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M Stabin

Publications and source records attributed to M Stabin.

31 records · Page 2Linked to original sources

Whole-body biodistribution, radiation absorbed dose and brain SPECT imaging with iodine-123-beta-CIT in healthy human subjects.

UNLABELLED: SPECT imaging with 123I-labeled methyl 3 beta-(4-iodophenyl)tropane-2 beta-carboxylate ([123I]beta-CIT) in nonhuman primates has shown brain striatal activity, which primarily reflects binding to the dopamine transporter. The biodistribution and calculated radiation-absorbed doses of [123I]beta-CIT administered to eight healthy subjects were measured with attention to the accurate determination of organ time-activity data. METHODS: Whole-body transmission images were obtained with a scanning line source for attenuation correction of the emission images. Following administration of 92.5 +/- 22.2 MBq (2.5 +/- 0.6 mCi) of [123I]beta-CIT, subjects were imaged with a whole-body imager every 30 min for 3 hr, every 60 min for the next 3 hr and at 12, 24 and 48 hr postinjection. Regional body conjugate counts were converted to microcuries of activity, with a calibration factor determined in a separate experiment using a distributed source of 123I. RESULTS: The peak brain uptake represented 14% of the injected dose, with 2% of the activity approximately overlying the striatal region. Highest radiation-absorbed doses were to the lung (0.1 mGy/MBq, 0.38 rads/mCi), liver (0.087 mGy/MBq, 0.32 rads/mCi) and lower large intestine (0.053 mGy/MBq, 0.20 rads/mCi). CONCLUSIONS: Iodine-123-beta-CIT is a promising SPECT agent for imaging of the dopamine transporter in humans with favorable dosimetry and high brain uptake.

Adult↗

Dosimetry of iodine-123 iodobenzamide in healthy volunteers.

The distribution of the dopamine D2-receptor specific ligand iodine-123 (S)-(-)-2-hydroxy-3-iodo-6-methoxy-N[(1-ethyl-2- pyrrolidinyl)methyl]-benzamide (123I-IBZM) was investigated in human adults from whole-body scans, blood samples and urine collected up to 48 h after injection. Results from the present study performed in six healthy volunteers were combined with those of five volunteers from a previous study. Using the brain, liver, lungs and spleen as source organs, the MIRD method was applied to calculate the absorbed radiation dose of the radioligand in various organs. The thyroid (despite blockage), gallbladder wall, large intestinal walls and spleen received the highest absorbed doses. The average effective dose equivalent of 123I-IBZM for adults was estimated to be 0.034 mSv/MBq. The absorbed dose to the thyroid may be a limiting factor for 123I-IBZM studies in children.

Adult↗

Samarium-153-EDTMP biodistribution and dosimetry estimation.

Fifty-two patients were treated with single doses of 153Sm-EDTMP in a Phase I escalating dose protocol for palliation of bone pain from metastatic prostate carcinoma. Samarium-153 (T1/2 46.3 hr), maximum beta-particle energies 810 keV (20%), 710 keV (30%), 640 keV (50%), gamma photon 103 keV (28%), was complexed to the tetraphosphonate chelate, EDTMP. Five groups of patients were treated at doses of 1.0, 1.5, 2.0, 2.5, and 3.0 mCi/kg to evaluate toxicity from treatment. Patients were screened prior to treatment and followed after treatment with 99mTc-MDP bone scans. Biodistribution data on this group of patients were acquired and showed rapid uptake of 153Sm-EDTMP into bone with complete clearance of nonskeletal radiotoxicity by 6-8 hr. Also included are complete sets of dosimetry estimations on an additional seven patients who received 0.5 mCi/kg 153Sm-EDTMP Ca++ as part of a multiple dose therapy trial. Estimated radiation absorbed doses to bone surfaces averaged 25,000 mrad/mCi (6686 Gy/MBq), and urinary bladder doses averaged 3600 mrad/mCi (964 Gy/MBq).

Bone Neoplasms↗

Radiation dosimetry for technetium-99m-MAG3, technetium-99m-DTPA, and iodine-131-OIH based on human biodistribution studies.

