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Biomedical subjects

G Vaidyanathan

Publications and source records attributed to G Vaidyanathan.

At least 37 records · Page 2Linked to original sources

Meta-[131I]iodobenzylguanidine uptake and meta-[211At]astatobenzylguanidine treatment in human medulloblastoma cell lines.

Uptake of radioiodinated meta-iodobenzylguanidine (MIBG) has been demonstrated in the neural crest tumors, including neuroblastoma, pheochromocytoma, and carcinoid tumors, and is presently in use diagnostically and therapeutically in these settings. Cells comprising medulloblastoma, the most common central nervous system malignancy in childhood, may be derived from a common germinal neuroepithelial cell as neural crest tissue, and as a result, also may have the capacity for accumulating MIBG. To investigate this hypothesis, we measured the in vitro binding of [131I]MIBG to 9 medulloblastoma-derived cell lines and the SK-N-SH neuroblastoma line known to accumulate MIBG. Seven of the medulloblastoma lines exhibited MIBG binding. The cell line with the greatest uptake, D384 Med, bound 11.2 +/- 0.9% of added [131I]MIBG activity compared with 47.1 +/- 2.3% for the SK-N-SH cell line. When 2 of the cell lines, D384 Med and D458 Med, were treated with the alpha-particle emitting analogue meta-[211At]astatobenzylguanidine ([211At]MABG), as much as a 3-log cell kill was observed in limiting dilution clonogenic assays. Exposure to considerably higher activity levels of [211At]astatide was required to achieve a similar degree of cell kill, suggesting that this cytotoxicity was not related to nonspecific effects of alpha-particle irradiation. We conclude that the uptake capacity of medulloblastoma cell lines for [131I]MIBG uptake in vitro, while lower than that seen in SK-N-SH neuroblastoma cells, is sufficient to permit [211At]MABG to be used with significant therapeutic effectiveness.

3-Iodobenzylguanidine↗

Enhanced tumour uptake and in vitro radiotoxicity of no-carrier-added [131I]meta-iodobenzylguanidine: implications for the targeted radiotherapy of neuroblastoma.

In vitro and in vivo neuroblastoma models were used to determine whether improvements in tumour targeting in vivo and therapeutic efficacy in vitro could result from the use of no-carrier-added (n.c.a.) [131I]MIBG. Results were compared with use of the conventional therapy MIBG preparation (ex. [131I]MIBG) of lower specific activity which is produced by iodide exchange reaction. The efficacy of n.c.a. [131I]MIBG was compared with that of [131I]MIBG over a range of specific activities by the assessment of neuroblastoma spheroid growth delay. Whereas n.c.a. [131I]MIBG at a radioactivity concentration of 2 MBq/ml prevented the regrowth of 84% of spheroids, toxicity was significantly reduced by the addition of non-radiolabelled MIBG to the incubation medium. The time-dependent biodistribution of n.c.a. [131I]MIBG in nude mice bearing human neuroblastoma xenografts was compared with that of the conventional therapy radiopharmaceutical. The n.c.a. agent gave improved tumour uptake but also significantly greater accumulation in normal tissues known to accumulate MIBG such as heart, adrenal and skin. However, uptake and retention in the blood was unaltered. For all tissues examined, the 3-day calculations were undertaken to predict organ to tumour dose ratios which would result in human neuroblastoma patients with each of the [131I]MIBG preparations. These results suggest that significant therapeutic gain may be achieved by the use of n.c.a. [131I]MIBG as a treatment agent in neuroblastoma. neuroblastoma.

3-Iodobenzylguanidine↗

Quantitation of 211At in small volumes for evaluation of targeted radiotherapy in animal models.

We have evaluated SPECT and two planar imaging methods, geometric mean (GM) and buildup factor (BF), for their potential to quantitate in vivo 211At distributions in rat spinal subarachnoid spaces using phantom studies. The use of medium-energy collimators and the small diameter (3 mm) of the subarachnoid space complicate quantitation. Net activities from distributions in various backgrounds were obtained using a large region of interest with background subtraction. Results showed quantitation accuracy within 10% for SPECT and BF in low backgrounds increasing to 25% at higher background levels while GM errors ranged from 20 to 45%. We have also obtained images of [211At]astatide distributions, administered intrathecally, in rats.

Animals↗

No-carrier-added meta-[123I]iodobenzylguanidine: synthesis and preliminary evaluation.

