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High performance liquid chromatographic determination of clavulanic acid in human urine.

An ion pair reversed phase HPLC method for the determination of clavulanic acid has been developed. Since clavulanic acid had poor absorption (lambda max 201 nm in water) in a UV-region suitable for HPLC detection, the detectability was enhanced by bathochromic shift of lambda max due to solvent effect. The shifts of lambda max were measured with the solutions containing clavulanic acid, tetrabutylammonium bromide, and phosphate buffer salts in aqueous methanol. The magnitudes of the observed shifts were investigated with respect to pH, ionic strength, methanol content, and TBAB concentration. The results indicated that TBAB concentration was the predominant factor responsible for the bathochromic shifts. Taking account of the results together with solvent effects on the retention of clavulanic acid on hydrophobic stationary phase, HPLC condition suitable for detection and separation of clavulanic acid in urine was established as follows; mobile phase: 10 mM TBAB + 0.6 mM NaH2PO4 + 0.4 mM Na2HPO4 in H2O - MeOH, 10:1 (v/v)(pH 7.02), flow rate: 1.5 ml/minute, stationary phase: LiChrosorb RP-18 (25 cm x 4.6 mm i.d.), detection: UV 220 nm. The applicability of the present method is demonstrated by determining the time course of urinary excretion of clavulanic acid after oral administration of a conjugated tablet of clavulanic acid and amoxicillin to human subject.

Anti-Bacterial Agents↗

Activity of amoxycillin-clavulanic acid against Legionella pneumophila in vitro and in an experimental respiratory infection model.

Amoxycillin and clavulanic acid show good activity against Legionella pneumophila in vitro, and synergy has been observed between the two agents. However, in tissue culture studies, amoxycillin was inactive against intracellular legionellae, whereas clavulanic acid and amoxycillin plus clavulanic acid were as effective as erythromycin in preventing bacterial growth. These latter findings were reflected in the results of therapy of a L. pneumophila pneumonia in the neutropenic rat. Amoxycillin was ineffective in reducing bacterial counts in the lungs of infected animals, but clavulanic acid and amoxycillin-clavulanic acid produced bactericidal effects similar to those of erythromycin. The data illustrate the bactericidal activity of amoxycillin-clavulanic acid and clavulanic acid against intracellular L. pneumophila in contrast to the lack of activity of amoxycillin.

Amoxicillin↗

Penetration to peripheral human lymph of clavulanic acid and ticarcillin.

An intravenous dose of 3.0 g ticarcillin and 0.2 g clavulanic acid was given to 11 healthy human volunteers in whom peripheral lymph, serum and urine were monitored for 8 h. The concentrations were assayed microbiologically. The mean levels in lymph collected during the period 0-1 h was 39.3 mg/l of ticarcillin and 2.93 mg/l of clavulanic acid. The mean peak concentration in lymph (appearing between 1.25 and 2.25 h) was 66.3 mg/l for ticarcillin and 4.1 mg/l for clavulanic acid. Elimination was slightly slower from lymph than from serum, the half-life being only 1.04 times longer from lymph than from serum for ticarcillin, but 1.22 times longer for clavulanic acid. The total areas under the concentration curves in lymph was 58% of the serum value of ticarcillin and 81.0% of clavulanic acid. This reflects the ability of the substances to penetrate to lymph. The mean 8-h urinary recovery was 63.7% of the dose of ticarcillin and 43.8% of clavulanic acid. The total body clearances were 14.61/h for ticarcillin and 7.91/h for clavulanic acid and the corresponding d beta distribution volumes 12.21 and 19.11. The ratio of the concentrations of ticarcillin to clavulanic acid in all body fluids increased with time. Pharmacokinetically, clavulanic acid is well suited to be given together with ticarcillin.

Adult↗

A meta-analysis of the use of amoxycillin-clavulanic acid in surgical prophylaxis.

The efficacy of amoxycillin-clavulanic acid as antibiotic prophylaxis in surgery has been assessed in numerous clinical studies, chiefly in abdominal and gynaecological surgery. A meta-analysis of 21 trials covering 2685 patients given amoxycillin-clavulanic acid and 2220 patients given comparator regimens is presented. Monotherapy with amoxycillin-clavulanic acid was as effective as the comparators, including combination regimens utilizing gentamicin or metronidazole, in preventing wound infections (median wound infection rates were 6% and 10% respectively). The antibacterial activity of amoxycillin-clavulanic acid covers the broad range of aerobic Gram-negative and anaerobic organisms that have a major role in postoperative infections. In addition, amoxycillin-clavulanic acid may have benefits in terms of convenience, tolerance and cost.