Radiation dose estimates were calculated for the renal agents 99mTc-DTPA, 99mTc-MAG3, and 131I-OIH from biodistribution data gathered in groups of healthy human volunteers. Biokinetics were evaluated by Anger camera imaging, blood sampling, and urine collection and counting. Collected data were fit to four- or five-compartmental models using the CONversational Simulation, Analysis, and Modeling (CONSAM) software. Radiation dose estimates were performed using standard MIRD techniques. Average residence times in urinary bladder, kidney, and remainder of the body were used to predict radiation dose equivalents and effective dose equivalents for the three agents. Doses for DTPA and MAG3 were very similar and much lower on a per unit injected activity than OIH. The effective dose equivalents were 3.3 mSv/370 MBq for 99Tc-DTPA, 3.7 mSv/370 MBq for 99mTc-MAG3, and 0.99 mSv/11.1 MBq for 131I-OIH for bladder voiding every 4.8 hr; effective dose equivalents were 2.0 mSv/370 MBq for 99mTc-DTPA, 1.5 mSv/370 MBq for 99mTc-MAG3, and 0.28 mSv/11.1 MBq for 131I-OIH for bladder voiding at 30 min and then every 4.0 hr. Patients should void at the conclusion of the study, as early voiding can reduce the gonadal radiation dose by a factor of 2 to 3.

Humans↗

A list of nuclear medicine radionuclides and potential contaminants for operators of in-vivo counters.

Operators of in-vivo counters often encounter unusual photopeaks, some of which may be attributed to nuclear medicine radiopharmaceuticals recently received by the subject. This article lists the most common radiopharmaceuticals used in nuclear medicine, their common uses, their half-lives and principal decay energies, and the half-lives and decay energies of any contaminants or daughter products they may contain. The purpose is to help the in-vivo counter operator track down and eliminate causes of such unusual photopeaks.

Catalogs as Topic↗

The radiation dosimetry of 99Tcm-exametazime.

The biodistribution of the regional cerebral perfusion imaging agent, 99Tcm-exametazime, has been studied with volunteer subjects at Aberdeen, Homburg, Manchester and Milan. Data from these studies have been pooled and analysed to formulate a kinetic biodistribution model, allowing estimation of time integrals of activity in various body organs. Estimates of radiation dose to humans injected with this material have been made by applying the MIRD formalism to these data. The highest doses occur to the lachrymal glands, gallbladder and kidneys (33, 27 and 18 mSv, respectively, per 500 MBq administered.) The lachrymal glands were visualized in only 6 of the 26 volunteer studies. The effective dose equivalent, for the worst case individual, is 8.3 mSv. In the majority of subjects where there was no uptake in the lachrymal gland, the effective dose equivalent reduces to 6.9 mSv.

Adult↗

An improved tungsten-178/tantalum-178 generator system for high volume clinical applications.

Clinical utilization of the multiwire gamma camera (MWGC) requires low-energy radionuclides. The short-lived (9.3 min) tantalum-178 (178Ta) is ideally suited for the MWGC and can be produced from long-lived (21.7 day) tungsten-178 (178W) by a previously reported 178W/178Ta generator. This generator, however, is limited by sharp increase in breakthrough after elution of only 30-60 column-volumes. To optimize the 178W/178Ta generator for clinical use, varying eluant acid concentrations were evaluated. A reduced (from 0.1 to 0.03N) HCI concentration in the eluant, coupled with low operating temperatures (3 to 5 degrees C) allowed high (40 to 60%) 178Ta yield. Minimal 178W breakthrough (less than .01%) resulted, even after elution of more than 200 column-volumes. Each of six tested generators provided sterile, high activity (up to 100 mCi) 178Ta elutions for more than 30 days. Radiation dosimetry was estimated utilizing both human and animal biodistribution data. The whole body (critical organ) dose in adults and neonates were 1/20 (1/21) and 1/19 (1/50) respectively relative to that of technetium-99m (99mTc) as sodium pertechnetate. The optimized 178W/178Ta generator provides a commercially practical, safe source of low-energy radioisotope for the MWGC with substantial dosimetry advantages over 99mTc.

Animals↗

Radiation absorbed dose estimates for oxygen-15 radiopharmaceuticals (H2(15)O, C15O, O15O) in newborn infants.