No-carrier-added [123I]MIBG was prepared from 3-(trimethylsilyl)benzylguanidine in 80-90% yield. Binding of this tracer to SK-N-SH human neuroblastoma cells maintained a constant level of > 50% over 2-3 log activity range. In comparison, the binding of [123I]MIBG prepared by isotopic exchange steadily decreased with dose. Biodistribution studies in normal mice demonstrated maximal concentrations in heart and adrenals for both preparations. In heart, significant 1.5-3.0 times higher levels (P < 0.05) were seen for the no-carrier-added preparation. Radiation dosimetry calculations suggest that the no-carrier-added preparation would increase the dose received by several tissues, most notably the heart where a 91% increase in dose is predicted.

3-Iodobenzylguanidine↗

Uptake mechanisms of meta-[123I]iodobenzylguanidine in isolated rat heart.

In order to clarify the uptake and retention mechanisms of radioiodinated meta-iodobenzylguanidine (MIBG) in heart, the kinetics of no-carrier-added [123I]MIBG were studied in the isolated working rat heart in interaction with pharmacologic agents. The tracer was administered in the perfusate as a 10-min pulse, followed by a 90-min washout period. Kinetic analysis of the externally monitored time-activity curves of control hearts showed avid uptake (Ki = 4.4 +/- 0.7 mL/min/g), and monoexponential clearance (ko = 0.0056 +/- 0.0017 l/min), indicating a distribution volume (Vd = Ki/ko) of 834 +/- 214 mL/g. Blocking experiments (n = 41) were performed with neuronal uptake (uptake-1) inhibitor desipramine (DMI; 50-100 nM) and the extraneuronal uptake (uptake-2) inhibitor N-(9-fluorenyl)-N-methyl-beta-chloroethylamine (SKF550; 0.4-0.8 microM). Uptake rate was 27% reduced (P < 0.05) by 50 nM DMI but not significantly affected by 0.4 microM SKF550. Distribution volume was 88% reduced (P < 0.0005) by 50 nM DMI and 28% reduced (P < 0.05) by 0.4 microM SKF550. In DMI-blocked hearts, uptake rate was dramatically decreased (-80%, P < 0.0005) by SKF550 (0.4 microM), indicating uptake-2 transport contributed predominantly to the extraneuronal uptake of the tracer. The slow uptake rate seen with concomitant inhibition of uptake-1 and uptake-2 was further decreased by addition of unlabeled MIBG (1-10 microM) in a concentration-dependent manner, yet unaffected by addition of the vesicular uptake inhibitor Ro 4-1284 (1 microM). Thus, the uptake rate of [123I]MIBG is primarily dependent on uptake-1 and uptake-2 activity. Other possible mechanisms of uptake such as passive diffusion in association with intracellular binding are significant only in conditions where uptake-1 and uptake-2 mechanisms are largely inhibited.

3-Iodobenzylguanidine↗

Fluorine-18 labeled chemotactic peptides: a potential approach for the PET imaging of bacterial infection.

A potent chemotactic peptide, formyl-norleucyl-leucyl-phenylalanyl-norleucyl-tyrosyl-lysine was derivatized by reaction with N-succinimidyl 4-fluorobenzoate. This derivatized peptide bound to human polymorphonuclear leukocytes in vitro and exhibited biological activity in a superoxide production assay. Peptide labeling using N-succinimidyl 4-[18F]fluorobenzoate was accomplished in reasonable yields with 10-15 mCi of labeled peptide available per 100 Ci of [18F]fluoride. With the exception of the gastrointestinal tract, clearance of activity from tissues following injection of this peptide in normal mice was rapid. Although preliminary in nature, these results suggest that 18F-labeled chemotactic peptides should be investigated as potential agents for positron emission tomographic imaging of bacterial infections.

Amino Acid Sequence↗

Validation of 4-[fluorine-18]fluoro-3-iodobenzylguanidine as a positron-emitting analog of MIBG.