Abdomen↗

Simultaneous production and decomposition of clavulanic acid during Streptomyces clavuligerus cultivations.

Clavulanic acid (CA) was produced by Streptomyces clavuligerus in medium containing glycerol and soy meal or soy meal extract. With regard to growth and CA productivity, the microorganism showed significant differences if solid soy meal as such or its extract were applied as the major nitrogen source. If the extract is used, growth and CA production take place simultaneously and in the stationary phase the CA concentration is stagnant or reduces. If soy meal is used, growth is threefold faster and CA is only generated in the stationary phase. In the case of using the soy meal extract, the decrease of the CA concentration is mainly due to decomposition or re-metabolisation of CA in the presence of the microorganism. This conclusion is supported by in vivo and in vitro data on CA decomposition.

Anti-Bacterial Agents↗

Bioavailability and pharmacokinetics of clavulanic acid in healthy subjects.

The bioavailability and pharmacokinetics of clavulanic acid were studied following oral solution and rapid intravenous administration to healthy volunteers. Plasma and urine samples were collected at frequent intervals following dose administration and were assayed for clavulanic acid by an enzyme inhibition method. Plasma data after intravenous administration were subjected to pharmacokinetic analysis using a two-compartment open model. The mean absolute bioavailability of clavulanic acid from oral solution was 0.75, derived from both urine and plasma data. No changes in the disposition pharmacokinetics of clavulanic acid with route were found, with a mean renal clearance of 0.1051 X min-1 and mean terminal elimination rate constant of 0.0134 min-1.

Administration, Oral↗

X-ray structure of the Asn276Asp variant of the Escherichia coli TEM-1 beta-lactamase: direct observation of electrostatic modulation in resistance to inactivation by clavulanic acid.

The clinical use of beta-lactam antibiotics combined with beta-lactamase inactivators, such as clavulanate, has resulted in selection of beta-lactamases that are insensitive to inactivation by these molecules. Therefore, therapeutic combinations of an enzyme inactivator and a penicillin are harmless for bacteria harboring such an enzyme. The TEM beta-lactamase variants are the most frequently encountered enzymes of this type, and presently, 20 variants are designated as inhibitor-resistant TEM ("IRT") enzymes. Three mutations appear to account for the phenotype of the majority of IRT enzymes, one of them being the Asn276Asp substitution. In this study, we have characterized the kinetic properties of the inhibition process of the wild-type TEM-1 beta-lactamase and of its Asn276Asp variant with the three clinically used inactivators, clavulanic acid (clavulanate), sulbactam, and tazobactam, and we report the X-ray structure for the mutant variant at 2.3 A resolution. The changes in kinetic parameters for the interactions of the inhibitors with the wild-type and the mutant enzymes were more pronounced for clavulanate, and relatively inconsequential for sulbactam and tazobactam. The structure of the Asn276Asp mutant enzyme revealed a significant movement of Asp276 and the formation of a salt bridge of its side chain with the guanidinium group of Arg244, the counterion of the inhibitor carboxylate. A water molecule critical for the inactivation chemistry by clavulanate, which is observed in the wild-type enzyme structure, is not present in the crystal structure of the mutant variant. Such structural changes favor the turnover process over the inactivation chemistry for clavulanate, with profound phenotypic consequences. The report herein represents the best studied example of inhibitor-resistant beta-lactamases.

Asparagine↗

Pharmacokinetics of the combination of ticarcillin with clavulanic acid in renal insufficiency.