In preparation for measurement of regional cerebral oxygen metabolism by positron emission tomography, radiation absorbed dose estimates for 19 internal organs, blood, and total body were calculated for newborn infants following bolus intravenous administration of H2(15)O and brief inhalation of C15O and O15O. Cumulated activity for each radiopharmaceutical was calculated from a compartmental model based on the known biologic behavior of the compound. Values for mean absorbed dose/unit cumulated activity (S) for internal organs and total body were based on a newborn phantom. S was separately calculated for blood. Total radiopharmaceutical absorbed dose estimates necessary to measure cerebral oxygen metabolism in a 3.51-kg infant based on 0.7 mCi/kg H2(15)O and 1 mCi/kg C15O and O15O were determined to be 1.6 rad to the lung (maximum organ dose), 0.28 rad to the marrow, 0.46 rad to the gonads, and 0.22 rad to total body. These values are similar to those for current clinical nuclear medicine procedures employing 99mTc in newborn infants.

Administration, Inhalation↗

Endovascular beta irradiation for prevention of restenosis using solution radioisotopes: pharmacologic and dosimetric properties of rhenium-188 compounds.

PURPOSE: Irradiation of the arterial wall with beta particles has been shown to be effective in inhibiting neointimal hyperplasia following percutaneous transluminal coronary angioplasty (PTCA). In this study, we describe the use of 188W/188Re generators to obtain 188Re (half-life 16.9 h, maximal beta energy of 2.12 MeV) as a new candidate radioisotope for endovascular irradiation. We have evaluated two [188Re]-compounds as candidates for use as solution-based radiation sources that would allow conventional liquid-filled balloon inflation for delivery of radiation to the vessel wall. While balloon rupture at nominal inflation pressures is a very rare event, (<1 per 10,000 at high pressure), radioisotope release could potentially result in significant dose to radiation-sensitive organs. We have thus evaluated the biodistribution, dosimetry, and kinetics of excretion in rats of two 188Re-labeled compounds that are proposed for intravascular therapy. MATERIALS AND METHODS: Rhenium-188 was obtained as [188Re]-sodium perrhenate by saline elution of an alumina-based 188W/188Re generator system (>500 mCi). High specific volume solutions of the [188Re]-sodium perrhenate (>50 mCi/ml) were obtained by post-elution concentration of the generator bolus by passage through a tandem silver cation/anion column system. Rhenium-188-labeled benzoylthioacetyltriglycine (MAG3) was prepared by stannous ion reduction of [188Re]-perrhenate in the presence of the benzyl-MAG3 substrate, and was characterized as a single radioactive component. Rhenium-188-perrhenate and [188Re]-MAG3 were administered to separate groups of Fischer rats, which were sacrificed at various times and the tissue distribution of 88Re determined in the major organs. Excretory products were also collected daily from separate groups of rats for each agent over 7 days. The effects of perchlorate and iodide preblocking and postdisplacement of thyroid uptake of [188Re]-perrhenate were also evaluated. RESULTS: Organ uptake values were modest for both agents [<0.25 % injected dose(ID)/gram of tissue at 6 h] for all organs evaluated except for the thyroid, with the intestines and intestinal contents showing the highest uptake values (0.72-1.97 %ID/gram). Whereas thyroid uptake of 188Re after injection of [188Re]-MAG3 was low (0.16 %ID/gram), uptake after injection of [188Re]-perrhenate was higher and could be blocked by pretreatment with perchlorate (intravenous [IV]) or displaced by perchlorate posttreatment. Also, oral or IV iodide pre- or postadministration could also significantly block or displace thyroid uptake of [188Re]-perrhenate. Both [188Re] agents were excreted primarily via the urinary bladder. The excretion half-life of [188Re]-perrhenate was about 7 h; in contrast, the [188Re]-MAG3 complex showed 50% excretion in less than 2 h. The large intestines received the most significant adsorbed dose, with values of 2.0 cGy/ mCi for [188Re]-perrhenate and 4.6 x 10(-3) cGy/mCi for [188Re]-MAG3. CONCLUSIONS: Rhenium-188-MAG3 shows more rapid urinary bladder excretion in rats than perrhenate and both agents show low organ uptake. Thyroid uptake of free [188Re]-perrhenate can be blocked or displaced with oral perchlorate administration. For the projected use of [188Re]-MAG3 for balloon inflation required for irradiation of the arterial wall, calculated organ dose values are within acceptable limits in the unlikely event of low pressure balloon rupture. Rhenium-188-MAG3 in solution is thus a new candidate for balloon dilation providing uniform endovascular irradiation following PTCA for restenosis therapy.

Angioplasty, Balloon, Coronary↗