UNLABELLED: This study evaluates the potential utility of 4-[18F]fluoro-3-iodobenzylguanidine ([18F]FIBG) as an MIBG analog. METHODS: In vitro assays of tracer binding were carried out using the SK-N-SH human neuroblastoma cell line in a paired-label format to compare [18F]FIBG directly with no-carrier-added [125I]MIBG. To ascertain whether [18F]FIBG, like MIBG, is taken up by the uptake-1 mechanism, the effects of desipramine, norepinephrine, and carrier MIBG and FIBG on cell binding were determined. Preincubation with ouabain and incubation at 4 degrees C was used to evaluate the energy-dependence of [18F]FIBG uptake by SK-N-SH cells. The tissue distribution of [18F]FIBG in mice was compared with no-carrier-added [125I]MIBG in a paired-label study. RESULTS: In paired-label binding studies, the percent binding of [18F]FIBG to neuroblastoma cells remained constant over a three-log activity range and the level was somewhat higher than that of no-carrier-added [125I]MIBG. Binding was blocked by desipramine, norepinephrine, carrier MIBG and FIBG, ouabain and by incubating at 4 degrees C, suggesting that [18F]FIBG is taken up by the uptake-1 mechanism. Radiation dosimetry calculations suggest that higher doses of [18F]FIBG, unlike [124I]MIBG, could be administered to patients. CONCLUSION: These in vitro and in vivo evaluations show that [18F]FIBG is an excellent analog of MIBG, suggesting that [18F]FIBG should be further evaluated for use in PET imaging of neuroendocrine tumors and cardiac abnormalities.

3-Iodobenzylguanidine↗

Cytotoxicity of alpha-particle-emitting m-[211At]astatobenzylguanidine on human neuroblastoma cells.

Radioiodinated m-iodobenzylguanidine (MIBG) has been used with only limited success for the treatment of neural crest tumors including neuroblastoma. Use of an MIBG analogue labeled with 211At could be advantageous because of the shorter range and higher linear energy transfer of its alpha-particle emissions compared with the beta-particles emitted by 131I. The potential utility of m-[211At]astatobenzylguanidine for the treatment of neuroblastoma was investigated in vitro using 3 human neuroblastoma cell lines known to take up MIBG [SK-N-SH, SK-N-BE(2C), and SK-SY5Y] and a control line lacking MIBG uptake (SK-N-MC). Maximum binding of m-[211At]astatobenzylguanidine ([211At] MABG) to 5 x 10(5) cells after a 2-h incubation ranged from 61% for SK-N-SH to 1% for SK-N-MC. Using a limiting dilution clonogenic assay, the cytotoxicity for SK-N-SH cells of [211At]MABG was compared with [211At]astatide and no-carrier-added [131I]MIBG. A D0 of 5.8 nCi/ml was calculated for [211At]MABG compared with 482 nCi/ml for [211At] astatide, indicating a more than 80-fold enhanced cytotoxicity for the specifically targeted alpha-particles of [211At]MABG. For [211At]MABG, the D0 corresponded to only 6.4 211At atoms bound/cell compared with 9000 atoms/cell for no-carrier-added [131I]MIBG. The D0 values measured for [211At]MABG treatment of SK-SY5Y, SK-N-BE(2C), and SK-N-MC cells were 50, 5.8, and 11,043 nCi/ml, respectively, corresponding to 7.04, 6.46, and 171.79 211At atoms bound/cell. In conclusion, these results have demonstrated that [211At]MABG is considerably more cytotoxic than [131I]MIBG and that [211At]MABG could have great potential as a radiotherapeutic agent for the treatment of neuroblastoma.

Antineoplastic Agents↗

(4-[18F]fluoro-3-iodobenzyl)guanidine, a potential MIBG analogue for positron emission tomography.

The aims of this investigation were to develop a no-carrier-added (nca) synthesis of (4-[18F]-fluoro-3-iodobenzyl)guanidine ([18F]FIBG) and to evaluate its potential as an MIBG analogue useful for positron emission tomography. [18F]FIBG was prepared in four steps starting from 4-cyano-2-iodo-N,N,N-trimethylanilinium trifluoromethanesulfonate in 5% decay-corrected radiochemical yield in a total synthesis time of 130 min. The specific activity was more than 1500 Ci per mmol. In vitro binding studies showed that the percent binding of [18F]FIBG to SK-N-SH human neuroblastoma cells remained constant over a 3-log activity range and was similar to that of nca [131I]MIBG. Specific and high uptake of FIBG was also seen in mouse heart and adrenals. The in vitro and in vivo properties of [18F]FIBG suggest that this compound may be a useful positron-emitting analogue of MIBG.

3-Iodobenzylguanidine↗

Meta-[211At]astatobenzylguanidine: further evaluation of a potential therapeutic agent.

