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Amdinocillin: a novel penicillin. Antibacterial activity, pharmacology and clinical use.

Amdinocillin is a novel penicillin whose antibacterial activity is derived from its ability to bind specifically and avidly to Penicillin Binding Protein-2 (PBP 2). Other beta-lactams bind almost exclusively to PBPs 1 and 3. This unique feature has prompted many investigators to predict that amdinocillin would aggressively synergize with other antimicrobials, particularly other beta-lactams. Certain features of these predictions have been realized. Amdinocillin is active alone against many gram-negative organisms. Pseudomonas and non-fermenting gram-negative bacteria, however, are usually resistant. Amdinocillin, in combination with many beta-lactams, exhibits marked synergy against many enterobacteriaceae. No such synergy can be demonstrated for gram-positive organisms or pseudomonas species. Amdinocillin is not beta-lactamase stable. Organisms which produce high levels of plasma-mediated beta-lactamase are resistant to the drug. Amdinocillin is widely distributed to most tissues of the body. It is removed by renal tubular secretion which results in prodigious levels of the drug in the urine. Co-administration of probenecid results in markedly elevated plasma levels of amdinocillin and delays its excretion. Amdinocillin has a plasma half-life of about one hour in patients with grossly normal renal function. Its half-life increases to 3 to 6 hours in anephric patients. The spectrum of adverse reactions observed with amdinocillin is similar to that of other penicillins. Amdinocillin, as a single agent, is effective in the treatment of urinary tract infections caused by susceptible strains of E. coli and klebsiella and enterobacter species. When amdinocillin is used in concert with other antimicrobials, synergy can frequently be demonstrated but it is essentially limited to gram-negative aerobic organisms. At present, insufficient data are available to precisely profile the utility of amdinocillin, either alone or in combination, in the treatment of systemic infections.

Amdinocillin

Amdinocillin: use alone or in combination with cefoxitin or carbenicillin-ticarcillin.

One hundred fifty-five patients with 157 febrile episodes were treated with amdinocillin or amdinocillin and cefoxitin as second-line therapy, or amdinocillin and ticarcillin or carbenicillin as initial therapy in three separate studies. Overall responses were 57 percent, 55 percent, and 54 percent for amdinocillin, amdinocillin-cefoxitin, and amdinocillin-ticarcillin or amdinocillin-carbenicillin, respectively. In all three studies, patients with septicemia responded less often than patients with other infections. Most patients were profoundly neutropenic at the initiation of therapy, and both the initial neutrophil level and neutrophil trend during therapy influenced response. A significant number of superinfections occurred when amdinocillin alone was used. Although amdinocillin, alone or in combination with cefoxitin, appeared effective as second-line therapy in infections with organisms shown sensitive in vitro, the combination of amdinocillin and ticarcillin or carbenicillin was only moderately effective in initial therapy for neutropenic, febrile, cancer patients.

Acute Disease

Morphologic changes produced by amdinocillin alone and in combination with beta-lactam antibiotics: in vitro and in vivo.

Scanning electron microscopy was used to study the morphologic effects of amdinocillin (mecillinam) when combined with several beta-lactam antibiotics in vitro (Escherichia coli, three isolates; Klebsiella pneumoniae, one isolate) and also in vivo (E. coli, one isolate). Ovoid forms were found in the cultures of E. coli and K. pneumoniae following in vitro exposure to amdinocillin. This characteristic in vitro effect was also produced in the amdinocillin-treated E. coli-infected mouse. Varying degrees of filament formation were seen both in vitro and in vivo with the other beta-lactam antibiotics tested. The in vitro combination of amdinocillin with the beta-lactam antibiotics produced morphologic effects on E. coli and K. pneumoniae (enhanced cell distortion and lysis) not seen with the individual agents at the doses tested. Amdinocillin was synergistic with ampicillin, carbenicillin, and cephalothin in mice challenged with E. coli 736; scanning electron microscopy of bacteria from peritoneal lavages of mice treated with these synergistic combinations indicated that the organisms were more enlarged and distorted than those from animals receiving the individual agents. The enhanced morphologic effect observed in vivo was in agreement with the in vitro effect. Viable counts of bacteria recovered from mice treated with ampicillin plus amdinocillin were appreciably less than those from mice treated with each agent alone. The morphologic results from the scanning electron microscopy study point to a synergistic or enhanced effect of amdinocillin in combination with beta-lactam antibiotics and are in accord with prior reports of the synergistic effects of amdinocillin.