The pharmacokinetics of ticarcillin and clavulanic acid were studied by blood and urine assay methods in 25 patients divided into five groups with varying degrees of renal insufficiency i.e. mild, moderate and severe renal insufficiency, almost anuric patients and those requiring haemodialysis (groups A to E). A single dose of 5.2 g Timentin (5.0 g ticarcillin and 200 mg clavulanic acid) was administered intravenously by infusion over 30 min. The average elimination half-life (T1/2) of ticarcillin increased from 0.95 h in patients with creatinine clearance (Clcr) of 80 ml/min to 1.8, 4.4, 6.9 and 11.2 h respectively in mild, moderate and severe renal insufficiency and in almost anuric patients. The T1/2 values for clavulanic acid were 0.75, 0.9, 2.0, 2.5 and 4.8 h in the same groups. The area under concentration-time curve (AUC) for ticarcillin increased from 787 to 2839 mg/l/h and for clavulanic acid from 12.8 to 29 mg/l/h when group mean values from patients with mild and severe renal insufficiency were compared. The plasma clearance (Clpl) of clavulanic acid was in all groups greater than that of ticarcillin i.e. 166 and 100 ml/min vs. 79.2 and 25.0 ml/min when comparing mean values from groups with mild and severe renal insufficiency respectively. The plasma clearance ratio clavulanic acid/ticarcillin increased proportionally to the degree of renal insufficiency from a value of 1.5 in normal subjects to between 3.3 and 3.8 in more advanced cases.(ABSTRACT TRUNCATED AT 250 WORDS)

Acute Kidney Injury↗

Distribution of amoxicillin and clavulanic acid in infected animals and efficacy against experimental infections.

The therapeutic effects produced by formulations of amoxicillin plus clavulanic acid (BRL 25 000A and BRL 25 000G) were compared with those of amoxicillin and clavulanic acid separately against a variety of infections produced by amoxicillin-susceptible and beta-lactamase-producing (amoxicillin-resistant) bacteria. The infection models studied included intraperitoneal infections, a mouse pneumonia, experimental pyelonephritis, and local lesions caused by Staphylococcus aureus and Bacteroides fragilis. The distribution of amoxicillin and clavulanic acid in infected animals after the administration of amoxicillin-clavulanic acid was evaluated by measurement of the concentrations of the substances present in specimens collected at the sites of infection. The results showed that both amoxicillin and clavulanic acid were well distributed in the animal body after the administration of amoxicillin-clavulanic acid formulations, being present in significant concentrations at various sites of infection, e.g., peritoneal washings, pleural fluid, pus, and infected tissue homogenates. In a number of cases, the amoxicillin concentrations measured after the administration of BRL 25000 were higher than those found after treatment with amoxicillin alone, presumably as a result of inhibition of bacterial beta-lactamases by clavulanic acid at the site of infection. The ability of clavulanic acid to protect amoxicillin in vivo was confirmed by the efficacy of amoxicillin-clavulanic acid formulations in the treatment of the infections studied, most of which were refractory to therapy with amoxicillin.

Amoxicillin↗

Penetration of amoxycillin, ticarcillin and clavulanic acid into lymph after intravenous infusion in rabbits to simulate human serum pharmacokinetics.

The distribution of amoxycillin, ticarcillin and clavulanic acid into lymph collected from the right lymphatic duct of rabbits was examined after intravenous administration. The compounds were administered to simulate, in the plasma of rabbits, the concentrations of amoxycillin, ticarcillin and clavulanic acid measured in human serum after the administration of either an iv bolus dose of amoxycillin 1.0 g plus clavulanic acid 200 mg, ticarcillin 3.0 g plus clavulanic acid 200 mg, or an iv infusion of amoxycillin 2.0 g plus clavulanic acid 200 mg or ticarcillin 3.0 g plus clavulanic acid 200 mg given over 30 min. Lymph concentrations of the compounds reached a peak rapidly after the simulation of a bolus dose (0-1 h) and the concentration-versus-time profiles in plasma and lymph were generally similar after 45 min. Following simulation of an iv infusion, peak concentrations of amoxycillin and clavulanic acid in lymph were reached at approximately the same time as for the bolus simulation, but that of ticarcillin occurred slightly later. The elimination half-lives of the compounds were similar in plasma and lymph. The percentage penetration values were high (greater than 80%) irrespective of the concentration-versus-time curve simulated. The penetration of clavulanic acid was compatible with that of the coadministered penicillin agent and was similar when given with either amoxycillin or ticarcillin.

Amoxicillin↗

Rational strain improvement for enhanced clavulanic acid production by genetic engineering of the glycolytic pathway in Streptomyces clavuligerus.

