Weibo Cai
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  18 in total

1.  Novel Preparation Methods of (52)Mn for ImmunoPET Imaging.

Authors:  Stephen A Graves; Reinier Hernandez; Jesper Fonslet; Christopher G England; Hector F Valdovinos; Paul A Ellison; Todd E Barnhart; Dennis R Elema; Charles P Theuer; Weibo Cai; Robert J Nickles; Gregory W Severin
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Review 2.  Mapping biological behaviors by application of longer-lived positron emitting radionuclides.

Authors:  Yang Zhou; Kwamena E Baidoo; Martin W Brechbiel
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3.  86/90Y-Based Theranostics Targeting Angiogenesis in a Murine Breast Cancer Model.

Authors:  Emily B Ehlerding; Carolina A Ferreira; Eduardo Aluicio-Sarduy; Dawei Jiang; Hye Jin Lee; Charles P Theuer; Jonathan W Engle; Weibo Cai
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4.  Dynamic Positron Emission Tomography Imaging of Renal Clearable Gold Nanoparticles.

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5.  Positron emission tomography imaging of angiogenesis in a murine hindlimb ischemia model with 64Cu-labeled TRC105.

Authors:  Hakan Orbay; Yin Zhang; Hao Hong; Timothy A Hacker; Hector F Valdovinos; James A Zagzebski; Charles P Theuer; Todd E Barnhart; Weibo Cai
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6.  ImmunoPET: Concept, Design, and Applications.

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Review 7.  PET/SPECT imaging of hindlimb ischemia: focusing on angiogenesis and blood flow.

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Review 8.  PET radiometals for antibody labeling.

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9.  Radiolabeled, Antibody-Conjugated Manganese Oxide Nanoparticles for Tumor Vasculature Targeted Positron Emission Tomography and Magnetic Resonance Imaging.

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Review 10.  Intraoperative targeted optical imaging: a guide towards tumor-free margins in cancer surgery.

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