Amdinocillin

Amdinocillin pharmacokinetics. Simultaneous administration with cephalothin and cerebrospinal fluid penetration.

In the treatment of serious infections, combinations of beta-lactam antibiotics are being utilized in order to avoid aminoglycoside toxicity and to achieve antibacterial synergy. The pharmacokinetic disposition of amdinocillin and cephalothin was determined, when administered alone or in combination to healthy volunteers, as well as the penetration of amdinocillin into human cerebrospinal fluid. Six subjects received, on separate occasions, single intravenous doses of amdinocillin 10 mg/kg, cephalothin 15 mg/kg, or a combination of the two in the same doses. The elimination half-lives of amdinocillin and cephalothin are increased when these drugs are given simultaneously, compared with when they are administered alone. However, no significant differences were observed. When they were given in combination, no significant changes in plasma clearance, renal clearance, or steady-state volume of distribution were found. Eight patients undergoing lumbar puncture for various neurologic disorders without inflamed meninges received a single dose of 10 mg/kg amdinocillin intravenously. One to two hours later, simultaneous plasma and cerebrospinal fluid samples were obtained. The concentration of amdinocillin in the cerebrospinal fluid ranged from approximately 1 to 10 percent of concomitant plasma concentrations. Thus, amdinocillin penetrates in the cerebrospinal fluid in marginal amounts in the absence of meningeal inflammation.

Adult

Review of clinical experience with amdinocillin monotherapy and comparative studies.

Activity against gram-negative bacilli and frequent synergism with other beta-lactam antibiotics were demonstrated by amdinocillin in urinary tract infections, urosepsis, and in a variety of other infections. In a prospective study, 299 patients were assigned at random to receive amdinocillin or another antibiotic considered standard treatment for the infection. The majority of infections were of the urinary tract, and 58 of 59 patients treated with amdinocillin responded clinically, with cures in 49. Of the 52 patients treated with tobramycin or other comparative agents, 49 responded, and 42 were cured. Escherichia coli and other Enterobacteriaceae were the usual pathogens. Immediately after treatment, 90 percent of urine samples were negative in both treatment groups. At four to six weeks follow-up, relapse or reinfection rates were about 20 percent in either group. Miscellaneous infections were treated with either amdinocillin or a comparative agent. Eleven of 15 infections responded favorably to amdinocillin, and seven were cured. Adverse effects were usually mild and characteristic of the penicillins.

Adolescent

Combination amdinocillin and cefoxitin therapy of multiply-resistant Serratia marcescens urinary tract infections.

Amdinocillin has previously been shown to be synergistic with other beta-lactam antibiotics against many gram-negative bacteria. We evaluated the safety, efficacy, and microbiologic activity of combination amdinocillin and cefoxitin treatment in 17 patients with complicated urinary tract infections caused by multiply-resistant Serratia marcescens. Patients were treated with amdinocillin, 40 mg/kg per day, and cefoxitin, 100 mg/kg per day, for five to 14 days. In vitro synergistic activity was observed for 17 isolates using broth checkerboard testing and for nine isolates using combination disc diffusion testing. Of the 17 patients treated, 11 were bacteriologically cured, one failed to respond, and five patients had a relapse after initial improvement. Relapses followed short-duration therapy. Amdinocillin with cefoxitin was well tolerated. Combination amdinocillin and cefoxitin therapy was efficacious and safe in treating complicated urinary tract infections caused by multiply-resistant S. marcescens.

Adult

Systemic infections treated with amdinocillin in combination with other beta-lactam antibiotics.

Amdinocillin is a semisynthetic derivative of 6-beta-amidinopenicillanic acid, which has bactericidal activity against a broad spectrum of gram-negative bacteria. We report the results of a multicenter study evaluating the safety and efficacy of amdinocillin in combination with other beta-lactam antibiotics in the treatment of 120 serious gram-negative bacterial infections. Amdinocillin was safe and well tolerated and, in combination with other beta-lactam antibiotics, was effective in the treatment of a broad range of gram-negative bacterial infections. Therapy with amdinocillin and other beta-lactam antibiotics was often associated with a demonstrable synergistic effect. Thus, amdinocillin holds promise as an effective antibiotic with synergistic potential when used in combination with penicillins and cephalosporins.

