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Biomedical subjects

J J Himberg

Publications and source records attributed to J J Himberg.

At least 19 recordsLinked to original sources

Assessment of the state-of-the-art trueness and precision of serum total-calcium and glucose measurements in Finnish laboratories--the QSL-Finland study.

The purpose of the QSL-Finland study was to assess the state-of-the-art trueness and precision of serum total-calcium and glucose measurements in Finnish clinical laboratories. For this purpose, 21 hospitals and clinical institutes were selected. They measured six single donation sera, the total-calcium (t-calcium) and glucose content of which had been determined by ion chromatography and isotope dilution-gas chromatography-mass spectrometry (ID-GC-MS) reference methods. The results were interpreted in light of specifications for imprecision, bias and total error of routine methods that have been proposed in the past. The data revealed that the performance of t-calcium and glucose methods is generally acceptable in Finnish clinical laboratories. This study did not lead to a separation of laboratories according to accreditation. In consequence, it seems that accreditation, in its present form, cannot substitute dedicated quality assurance practices.

Blood Glucose↗

Increased kidney xanthine oxidoreductase activity in salt-induced experimental hypertension.

Clinical and experimental studies have established an association between high sodium intake and arterial hypertension. The renal mechanisms resulting in impaired sodium excretion in hypertension-prone subjects are not clear. In hypertension-prone rats, high blood pressure results in increased renal mass and hemodynamic changes, both of which may alter renal oxygen distribution. Xanthine oxidoreductase (XOR) oxidizes ATP metabolites hypoxanthine and xanthine to urate. Because XOR is induced by hypoxia, we assessed kidney XOR activity in 2 models of salt-sensitive hypertension, spontaneously hypertensive rats (SHR) and Dahl salt-sensitive (Dahl S) rats. Increasing sodium intake from basal (0.08%) to high (2.56% wt/dry wt in the diet) increased renal XOR activity dose-dependently from 68+/-8 to 143+/-21 microU/mg protein in the Dahl S (P<0.05) but not in Dahl salt-resistant (Dahl R) rats. On basal and high sodium diets, SHR had higher renal XOR activity (101+/-10 and 134+/-26 microU/mg protein, respectively) than normotensive Wistar-Kyoto rats (55+/-2 and 58+/-6 microU/mg protein, P<0.05). Sodium restriction (0.02% wt/wt) downregulated kidney XOR activity in both Dahl S and R rats by nearly 40%. In SHR, allopurinol treatment totally inhibited renal XOR activity, but neither systolic blood pressure nor renal mass changed. The results suggest that renal XOR induction is a consequence of increased salt intake or the resulting hypertension. However, further studies on renal XOR activity during the development of hypertension are needed to assess the importance of XOR in the pathophysiology of arterial hypertension.

Allopurinol↗

Lamotrigine therapy in infantile neuronal ceroid lipofuscinosis (INCL).

Since 1990, altogether 16 INCL patients received lamotrigine (LTG) because of intractable epilepsy. The response to LTG was favorable in 15/16 children. The severity of seizures decreased significantly in 15/16 patients, the frequency of seizures decreased in 14/16, and the effects were maintained. In addition, LTG had a beneficial effect on the well-being of 14/16 children. LTG failed to maintain it's efficacy in monotherapy. No severe side effects were found.

Adolescent↗

The effect of simvastatin treatment on natural antioxidants in low-density lipoproteins and high-energy phosphates and ubiquinone in skeletal muscle.

It has been hypothesized that treating hypercholesterolemic patients with statins will lead not only to a reduction in cholesterol, but also to inhibited synthesis of other compounds which derive from the synthetic pathway of cholesterol. In theory, this could further lead to ubiquinone deficiency in muscle cell mitochondria, disturbing normal cellular respiration and causing adverse effects such as rhabdomyolysis. Furthermore, ubiquinone is one of the lipophilic antioxidants in low-density lipoprotein (LDL), and therefore it has also been hypothesized that statin treatment will reduce the antioxidant capacity of LDL. We investigated the effect of 6 months of simvastatin treatment (20 mg/day) on skeletal muscle concentrations of high-energy phosphates and ubiquinone by performing biopsies in 19 hypercholesterolemic patients. Parallel assays were performed in untreated control subjects. The muscle high-energy phosphate and ubiquinone concentrations assayed after simvastatin treatment were similar to those observed at baseline and did not differ from the values obtained in control subjects at the beginning and end of follow-up. These results do not support the hypothesis of diminished isoprenoid synthesis or energy generation in muscle cells during simvastatin treatment. Furthermore, the results of analysis of antioxidant concentrations in LDL before and after simvastatin treatment indicate that the antioxidant capacity of LDL is maintained in simvastatin-treated patients.

