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Biomedical subjects

J Savory

Publications and source records attributed to J Savory.

At least 73 records · Page 4Linked to original sources

Aluminum metabolism in rats: effects of vitamin D, dihydrotachysterol, 1,25-dihydroxyvitamin D and phosphate binders.

In order to study the effects of vitamin D on aluminium balance when different forms of vitamin D and phosphate binders are used simultaneously for therapeutic purposes, 30 Sprague-Dawley weanling rats, weighing 44-66 g, were randomly assigned to 5 groups: (A) control, (B) aluminum hydroxide, (C) dihydrotachysterol at 16 micrograms/kg/day, (D) 1,25-dihydroxyvitamin D at 16 ng/kg/day and (E) vitamin D at 2,000 IU/kg/day. Aluminum hydroxide (60 mg/kg/day) in the feed was provided to all except the control group. The vitamin D or metabolites were fed by stomach tube daily for a period of 10 days. At the end of the study, the mean (+/- SEM) serum aluminum concentration, as determined by flameless atomic absorption spectrophotometry, was 5.0 +/- 2.4 micrograms/l; there were no significant differences in these results between groups. During the last three days of the study, 24-hour urine and stool collections were made with the usual precautions against trace mineral contamination. The means (+/- SEM) of aluminum balances for groups A, B, C, D and E were -388 +/- 261, 1,121 +/- 331; 2,316 +/- 304; 2,387 +/- 245, and 1,968 +/- 337 micrograms/day, respectively. We conclude that at therapeutic doses of aluminum hydroxide and vitamin D or its metabolites, hyperaluminemia was not observed. However, the positive aluminum balances imply retention, and the use of vitamin D, especially its potent metabolites dihydrotachysterol and 1,25-dihydroxyvitamin D, intensified this risk.

Aluminum↗

Robotics in the clinical laboratory.

We are beginning to see the potential of robotics in the clinical laboratory through integration with automated analyzers and computer systems. However, there is a need for training programs that will prepare technologists to design and implement robotic systems for clinical laboratories. What will the robot laboratory of the future look like? We will see hospital laboratories begin to be located some distance away from the main facility because the labor component of staffing satellite laboratories will have been greatly reduced. Instrument manufacturers will see the need for analyzers that are robot-friendly and allow for simplified interfacing, both electronic and mechanical. Robots will become more versatile even to the point of performing complete instrument repair. Laboratories will be equipped with many task-oriented robotic stations, including, for example, accessioning and processing robots that prepare samples for transport by robotic carts. Analysis will be performed by a combination of robot and dedicated analyzer. Laboratory results will be reviewed by algorithms in the larger laboratory computer, which will alert the laboratory worker to unusual results. A large variety of analyses will be available to the patient with rapid turnaround. The end result will be more efficient health care delivery at reduced cost.

Computer Communication Networks↗

Measurement of cholesterol in serum by gas chromatography/mass spectrometry at moderate mass resolution, with a nonendogenous cholesterol isomer as internal standard.

We describe a gas chromatography/mass spectrometry method for the quantitative analysis of cholesterol in serum. A structural isomer of cholesterol, 7,(5 alpha)-cholesten-3 beta-ol, is used as an internal standard, its primary advantage being its lesser cost relative to that of a stable-isotope-labeled analog. Analysis of the National Bureau of Standards Certified Reference Serum (SRM 909) was used to validate the method. The results show this method to be highly accurate (bias = -0.6%) and precise (CV = 1.6% between-run, 1.2% within-run). The performance of this method is, therefore, sufficiently good to allow its use as a reference method for determinations of cholesterol in serum.

Cholesterol↗

Lithium determined in serum with an ion-selective electrode.