Amdinocillin

Efficacy of amdinocillin and lack of nephrotoxicity when combined with a second beta-lactam antibiotic for therapy of serious gram-negative bacillary infections.

Seventy-eight patients with serious gram-negative bacillary infections were assigned at random to receive either amdinocillin or an aminoglycoside. In addition, each patient was also given a broad-spectrum penicillin or cephalosporin antibiotic. The clinical response to treatment was comparable in the two groups. Cures were effected in 35 (92 percent) of 38 patients treated with amdinocillin and a beta-lactam antibiotic, compared with 37 (93 percent) of 40 patients who were treated with an aminoglycoside/beta-lactam combination. For the entire group, only five (7 percent) of the 75 infecting organisms were resistant in vitro to the treatment beta-lactam or amdinocillin combination, and similarly only two (3 percent) organisms were resistant to the treatment aminoglycoside (p = 0.44). Although drug-related toxicity occurred with equal frequency in the two groups, six patients treated with an aminoglycoside experienced nephrotoxicity compared with none of the patients who received amdinocillin (p = 0.034). Thus, amdinocillin plus a broad-spectrum beta-lactam antibiotic may provide suitable empiric therapy for many patients with presumed gram-negative infection and so avoid the risk of aminoglycoside-induced nephrotoxicity.

Adult

Leakage of beta-lactamase: a second mechanism for antibiotic potentiation by amdinocillin.

Discrepancies were observed between results of different beta-lactamase induction tests with amdinocillin, which appeared to be a strong inducer in whole-cell assays but a weak inducer in assays with cell-free sonic extracts. Results of a nitrocephin-disk test with constitutive beta-lactamase producers indicated that the positive results obtained in whole-cell assays were due to drug-produced leakage of enzyme from the cell and not to induction. Imipenem was also found to cause leakage of beta-lactamase from a similar number of constitutive enzyme producers, while cefoxitin was much less likely to cause leakage. A split-dose regimen was employed to treat mice infected with a strain of Enterobacter cloacae which appeared to leak enzyme on exposure to amdinocillin. Results indicated that prior treatment with amdinocillin significantly enhanced (P less than 0.025) the efficacy of azlocillin, an enzyme-labile drug, but did not affect the efficacy of cefotaxime, a relatively enzyme-stable drug. Conversely, prior treatment with amdinocillin did not potentiate the efficacy of either azlocillin or cefotaxime in the treatment of mice infected with an Escherichia coli strain that was highly susceptible to all three drugs. Thus, it appears that amdinocillin may potentiate the activity of other beta-lactam drugs not only by binding to a complementary penicillin-binding protein but also by causing leakage of beta-lactamase from the cell. This effect may be related to its ability to bind to penicillin-binding protein 2 and subsequently produce changes in outer membrane permeability.

Amdinocillin

Protective effect of amdinocillin against emergence of resistance to ceftazidime in Enterobacter cloacae.

Enterobacter cloacae infections have been shown clinically to respond less reliably to monotherapy with broad-spectrum cephalosporins than was initially expected. Selection of populations producing high levels of beta-lactamase has been shown to be the most frequent reason for treatment failure, and the use of these agents with another active antibiotic is recommended. In this study, E. cloacae strains from clinical specimens susceptible to ceftazidime and amdinocillin by broth dilution and disk tests were examined. In the presence of ceftazidime at 10 micrograms/ml, in vitro selection of resistant organisms was demonstrated for 3 of 11 strains. Selection was prevented when amdinocillin was added in combination. A more rapid killing was also demonstrated with this combination. At inocula of 10(8) CFU/ml, ceftazidime-resistant populations were isolated from 6 of 11 strains in vitro, and the emergence of this resistance was prevented by amdinocillin. The enhanced killing effect noted for amdinocillin with ceftazidime may have resulted in part from complementary activity of the antibiotics on penicillin-binding proteins. The ceftazidime-amdinocillin combination offers an interesting prospect for the therapy of infections caused by E. cloacae strains which are initially susceptible to both antibiotics.

Amdinocillin

Management of enteric fever with amdinocillin.