Adenosine Triphosphate↗

The effects of anabolic androgenic steroids on serum ubiquinone and dolichol levels among steroid abusers.

We measured serum ubiquinone and dolichol concentrations in 13 men while they abused anabolic androgenic steroids (AAS) and during the following withdrawal period. Serum total, high-density lipoprotein (HDL), and low-density lipoprotein (LDL) cholesterol and triglycerides were also determined. AAS administration increased serum ubiquinone by 68% (P < .001) and decreased serum dolichol by 30% (P < .002). Both nonsterol isoprenoid levels in plasma correlated with the AAS dose, ubiquinone positively (P < .001) and dolichol negatively (P < .002). When the subjects were taking steroids, the ubiquinone to LDL ratio was 42% higher than during the withdrawal period. In conclusion, our study suggests that AAS have an influence on the by-products of the mevalonate pathway.

Adult↗

Ubiquinone supplementation and exercise capacity in trained young and older men.

It has been suggested that ubiquinone improves exercise performance and antioxidant capacity. We studied the effects of ubiquinone supplementation (120 mg.day-1 for 6 weeks) on aerobic capacity and lipid peroxidation during exercise in 11 young (aged 22-38 years) and 8 older (aged 60-74 years), trained men. The cross-over study was double-blind and placebo-controlled. Serum ubiquinone concentration increased after supplementation (P < 0.0001 for treatment) in both age groups. The maximal oxygen uptake (VO2max) was measured using a direct incremental ergometer test. In the young subjects, the VO2max after placebo and ubiquinone treatment was 58.5 (95% confidence interval: 53.0-64.0) and 59.0 ml.min-1.kg-1 (52.2-66.8), respectively. The corresponding results in the older subjects were: 37.2 (31.7-42.7) and 33.7 ml.min-1.kg-1 (26.2-41.7) (P < 0.0001 for age group, P > 0.05 for treatment). In a prolonged test (60-min submaximal, then incremental load until exhaustion) time to exhaustion was longer after the placebo [young men: 85.7 (82.4-89.0), older men: 82.9 min (75.8-89.9)] than after ubiquinone [young men: 82.1 (78.5-85.8), older men: 77.2 min (70.1-83.7); P = 0.0003 for treatment]. Neither ubiquinone supplementation nor exercise affected serum malondialdehyde concentration. Oral ubiquinone was ineffective as an ergogenic aid in both the young and older, trained men.

Adult↗

Decreases in serum ubiquinone concentrations do not result in reduced levels in muscle tissue during short-term simvastatin treatment in humans.

Statins, which are commonly used drugs for hypercholesterolemia, inhibit 3-hydroxy-3-methylglutaryl coenzyme A reductase, the rate-limiting enzyme in cholesterol synthesis. Important nonsterol compounds, such as ubiquinone, are also derived from the same synthetic pathway. Therefore it has been hypothesized that statin treatment causes ubiquinone deficiency in muscle cells, which could interfere with cellular respiration causing severe adverse effects. In this study we observed decreased serum levels but an enhancement in muscle tissue ubiquinone levels in patients with hypercholesterolemia after 4 weeks of simvastatin treatment. These results indicate that ubiquinone supply is not reduced during short-term statin treatment in the muscle tissue of subjects in whom myopathy did not develop.

Acyl Coenzyme A↗

Serum and muscle tissue ubiquinone levels in healthy subjects.

Ubiquinone, or coenzyme Q, is a mitochondrial component with antioxidant properties. It has been suggested that ubiquinone therapy may have clinical benefits in some diseases with mitochondrial dysfunction and that the antioxidant effects could be useful, for example, in the prevention of atherosclerosis. Based on this clinical interest, guidelines for the interpretation of ubiquinone analyses are needed. Our results show that serum and muscle ubiquinone levels vary over a wide range in healthy subjects. The serum levels of ubiquinone depend mostly on the amount of ubiquinone-containing lipoproteins in circulation. Physical activity markedly affects muscle tissue levels of ubiquinone. We observed that serum and muscle tissue ubiquinone levels do not correlate with each other, suggesting that they are independently regulated.

Adult↗

Serum ubiquinone concentrations after short- and long-term treatment with HMG-CoA reductase inhibitors.