We evaluated the performance of the lithium ion-selective electrode (ISE) in the Du Pont Na/K/Li analyzer. Lithium concentrations in 106 serum samples from patients being treated with lithium were measured in duplicate with the ISE and by flame photometry. The slope of the regression line for the two methods was 1.004 with a standard error of the estimate of 0.049 mmol/L (x = flame photometry, y = ISE). Lithium measurements by the ISE method in serum or aqueous standards were linear to greater than 2.0 mmol/L. Within-run CVs for low (0.31 mmol/L) and high (1.15 mmol/L) lithium controls were 5.9% and 1.7%, respectively (n = 20). Day-to-day CVs for the same controls were 9.8% and 3.3%, respectively (n = 20). There was no significant interference when the concentrations of sodium, potassium, calcium, or magnesium were varied, nor did intervening urinary lithium analyses affect the measurement of serum lithium. Results for lithium measurement in four serum-based survey materials compared well with results by isotope dilution/mass spectrometry.

Electrodes↗

Limitation of deuterium labelled methoximes as internal standards in the mass spectral analysis of prostaglandins.

A reported method for the preparation of d3-methoxime derivatives as internal standards for prostaglandin assays by gas chromatography-mass spectrometry was evaluated. Sample derivatization resulted in 1.5-86% exchange of the d3-methoxime in a series of prostaglandins. Exchange was minimal when the methoxime was on the 5-membered ring; whereas, acyclic methoximes exhibited extensive exchange. Induced strain energy due to the steric interaction of the hydroxyl group and the C13-C20 alkyl side chain with the gem-dimethoxylamine transition state is offered as an explanation for the unusual stability of PGE2. The use of 18O exchange of the carboxylic acid function is presented as an alternative for the preparation of unavailable labelled eicosanoids.

Deuterium↗

Comparison of radioactive (32P and 35S) and biotinylated probes for detection of cytomegalovirus DNA.

Cytomegalovirus (CMV) DNA was detected in a dot-blot assay by hybridization to a DNA probe labeled with radioisotopes (32P or 35S) or biotin. Limits of detection were established for both the radioisotopically labeled DNA probes as well as the biotin-labeled probe. Hybridization of the radioisotopically labeled probes was detected by autoradiography and liquid scintillation while the biotin-labeled probe was detected after coupling to one of three enzymes (e.g., horseradish peroxidase, alkaline phosphatase, or acid phosphatase). In addition, several different substrates were evaluated with the nonisotopic detection enzymes. Detection limits (and times for detection) were 1 pg (4 h) for 32P, approximately 1 pg (96 h) for 35S, 5 pg (1-3 h) for the phosphatases, and 25-50 pg for peroxidase. Thus, 32P-labeled probes appear to provide the best sensitivity whereas the avidin-linked phosphatases provide the best sensitivity among the nonisotopic detection systems.

Autoradiography↗

Aluminum deposition in the central nervous system. Preferential accumulation in the hippocampus in weanling rats.

Simultaneous administration of 1,25-dihydroxyvitamin-D3, citrate, and aluminum-containing phosphate binders is frequently used in patients with chronic renal failure. In order to investigate whether citrate may represent a risk factor of aluminum intoxication, 16 Sprague-Dawley weanling rats were randomly assigned to four groups: 1,25-dihydroxyvitamin-D3 at 16 ng/kg/day was given to all groups except the control; in addition, two groups received either aluminum hydroxide at 160 mg elemental aluminum/kg/day, or aluminum citrate at 160 mg elemental aluminum/kg/day, respectively. The control group received only the vehicle. Extremely high aluminum concentrations were detected in the hippocampus of rats receiving aluminum compounds. This content of aluminum (microgram/g dry weight) was far higher than that found in other brain areas of the same animals (146.40 +/- 51.23 versus 4.49 +/- 0.62, P less than 0.001) as well as that detected in the hippocampus of the control animals (2.73 +/- 0.40). Thus, in non-uremic, weanling rats supplemented with 1,25-dihydroxyvitamin-D3, the administration of aluminum favors selective accumulation in the hippocampus. No differences between aluminum hydroxide and aluminum citrate administration were observed.

Aluminum↗

Transferrin binding of Al3+ and Fe3+.

