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1.
Nuclear Medicine and Molecular Imaging ; : 487-494, 2009.
Article in Korean | WPRIM | ID: wpr-155609

ABSTRACT

PURPOSE: Small size of recombinant scFv antibody has many advantages such as rapid blood clearances and improved targeting antibodies to tumor region. On the other hand owing to small size, number of amino group is insufficient in conjugation with chelator and fluorescence labeling. This study is to introduce poly lysine tag to the C-terminal end of scFv lym-1 sequence for fluorescence chelator conjugation. MATERIALS AND METHODS: Poly lysine scFv lym-1 gene, cloned into pET-22b (+) vector, was expressed in E. coli BL21 (DE3) strain. Antibody purification was performed with Ni-NTA column and then size exclusion column chromatography. Expression and purification levels of poly lysine tagged scFv lym-1 antibody were confirmed by western blot analysis. I-124, I-125, I-131 and Tc-99m were used for radiolabeling of purified poly lysine scFv lym-1. Flow cytometry analysis of FITC conjugated poly lysine scFv lym-1 was performed for confirmation of immunoreactivity of human Burkitt`s lymphoma cells. RESULTS: Poly lysine scFv lym-1 antibody was purified through two steps and identified as molecular weight of 48 KDa. Radiolabeling yields of I-124, I-125, I-131 and Tc-99m into poly lysine scFv lym-1 were >99%, >99%, >95% and >99%, respectively. Flow cytometry analysis of poly lysine scFv and scFv lym-1 was showed similar immunoreactivity to human Burkitt`s lymphoma cells. CONCLUSION: Poly lysine tag was useful for the sufficient number of amino groups to scFv lym-1 antibody for chelator conjugation with minimizing loss of immunoreactivity.


Subject(s)
Humans , Antibodies , Blotting, Western , Chromatography , Clone Cells , Flow Cytometry , Fluorescein-5-isothiocyanate , Fluorescence , Hand , Lymphoma , Lysine , Molecular Weight , Sprains and Strains
2.
Nuclear Medicine and Molecular Imaging ; : 211-217, 2006.
Article in Korean | WPRIM | ID: wpr-191181

ABSTRACT

PURPOSE: Recombinant ScFv lym-1 was produced, using pET vector system for large scale production. METHODS: ScFv lym-1 gene inserted pET-22b (+) vector, was expressed in E.coli BL-21 strain. ScFv lym-1 antibody extracted from periplasm, was purified with His-Taq column. To evaluated immunoreactivity with Raji cell, ScFv lym-1 was labeled with I-125 and I-125 ScFv lym-1 was purified with desalting column. Raji cell was injected into the C57BR/cdJ SCID mice. Gamma camera imaging were taken time point at 1, 8, 24, and 48 hr with 8 mm pinhole collimator. RESULTS: An active scFv lym-1 could be produced in E.coli with soluble from using pET vector system. Immunoreactivity and affinity constant of IgG lym-1 were 54% and 1.83 x 10(9) M(-1), respectively, and those of scFv lym-1 were 53.7% and 1.46 x 10(9) M(-1), respectively. Biodistribution of I-125 scFv lym-1 antibody showed faster clearance in blood, spleen, kidney and than I-125 IgG lym-1 antibody. Gamma camera image of I-125 scFv lym-1 antibody showed faster clearance and tumor targeting liver than I-125 IgG lym-1 antibody. CONCLUSIONS: In vitro properties of scFv lym-1 were similar to those of IgG lym-1. ScFv lym-1 showed faster blood clearance than IgG lym-1. These results suggest that scFv lym-1 antibody can be useful for tumor imaging agent.


Subject(s)
Animals , Mice , Gamma Cameras , Immunoglobulin G , Kidney , Liver , Lymphoma , Mice, SCID , Periplasm , Radionuclide Imaging , Spleen
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