Serum ubiquinone levels were studied during long- and short-term treatment with 3-hydroxy-3-methyl-glutaryl-coenzyme A reductase inhibitors in 17 men with primary non-familial hypercholesterolaemia. The serum ubiquinone levels were determined after the patients had received simvastatin (20-40 mg per day) for 4.7 years, after a 4 week treatment pause and again after they had resumed treatment with lovastatin (20-40 mg per day) for 12 weeks. During the treatment pause the average serum ubiquinone levels increased by 32%; resumption of treatment caused a reduction of 25%. The changes in the levels of ubiquinone and serum total cholesterol as well as those of ubiquinone and low-density lipoprotein cholesterol were closely parallel. This suggested that changes in serum ubiquinone reflected changes in cholesterol-containing serum lipoproteins which could serve as carrier vehicles for ubiquinone. After long-term simvastatin treatment and after short-term lovastatin treatment, average serum ubiquinone levels (1.16 and 1.22 mg.l-1, respectively) were similar to that observed in a group of apparently healthy middle-aged men (1.16 mg.l-1).

Adult↗

A pharmacokinetic interaction between roxithromycin and midazolam.

The interaction between roxithromycin and midazolam was investigated in a double-blind, randomised crossover study of two phases. Ten healthy volunteers were given roxithromycin (300 mg) or placebo once daily for 6 days. On the sixth day they ingested 15 mg midazolam. Plasma samples were collected and psychomotor performance measured for 17 h. Roxithromycin administration significantly increased the area under the plasma midazolam concentration-time curve from 8.3 to 12.2 micrograms.ml-1.min and the elimination half-lives from 1.7 to 2.2 h. In psychomotor performance only minor differences were seen between the treatments in one of the measured psychomotor parameters. Thus, in contrast to the strong interaction between erythromycin and midazolam, the interaction between roxithromycin and midazolam appears less likely to be clinically significant.

Adult↗

Dose of midazolam should be reduced during diltiazem and verapamil treatments.

1. The effects of diltiazem and verapamil on the pharmacokinetics and pharmacodynamics of midazolam were investigated in a double-blind randomized cross-over study of three phases. 2. Nine healthy volunteers were given orally diltiazem (60 mg), verapamil (80 mg) or placebo three times daily for 2 days. On the second day they received a 15 mg oral dose of midazolam, after which plasma samples were collected and performance tests carried out for 17 h. 3. The area under the midazolam concentration-time curve was increased from 12 +/- 1 microgram ml-1 min to 45 +/- 5 micrograms ml-1 min by diltiazem (P < 0.001) and to 35 +/- 5 micrograms ml-1 min by verapamil (P < 0.001). The peak midazolam concentration was doubled (P < 0.01) and the elimination half-life of midazolam prolonged (P < 0.05) by both diltiazem and verapamil treatments. 4. These changes in the pharmacokinetics of midazolam were also associated with profound and prolonged sedative effects. 5. If the administration of midazolam cannot be avoided, the dose of midazolam should be reduced during concomitant treatment with diltiazem and verapamil.

Administration, Oral↗

Metabolic and subjective responses to oral diazepam and midazolam.

Diazepam premedication decreases the overall metabolic rate and oxygen consumption. Whether its properties are shared by midazolam is not known. In this study, eight healthy male volunteers were given oral diazepam (10 mg), midazolam (15 mg) and placebo in a random double-blind cross-over fashion. Metabolic responses were measured using an indirect calorimetry device. Subjective responses were measured using a visual analogue scale. Plasma concentrations of diazepam, midazolam and desmethyldiazepam were analysed and correlated to changes in metabolic and subjective responses. When compared to placebo, both diazepam and midazolam significantly decreased oxygen consumption (P < 0.01 in pairwise comparisons) and energy expenditure (P < 0.01 in pairwise comparisons). While there was a significant correlation between the plasma concentrations of diazepam and the changes in metabolic parameters, no such correlation was found with midazolam. Both diazepam and midazolam were subjectively more sedative than placebo (P < 0.05). There was no significant difference between the sedative effects of diazepam and midazolam, but diazepam was subjectively better tolerated than midazolam. These results indicate that both diazepam and midazolam, in addition to their CNS effects, significantly decrease the overall metabolic rate and oxygen consumption in healthy volunteers.

Administration, Oral↗

A potentially hazardous interaction between erythromycin and midazolam.