An understanding of Al3+-induced diseases requires identification of the blood carrier of Al3+ to the tissues where Al3+ exerts a toxic action. Quantitative studies demonstrate that the protein transferrin (iron-free) is the strongest Al3+ binder in blood plasma. Under plasma conditions of pH 7.4 and [HCO3-]27 mmol/L, the successive stability constant values for Al3+ binding to transferrin are log K1 = 12.9 and log K2 = 12.3. When the concentration of total Al3+ in plasma is 1 mumol/L, the free Al3+ concentration permitted by transferrin is 10(-14.6) mol/L, less than that allowed by insoluble Al(OH)3, by Al(OH)2H2PO4, or by complexing with citrate. Thus transferrin is the ultimate carrier of Al3+ in the blood. We also used intensity changes produced by metal ion binding to determine the stability constants for Fe3+ binding to transferrin: log K1 = 22.7 and log K2 = 22.1. These constants agree closely with a revision of the reported values obtained by equilibrium dialysis. By comparison with Fe3+ binding, the Al3+ stability constants are weaker than expected; this suggests that the significantly smaller Al3+ ions cannot coordinate to all the transferrin donor atoms available to Fe3+.

Aluminum↗

Trace metals and degenerative diseases of the skeleton.

Aluminum related osteodystrophy is the most important manifestation of trace metal toxicity related to degenerative diseases of the skeleton. Aluminum overload occurs in chronic renal failure patients on hemodialysis treatment and results from transfer from dialysis solutions and from oral intake of aluminum containing phosphate binding gels. Laboratory diagnosis involves serum and bone analysis and bone staining for aluminum. A challenge test with desferrioxamine also aids in the diagnosis. Electrothermal atomic absorption spectrometry is widely used for aluminum detection. Guidelines for toxic concentrations of aluminum have been established.

Aluminum↗

Absorption of aluminum from aceglutamide aluminum in healthy adult males.

The absorption of aluminum was studied in twelve healthy male volunteers over a period of fourteen days in a placebo-controlled, double blind study. All subjects were institutionalized during the study. Eight subjects (treated group) received ascending doses of aceglutamide aluminum (N-acetyl-L-glutamine aluminum complex) administered in multiple daily doses. The remaining four subjects (untreated group) received placebo. Systemic absorption and excretion of aluminum were evaluated by measuring aluminum concentrations in serum, urine and fecal samples. Aluminum concentrations were determined by electrothermal atomic absorption spectrometry. All serum aluminum concentrations were less than 16 micrograms/L for both groups. The mean urinary and fecal aluminum concentrations in the aluminum-treated group were significantly higher than in the untreated group during the study days the drug was administered. The total amount of aluminum (as aceglutamide aluminum) given to each treated subject during the 14 day study period as 3290 mg. The mean total fecal aluminum concentration was 3318 mg for the treated group and 269 mg for the untreated group during the study period. These findings are consistent with the view that some aluminum absorption from the gastrointestinal tract occurred following the administration of the drug. The absorbed aluminum appears to have been rapidly excreted in the urine and the feces.

Adolescent↗

Methods for the estimation of serum magnesium in clinical laboratories.

A variety of methods have been reported for the quantitative analysis of magnesium in serum and other biological fluids. The methods may be classified into the following groups: magnesium ammonium phosphate; 8-hydroxyquinoline; titan yellow; dihydroxyazobenzene using fluorimetry; Schwarzenbach ethylenediaminetetraacetic acid; atomic emission spectrophotometry; atomic absorption spectrophotometry; ion chromatography, and carboxanilide, calmagite and related dye methods. These methods are reviewed with specific emphasis on the limitations for their use in clinical laboratories.

Azo Compounds↗

Serum and lymphocyte, aluminum and nickel in chronic renal failure.

In the past decade, aluminum has been recognized as a toxic metal in patients with chronic renal failure. It is, however, possible that other trace metals, such as nickel, may also have toxic actions in these patients. The plasma concentration of a metal, such as aluminum or nickel, may not provide a valid index of either tissue content or total body burden. In the study reported here, the aluminum and nickel content of lymphocytes was measured and compared with plasma concentrations in normal controls and patients with chronic renal failure. The findings suggest that lymphocytes may be of value as a nucleated 'tissue' for the assessment of trace metal status.

Adult↗