Clavulanic acid is a potent beta-lactamase inhibitor used to combat resistance to penicillin and cephalosporin antibiotics. There is a demand for high-yielding fermentation strains for industrial production of this valuable product. Clavulanic acid biosynthesis is initiated by the condensation of L-arginine and D-glyceraldehyde-3-phosphate (G3P). To overcome the limited G3P pool and improve clavulanic acid production, we genetically engineered the glycolytic pathway in Streptomyces clavuligerus. Two genes (gap1 and gap2) whose protein products are distinct glyceraldehyde-3-phosphate dehydrogenases (GAPDHs) were inactivated in S. clavuligerus by targeted gene disruption. A doubled production of clavulanic acid was consistently obtained when gap1 was disrupted, and reversed by complementation. Addition of arginine to the cultured mutant further improved clavulanic acid production giving a greater than 2-fold increase over wild type, suggesting that arginine became limiting for biosynthesis. This is the first reported application of genetic engineering to channel precursor flux to improve clavulanic acid production.

Clavulanic Acid↗

Clavulanic acid, a novel inhibitor of beta-lactamases.

Clavulanic acid, Z-(2R,5R)-3-(beta-hydroxyethylidene)-7-oxo-4-oxa-1-azabicyclo-[3,2,0] heptane-2-carboxylic acid, has been shown to be an effective inhibitor of the beta-lactamases of the Richmond types II, III, IV, and V. Inhibition is a time-dependent reaction and is irreversible. Clavulanic acid had poor antibacterial activity against Staphylococcus aureus, Enterobacteriaceae, and Pseudomonas aeruginosa, with minimal inhibitory levels greater than 25 mug/ml. It did inhibit the majority of Neisseria gonorrhoeae at 0.1 mug/ml and Haemophilus influenzae at 6.3 mug/ml. Clavulanic acid acted synergistically with penicillins and cephalosporins to inhibit beta-lactamase-producing S. aureus and Enterobacteriaceae. Clavulanic acid combined with ampicillin inhibited beta-lactamase-producing N. gonorrhoeae, H. influenzae, Escherichia coli, Salmonella typhi, and Shigella sonnei.

Ampicillin↗

Comparative in vitro and in vivo activities of piperacillin combined with the beta-lactamase inhibitors tazobactam, clavulanic acid, and sulbactam.

Tazobactam (YTR-830H), a novel beta-lactamase inhibitor, was compared with clavulanic acid and sulbactam for enhancement of the activity of piperacillin against beta-lactamase-producing, piperacillin-resistant clinical isolates. Piperacillin MICs were determined in media containing a fixed concentration of 2 or 4 micrograms of the inhibitors per ml. The higher concentration was generally more effective. Tazobactam was superior to sulbactam in enhancing the spectrum and potency of piperacillin. Although the calvulanic acid combination was more potent, tazobactam was effective for a similar spectrum of resistant gram-negative clinical isolates containing beta-lactamase. MICs were reduced to the susceptible range for Escherichia coli, Klebsiella pneumoniae, Proteus spp., Salmonella spp., and Shigella spp. Combinations with tazobactam and sulbactam, but not clavulanic acid, were effective against Morganella spp. Some antagonism of the activity of piperacillin was observed with clavulanic acid but not with tazobactam or sulbactam. The inhibitors were similarly effective with piperacillin against beta-lactamase-positive Staphylococcus spp. and the Bacteroides fragilis group. Piperacillin-tazobactam was more effective against a broader spectrum of gram-negative enteric bacteria than ticarcillin plus clavulanic acid was. Combinations with tazobactam or clavulanic acid had a broader spectrum of activity than combinations with sulbactam against bacteria that produce characterized plasmid-mediated enzymes of clinical significance. In particular, piperacillin with tazobactam or clavulanic acid, but not with sulbactam, inhibited TEM-1, TEM-2, and SHV-1 enzymes. In vitro activity was reflected in vivo. Tazobactam and clavulanic acid were superior to sulbactam in enhancing the therapeutic efficacy of piperacillin in mice infected with beta-lactamase-positive E. coli, K. pneumoniae, Proteus mirabilis, and Staphylococcus aureus. Only combinations with tazobactam and sulbactam were effective against the Morganella infection. Tazobactam has a good potential for enhancing the clinical efficacy of piperacillin.