Interaction between erythromycin and midazolam was investigated in two double-blind, randomized, crossover studies. In the first study, 12 healthy volunteers were given 500 mg erythromycin three times a day or placebo for 1 week. On the sixth day, the subjects ingested 15 mg midazolam. In the second study, midazolam (0.05 mg/kg) was given intravenously to six of the same subjects, after similar pretreatments. Plasma samples were collected, and psychomotor performance was measured. Erythromycin increased the area under the midazolam concentration-time curve after oral intake more than four times (p < 0.001) and reduced clearance of intravenously administered midazolam by 54% (p < 0.05). In psychomotor tests (e.g., saccadic eye movements), the interaction between erythromycin and orally administered midazolam was statistically significant (p < 0.05) from 15 minutes to 6 hours. Metabolism of both erythromycin and midazolam by the same cytochrome P450IIIA isozyme may explain the observed pharmacokinetic interaction. Prescription of midazolam for patients receiving erythromycin should be avoided or the dose of midazolam should be reduced by 50% to 75%.

Administration, Oral↗

Lack of association between indices of vitamin B1, B2, and B6 status and exercise-induced blood lactate in young adults.

By means of a 5-week vitamin B-complex supplementation, associations between indices of vitamin B1, B2, and B6 status (activation coefficients [AC] for erythrocyte transketolase, glutathione reductase, and aspartate aminotransferase) and exercise-induced blood lactate concentration were studied. Subjects, 42 physically active college students (18-32 yrs), were randomized into vitamin (n = 22) and placebo (n = 20) groups. Before the supplementation there were no differences in ACs or basal enzyme activities between the groups. The ACs were relatively high, suggesting marginal vitamin status. In the vitamin group, all three ACs were lower (p < 0.0001) after supplementation: transketolase decreased from 1.16 (1.14-1.18) (mean and 95% confidence interval) to 1.08 (1.06-1.10); glutathione reductase decreased from 1.33 (1.28-1.39) to 1.14 (1.11-1.17); and aspartate aminotransferase decreased from 2.04 (1.94-2.14) to 1.73 (1.67-1.80). No changes were found after placebo. Despite improved indices of vitamin status, supplementation did not affect exercise-induced blood lactate concentration. Hence no association was found between ACs and blood lactate. It seems that marginally high ACs do not necessarily predict altered lactate metabolism.

Adolescent↗

Midazolam and flunitrazepam: pharmacokinetics and effects on night time respiration and body movements in the elderly.

In a double-blind crossover study, the pharmacokinetics and effects on night-time respiration and body movements of midazolam 7.5 mg, flunitrazepam 1 mg, and placebo were studied in 5 elderly insomniac patients with the static charge sensitive bed-method (SCSB). In a supine position, the gastrointestinal absorption rate of flunitrazepam (tmax 0.6 h) was faster than that of midazolam (tmax 0.95 h). The elimination phase half-life of midazolam was about twice as long as reported earlier in healthy adult volunteers, but ageing did not affect the elimination of flunitrazepam. The shape of the serum concentration-time curve of both benzodiazepine derivatives was quite similar. The sleep of these five insomniacs became more peaceful and the respiration more regular during midazolam and flunitrazepam, compared with placebo. Both benzodiazepines significantly decreased body movements and the cumulative movement time remained shorter throughout the night, compared with placebo. Total variability (VI) was clearly decreased with flurazepam, and a similar but not statistically significant tendency was seen with midazolam, compared with placebo. Accordingly, the proportion of quiet sleep (QS) increased (p = 0.014) and the proportion of active sleep (AS) decreased (p = 0.019) with both benzodiazepines, compared with placebo. This reflects the changed control of respiration by higher brain structures. No signs of increased respiratory resistance (i.e. ballistocardiographic respiratory amplitude variation BRV < 60%) were seen with either of the drugs or placebo. There were no differences in the subjects' own estimation of their sleep during medication with these drugs. Only the sleep onset latency was shorter with flunitrazepam compared with midazolam and placebo.(ABSTRACT TRUNCATED AT 250 WORDS)

Age Factors↗

Rapid normalization of antipyrine oxidation by heme in variegate porphyria.

Effects of heme on hepatic xenobiotic drug metabolism were investigated in eight subjects with variegate porphyria. A single infusion of heme arginate (3 mg/kg heme) reversed rapidly the prolonged mean elimination half-life of antipyrine from 27.2 to 12.7 hours (p less than 0.001) and increased total clearance from 0.23 to 0.44 ml/min/kg (p less than 0.001). Excretion of 6 beta-hydroxycortisol and D-glucaric acid increased significantly during heme infusion. Excretion of urinary porphyrin precursors increased during the antipyrine test but was normalized by heme. It is concluded that in variegate porphyria a partial block in heme biosynthesis results in subnormal capacity of P450-associated monooxygenases, but this is easily normalized by exogenous heme.

Adult↗