Meta-[211At]astatobenzylguanidine ([211At]MABG) is an astatinated analogue of meta-iodobenzylguanidine (MIBG) that could be of value for therapeutic applications. The initial goal of this study was to determine whether [211At]MABG is taken up, like MIBG, by a specific uptake-I mechanism. Norepinephrine and desipramine (DMI) decreased [211At]MABG uptake in SK-N-SH human neuroblastoma cells. This uptake was found to be energy-dependent: In mice, pre-treatment with DMI reduced uptake of [211At]MABG at 1 hr post-injection in the adrenal and in the heart. Tetrabenazine at a dose of 40 mg/kg reduced uptake of [211At]MABG in the mouse heart in vivo (69% of control) whereas up to 100 microM of tetrabenazine did not affect the in vitro uptake of [211At]MABG in SK-N-SH cells. In SK-N-SH cells, 53% and 38%, respectively, of the initial uptake of [211At]MABG was retained at 4 hr and 6 hr. For no-carrier-added (n.c.a.) [131I]MIBG these values were similar, 60% and 48%. The ability of SK-N-SH cells to incorporate [3H]thymidine was reduced to less than 50% of control values when treated with as little as 3.2 nCi of [211At]MABG. In contrast, no significant reduction in the thymidine uptake was observed, even with 80 nCi of n.c.a. MIBG.

3-Iodobenzylguanidine↗

Preparation and screening of an arrayed human genomic library generated with the P1 cloning system.

We describe here the construction and initial characterization of a 3-fold coverage genomic library of the human haploid genome that was prepared using the bacteriophage P1 cloning system. The cloned DNA inserts were produced by size fractionation of a Sau3AI partial digest of high molecular weight genomic DNA isolated from primary cells of human foreskin fibroblasts. The inserts were cloned into the pAd10sacBII vector and packaged in vitro into P1 phage. These were used to generate recombinant bacterial clones, each of which was picked robotically from an agar plate into a well of a 96-well microtiter dish, grown overnight, and stored at -70 degrees C. The resulting library, designated DMPC-HFF#1 series A, consists of approximately 130,000-140,000 recombinant clones that were stored in 1500 microtiter dishes. To screen the library, clones were combined in a pooling strategy and specific loci were identified by PCR analysis. On average, the library contains two or three different clones for each locus screened. To date we have identified a total of 17 clones containing the hypoxanthine-guanine phosphoribosyltransferase, human serum albumin-human alpha-fetoprotein, p53, cyclooxygenase I, human apurinic endonuclease, beta-polymerase, and DNA ligase I genes. The cloned inserts average 80 kb in size and range from 70 to 95 kb, with one 49-kb insert and one 62-kb insert.

Bacteriophage P1↗

Preclinical evaluation and PET imaging of 18F-labeled Mel-14 F(ab')2 fragment in normal dogs.

The F(ab')2 fragment of monoclonal antibody Mel-14, reactive with human melanomas and gliomas, was labeled with 18F using two acylation agents, N-succinimidyl 8-[(4'-[18F]fluorobenzyl)amino]suberate (SFBS) and N-succinimidyl 4-[18F]fluorobenzoate (SFB). The immunoreactivity and affinity for Mel-14 F(ab')2 labeled using the two methods were similar. As a prelude to human clinical evaluation, PET imaging, tissue distribution and pharmacokinetic measurements were performed in two groups of normal foxhounds. Similar in vivo behavior was seen for Mel-14 F(ab')2 labeled using SFBS and SFB. Radiation dosimetry calculations suggest that a 10 mCi dose could be used for this F(ab')2 fragment labeled using either acylation agent.

Animals↗

Monoclonal antibody F(ab')2 fragment labeled with N-succinimidyl 2,4-dimethoxy-3-halobenzoates: in vivo comparison of iodinated and astatinated fragments.

N-Succinimidyl 3-[211At]astato-2, 4-dimethoxybenzoate (SADMB) was prepared from a trialkylstannyl precursor in about 70-75% yield. With either trimethyl or tri-n-butylstannyl precursor, no temporal effect was found in the astatodestannylation yield. However, the methyl analog gave slightly better yield which was found to be not statistically significant. A monoclonal antibody (MAb) fragment, Mel-14 F(ab')2, could be labeled using SADMB in 28% coupling efficiency. The specific binding of this labeled fragment to tumor homogenates in vitro was 61.0 +/- 0.5% (62.8 +/- 0.9% for the 131I labeled fragment). Paired-label tissue distribution in normal mice showed similar uptake of 131I and 211 At in many tissues. However, by 14.5 h selectivity of spleen, lungs and stomach for Mel-14 F(ab')2 labeled with 211At compared to 131I was 4.1, 3.8 and 6.4, respectively.

Animals↗

Carrier-free 131I-meta-iodobenzylguanidine: comparison of production from meta-diazobenzylguanidine and from meta-trimethylsilylbenzylguanidine.