Animals↗

Evaluation in an animal model and in vitro of the combination clavulanic acid and cephalosporins against beta-lactamase producing and nonproducing Staphylococcus aureus strains.

Beta-lactamase enzymes are the most common cause of bacterial resistance to Beta-lactam antibiotics. They hydrolyze the amide bound in the Beta-lactam ring and produce acidic derivatives that have no antibacterial properties. The aim of this study was to evaluate a combination of clavulanic acid with cephalosporins against Beta-lactamase-producing and nonproducing strains of Staphylococcus aureus using in vitro tests and a rat animal model. In vitro tests (MIC) of the drug combination were done using standard methods. In an animal model, rats were submitted to surgical implantation of polyurethane sponges in their backs to induce granulomatous tissue. After seven days, the animals received cephalexin, cephalexin with clavulanic acid, ceftriaxone, ceftriaxone with clavulanic acid or clavulanic acid alone. One hour after the drug administration, granulomatous tissue was removed and placed in Petri dishes previously inoculated with 10(8) cfu of producing or non-producing Beta-lactamase Staphylococcus aureus. After 24h at 37 degrees C, the inhibition zones formed by granulomatous tissue was measured and scored for statistical analysis. Both tests (ex vivo ¿animal model¿ and in vitro) showed that the cephalexin was more active than ceftriaxone against non-producing Beta-lactamase S.aureus (p<0.01). Against Beta-lactamase producing S.aureus, ceftriaxone was more active than cephalexin, which was inactive. Combinations of clavulanic acid with cephalexin or ceftriaxone had similar antimicrobial activity against non-producing Beta-lactamase S.aureus compared to the cephalosporins used alone. When tested using Beta-lactamase producing strains, the combination of clavulanic acid with cephalosporins showed synergism. We conclude that the combination of cephalosporins with clavulanic acid could be useful in staphylococcal infections caused by Beta-lactamase producing strains.

Animals↗

Comparison of concentrations of two doses of clavulanic acid (200 and 400 milligrams) administered with amoxicillin (2,000 milligrams) in tissues of patients undergoing colorectal surgery.

The concentrations of clavulanic acid and amoxicillin were determined in sera and different abdominal tissues of 17 patients who underwent elective colorectal surgery. Patients were randomly allocated to two groups. At the time of induction of anesthesia, patients in group 1 were given 200 mg of clavulanic acid with 2,000 mg of amoxicillin and patients in group 2 received 400 mg of clavulanic acid with 2,000 mg of amoxicillin. In both groups, the initial dose was administered again after 2 h. Blood samples were collected to determine peak and trough antibiotic levels. Serial blood samples were also collected at predetermined periods (opening and closure of the abdominal cavity and surgical anastomosis). Abdominal wall fat, epiploic fat, and colonic wall tissue samples were collected simultaneously. Antibiotic concentrations were determined by high-performance liquid chromatography. Increasing the dose of clavulanic acid to 400 mg resulted in significantly higher peak and trough levels in serum (P < 0.03). Following the injection of 400 mg, mean concentrations of clavulanic acid in the fatty tissues were significantly increased at the time of opening (P < 0.02). The concentrations of clavulanic acid and amoxicillin in fatty tissues were 17 to 52% and 12 to 23% of the levels in sera, respectively. In the colonic wall, the concentrations of clavulanic acid and amoxicillin were 52 to 63% and 49 and 27% of the levels in sera, respectively. In sera, clavulanic acid given at a dose of 200 or 400 mg reached or exceeded the concentrations found to be effective in vitro to reduce the MICs of amoxicillin from the resistant to the susceptible category for 90% of the potential pathogens. In most of the tissues investigated, increased the dose of clavulanic acid to 400 mg resulted in a significantly higher number of samples with concentrations found to be effective in vitro (72 versus 11%; P < 0.05). In conclusion, increasing the dose of clavulanic acid to 400 mg resulted in higher levels in sera and improved penetration into the abdominal tissues in patients undergoing colorectal surgery.

Adipose Tissue↗

[In vitro study of the effects of a ticarcillin-clavulanic acid combination on Pseudomonas aeruginosa as a function of resistant phenotypes].

