PubMed HealthSearch

Biomedical subjects

S Marstein

Publications and source records attributed to S Marstein.

16 recordsLinked to original sources

Single-dose pharmacokinetics of lomefloxacin in patients with normal and impaired renal function.

The quinolone antibiotic lomefloxacin was administered as a 400 mg single oral dose to 12 subjects with renal impairment (creatinine clearance 5-65 mL/min/1.73 m2) and to 13 healthy subjects (creatinine clearance 80-135 mL/min/1.73 m2). The concentrations of lomefloxacin in plasma and urine were determined by high-pressure liquid chromatography up to 48 hours post-administration. Linear correlations were found between lomefloxacin plasma and renal clearances and creatinine clearance. The mean nonrenal clearance of lomefloxacin (approximately 32 mL/min/1.72 m2) was not influenced by renal function. The mean plasma clearances of lomefloxacin in healthy subjects and in a subgroup of patients with severe renal impairment (creatinine clearance 5-15 mL/min/1.73 m2) were 209 and 43 mL/min/1.73 m2, respectively. The decrease in plasma clearance of lomefloxacin was explained fully by the decrease in renal clearance. The elimination half-life of lomefloxacin increased significantly with the degree of renal impairment, from 7.5 hours in normal subjects to 26.9 hours in subjects with severe renal impairment. The maximum serum concentration and the time to maximum serum concentration were not significantly affected by renal function. The pharmacokinetics of lomefloxacin are dependent on renal function, and appropriate dosage adjustment is necessary when creatinine clearance is less than 30 mL/min/1.73 m2.

Adult

Automated method for the determination of angiotensin-converting enzyme in serum.

A method for the determination of angiotensin-converting enzyme in serum (S-ACE; EC 3.4.15.1.) with use of 3-(2-furylacryloyl)-L-phenylalanyl-glycyl-glycine (FAPGG) as substrate has been adapted for the Cobas Bio microcentrifugal analyser. The method allows 24 determinations per hour in a sample volume of 28 microliters with a within run precision of less than 3% and a between run precision of less than 5%. The reaction is linear up to at least 470 U/l. The reference interval in 92 blood donors has been determined to 14-110 U/l. The method correlates well with the manual method of Hurst & Lovell-Smith (r = 0.982). We have found the method excellently suited for routine assay.

Centrifugation

Smoking during pregnancy--effects on the fetal thyroid function.

Infants delivered at term by mothers smoking at least 10 cigarettes daily during pregnancy (n = 46) were found to be growth retarded compared to infants of non-smoking mothers (n = 49), birthweights 3,445 +/- 385 (SD) g and 3,667 +/- 392 g respectively (p less than 0.05) in the two groups. Cord serum thyrotropin (TSH) was significantly decreased (8.2 +/- 4.0 U/l vs. 10.3 +/- 4.9 U/l) and free thyroxine index (FT4I)/TSH ratio significantly increased (18.8 +/- 9.0 vs. 14.4 +/- 7.6) (p less than 0.05) in the smoking group compared to infants of non-smokers. Cord serum thyroxine (T4) and FT4I were higher in the smoking group (149.0 +/- 22.4 nmol/l and 125.5 +/- 14.9 respectively) compared to infants of non-smoking mothers (140.6 +/- 21.6 nmol/l and 120.0 +/- 16.5 respectively), with borderline statistical significance (0.05 less than p less than 0.10). The results indicate that infants of smoking mothers may have a hyperfunction of the thyroid gland at birth compared to infants of non-smokers, with a negative feed-back on TSH production from the pituitary gland. Increased metabolic rate and oxygen consumption caused by fetal thyroid hyperfunction may be pathogenetic factors for the fetal growth retardation caused by maternal smoking.

Female

Studies of amino acid content and transport in glutathione-deficient erythrocytes from a patient with pyroglutamic acidemia (5-oxoprolinemia).

Repeated biochemical studies of the erythrocytes of a patient with pyroglutamic acidemia have shown a varying biochemical disorder in these cells. Whereas earlier studies demonstrated absence of glutathione and massive amino acid loading in erythrocytes, these cells later contained small but readily measurable amounts of glutathione and had a relatively normal amino acid content. The marked increase in amino acids after acid hydrolysis of erythrocytes had also disappeared. Transport studies showed a significant increase in the active transport of glycine, while the transport of other amino acids was comparable to that of normal cells. We are unable to detect any activity of gamma-glutamyl transpeptidase in human erythrocytes. Our observations suggest a role for glutathione in the transport of amino acids by erythrocytes, but at present no definite conclusion can be drawn with regard to the participation of the gamma-glutamyl cycle in this process. The biochemical variability in our patient's erythrocytes is unexplained and should be searched for in other patients with pyroglutamic acidemia.

Amino Acids

Studies on the accumulation of L-pyroglutamic acid in guinea pig epidermis.

The activities and properties of the enzymes involved in the formation and degradation of pyroglutamic acid (2-pyrrolidone-5-carboxylic acid, 5-oxoproline) in guinea pig epidermis have been studied. The enzyme pattern was characterized by an extremely high activity of gamma-glutamyl cyclotransferase. The epidermal extracts possessed a measurable, but rather low activity of pyroglutamate hydrolase. It is suggested that the only major pathway by which pyroglutamate may be formed in epidermal tissue is from L-glutamate by a 2-step reaction, the first involving the formation of a gamma-glutamyl peptide by the action of gamma-glutamyl-cysteine synthetase, and the second cyclization of the gamma-glutamyl moiety by the action of gamma-glutamyl cyclotransferase. Abundant substrate supply, the extremely high cyclotransferase activity and the rather low capacity to degrade pyroglutamate may be the factors responsible for the accumulation of this compound in epidermal tissue. A relatively low content of reduced glutathione may also be a contributing factor.

Animals