Meta-iodobenzylguanidine (MIBG) is a drug which is selectively accumulated by the uptake-1 process in adrenergic tissues. When labelled with 131I, it may be used for the targetted radiotherapy of tumours such as phaeochromocytoma and neuroblastoma. This paper describes the preparation of carrier-free 131I-MIBG by radioiodination of meta-diazobenzylguanidine, and compares this process with one involving iododesilylation of meta-trimethylsilylbenzylguanidine. Both processes result in the formation of carrier-free 131I-MIBG whose specific activity at greater than 3 x 10(16) Bq mol-1 is at least 100 times higher than that of commercially available 131I-MIBG for therapeutic use. The therapeutic use of 131I-MIBG with a higher than usual specific activity is predicted to result in a greater target-to-nontarget ratio, and therefore enhanced efficacy because of an increased therapeutic index. As the radiochemical yield of the process involving the metadiazobenzylguanidine intermediate is only 13%, compared with 98% for the iododesilylation reaction, the latter is the preferred synthetic route.

3-Iodobenzylguanidine↗

No-carrier-added synthesis of meta-[131I]iodobenzylguanidine.

No-carrier-added meta-[131I]iodobenzylguanidine ([131I]MIBG) was prepared starting with two different metallated precursors. Attempted preparation of 3-(tri-n-butylstannyl)benzylguanidine was not successful. An alternate two-step strategy using 3-(tri-n-butylstannyl)benzylamine could be used to prepare radio-iodinated [131I]MIBG in an overall radiochemical yield of 30-33%. Synthesis of [131I]MIBG via the radioiododesilylation of 3-trimethylsilylbenzylguanidine was also investigated. Yields were dependent on temperature, precursor concentration, solvent and nature of the oxidant. Radiochemical yields of 90% were obtained in 5 min at room temperature using either N-chlorosuccinimide or hydrogen peroxide in trifluoroacetic acid as oxidants. The percentage of specific binding in vitro of no-carrier-added MIBG to SK-N-SH neuroblastoma cells remained constant over a 2 log activity range, while the binding of MIBG prepared by isotopic exchange dropped by a factor of seven. In normal mice, heart and adrenal uptake of no-carrier-added [131I]MIBG was found to be higher than that of [131I]MIBG prepared by isotopic exchange.

3-Iodobenzylguanidine↗

Measuring astatine-211 distributions with SPECT.

We have investigated standard SPECT techniques (rotating gamma cameras, multi-hole collimators, and filtered backprojection reconstruction) for imaging astatine-211 distributions. Since 211At emits alpha particles, this nuclide has potential for use in radiotherapy. The capability of imaging this nuclide would allow in vivo evaluation of the distribution and stability of potential 211At-labelled radiotherapeutic agents. 211At decay yields x-rays in the 77-92 keV range in addition to 500-900 keV gamma rays. This study evaluates the feasibility of SPECT imaging using the x-ray emissions of 211At. We have evaluated several collimators, with the determination that the medium-energy collimators we used are suitable, with 7% penetration (uncollimated counts versus collimated counts). Several phantoms were imaged and attenuation coefficients were measured (narrow-beam mu = 0.182 cm-1 for 77-80 keV x-rays in water). Reconstructed images demonstrate qualitative capabilities and a simple quantitative study demonstrates good correction for attenuation and scatter (approximately 10% error), at low count densities, at least for the phantom geometries used in this study.

Astatine↗

Labeling proteins with fluorine-18 using N-succinimidyl 4-[18F]fluorobenzoate.

Two methods were investigated for the no-carrier-added synthesis of N-succinimidyl 4-[18F]fluorobenzoate (S[18F]FB). The first, an attempted nucleophilic aromatic substitution by [18F]fluoride on N-succinimidyl 4-nitrobenzoate was unsuccessful. The second method involved three steps; [18F]fluoride for trimethylammonium substitution on 4-formyl-N,N,N-trimethylanilinium triflate, oxidation to 4-[18F]fluorobenzoic acid, followed by reaction with N-hydroxysuccinimide and dicyclohexylcarbodiimide to form S[18F]FB. Total synthesis and purification time was 100 min and the overall radiochemical yield was 25% (decay corrected). A monoclonal antibody F(ab')2 fragment could be labeled in 40-60% yield by reaction with S[18F]FB for 15-20 min. The tissue distribution in normal mice and in vitro tumor binding of the antibody F(ab')2 labeled by reaction with S[18F]FB were comparable to those observed for the fragment after radioiodination using N-succinimidyl 4-[125I]iodobenzoate.

Animals↗