Activity of ticarcillin combined with clavulanic acid against 203 P. aeruginosa strains was studied. 159 strains produced a constitutive beta-lactamase with resistance to ticarcillin (MIC less than 128 mg/l) as a result. Minimal inhibitory concentrations (MICs) were determined using the agar dilution method for ticarcillin alone and combined with 4 and 8 mg/l clavulanic acid. Addition of clavulanic acid failed to change the activity of ticarcillin on ticarcillin-susceptible stains and on strains producing a constitutive cephalosporinase. A synergic effect was demonstrated for PSE and TEM type beta-lactamase producers and for OXA type beta-lactamase producers (4 halving dilutions and 1 to 2 halving dilutions respectively). However, because of the levels of baseline MICs, the combination brought the MIC of ticarcillin below the cutoff level for a small percentage of PSE strains (6%), moderate percentage of OXA strains (17 to 50%) and significant percentage of TEM strains. These percentages were slightly higher with 8 mg than 4 mg clavulanic acid. Given current data on the prevalence of the various beta-lactamases among resistant strains now being isolated in France, the ticarcillin + clavulanic acid combination will enable to achieve an MIC less than 128 mg/l for 11% (with 4 mg) or 16% (with 8 mg) of resistant strains.

Clavulanic Acid↗

Risk factors for the development of amoxycillin-clavulanic acid associated jaundice.

OBJECTIVES: To identify risk factors for the development of amoxycillin-clavulanic acid associated jaundice. DESIGN: Retrospective case-control study. Cases were selected from those reported to the Adverse Drug Reactions Advisory Committee from the time of introduction of amoxycillin-clavulanic acid to Australia in 1986 until December 1993. SUBJECTS: Thirty-four cases, defined as individuals who developed jaundice within eight weeks of starting amoxycillin-clavulanic acid, with a biochemical picture of cholestasis, normal calibre bile ducts and no other recognised causes of jaundice or recent use of other hepatotoxic drugs, were selected. For each case, four controls who had been prescribed amoxycillin-clavulanic acid without developing jaundice were randomly selected from the patient register of the prescribing doctor. RESULTS: Increasing age was a risk factor for amoxycillin-clavulanic acid associated jaundice; patients over 55 years had an odds ratio of 16.1 (95% confidence interval [CI], 2.9-88.9) compared with patients less than 30 years. Men had an odds ratio of 2.5 (95% CI, 1.1-5.4) compared with women, although the proportion of men in the study group was larger than in the reported cases overall. History of serious medical illness, drug dose, route and duration of therapy, other medications, smoking and previous drug allergies or use of amoxycillin-clavulanic acid were not significantly associated with jaundice. CONCLUSIONS: Because of the higher risk of jaundice with increasing age, the risk-benefit ratio of amoxycillin-clavulanic acid should be carefully considered in older patients. Further assessment is necessary to clarify the association between jaundice and male sex.

Adult↗

Enzymes catalyzing the early steps of clavulanic acid biosynthesis are encoded by two sets of paralogous genes in Streptomyces clavuligerus.

Genes encoding the proteins required for clavulanic acid biosynthesis and for cephamycin biosynthesis are grouped into a "supercluster" in Streptomyces clavuligerus. Nine open reading frames (ORFs) associated with clavulanic acid biosynthesis were located in a 15-kb segment of the supercluster, including six ORFs encoding known biosynthetic enzymes or regulatory proteins, two ORFs that have been reported previously but whose involvement in clavulanic acid biosynthesis is unclear, and one ORF not previously reported. Evidence for the involvement of these ORFs in clavulanic acid production was obtained by generating mutants and showing that all were defective for clavulanic acid production when grown on starch asparagine medium. However, when five of the nine mutants, including mutants defective in known clavulanic acid biosynthetic enzymes, were grown in a soy-based medium, clavulanic acid-producing ability was restored. This ability to produce clavulanic acid when seemingly essential biosynthetic enzymes have been mutated suggests that paralogous genes encoding functionally equivalent proteins exist for each of the five genes but that these paralogues are expressed only in the soy-based medium. The five genes that have paralogues encode proteins involved in the early steps of the pathway common to the biosynthesis of both clavulanic acid and the other clavam metabolites produced by this organism. No evidence was seen for paralogues of the four remaining genes involved in late, clavulanic acid-specific steps in the pathway.

Biological Assay↗