Twenty-six patients with enteric fever treated with amdinocillin and/or its pivaloyloxymethyl ester in 1975 to 1978 were compared with 21 patients with enteric fever treated with trimethoprim-sulfamethoxazole in 1972 to 1974. Diagnosis was based on clinical illness and isolation of Salmonella typhi or S. paratyphi A/B from blood cultures or stool cultures. The dosage of pivamdinocillin in adults was 400 to 800 mg, every 6 hours, for 10 to 16 days; dosage in children was half this amount for 11 to 15 days. Of the 21 patients treated with trimethoprim-sulfamethoxazole, 18 (86 percent) showed a satisfactory clinical response; 13 of these 18 had negative stools immediately after therapy, and two more were negative at the time of discharge (total: 83 percent). Mean hospital stay of these patients was 34.5 days. Of the 26 patients treated with amdinocillin, 23 showed a satisfactory clinical response; 20 of those responding clinically were still excreting the causative organism at the end of therapy; seven of the group remained as convalescent patients who continued to excrete the causative organism in feces at the time of discharge. Mean hospital stay was 43 days. The results of initial trials of amdinocillin and ampicillin in combination suggest that such therapy may be preferable to use of amdinocillin alone, although the excretion of the causative organism during convalescence has not been adequately assessed.

Adolescent

Influence of food on bioavailability of amdinocillin pivoxil.

The bioavailability of amdinocillin was not altered when amdinocillin pivoxil was ingested 1 h before a standard breakfast, and it increased by 20% when amdinocillin pivoxil was ingested with or 1 h after a standard breakfast. Amdinocillin pivoxil would be convenient for patients since it may be taken with or without food.

Administration, Oral

Penicillin-binding proteins and role of amdinocillin in causing bacterial cell death.

The activity of penicillins against bacteria is in large part related to binding to specific receptor proteins involved in cell wall biosynthesis. These proteins have been designated penicillin-binding proteins. They can be separated into distinct entities through the use of acrylamide gel electrophoresis and binding of radioactive 14C-labeled penicillin G. Six major proteins have been defined in the Enterobacteriaceae, penicillin-binding proteins 1 to 6. Selection of mutants has shown that there are three essential proteins: penicillin-binding protein 1, which is divided into penicillin-binding protein 1Bs, a peptidoglycan transpeptidase, and penicillin-binding protein 1A, which acts as a replacement for penicillin-binding protein 1Bs. Penicillin-binding protein 2 is a murein-elongation initiating enzyme and penicillin-binding protein 3 is a septal murein-synthesizing enzyme. Penicillin-binding proteins 4, 5, and 6 are not essential for bacterial survival. Binding of penicillins to penicillin-binding protein 1Bs produces lysis, binding to penicillin-binding protein 2 produces round cells, and binding to penicillin-binding protein 3 produces long filaments. Amdinocillin is a beta-amidino penicillanic acid derivative that binds specifically to penicillin-binding protein 2. The compound is more beta-lactamase stable than ampicillin and has no major delay in entry into the periplasmic space as do some penicillins. Amdinocillin inhibits most of the Enterobacteriaceae, with the exception of some indole-positive Proteus species, but it does not inhibit gram-positive cocci or Pseudomonas aeruginosa. Amdinocillin produces spherical bacterial cells that eventually lyse. Its activity in vitro is markedly affected by ionic content of media. This agent acts synergistically with many penicillins, such as ampicillin, carbenicillin, and the like, and with cephalosporins, cefazolin, cefamandole, or cefoxitin to inhibit gram-negative bacilli, probably on the basis of binding to different proteins needed for the production of the peptidoglycan of the bacterial cell wall. Amdinocillin possesses a number of the essentials for effective antimicrobial activity and, by virtue of its enhancement of the activity of other beta-lactams, may prove to be a useful agent in the chemotherapy of certain infections.

Amdinocillin

Efficacy, pharmacology, and safety of amdinocillin in treatment of neonates.

One hundred and nine neonates with complications conducive to lethal infections were investigated to determine the efficacy, pharmacokinetics, and safety of amdinocillin. Of these 109 neonates, 70 were participants in the clinical study and 39 in the pharmacokinetic study. Amdinocillin (40 mg/kg per day) and penicillin (60,000 units/kg per day) were administered separately in divided doses by intramuscular injection at six-hourly intervals for five days. Amdinocillin/penicillin proved to be a safe and effective alternative to gentamicin/penicillin; no adverse reactions were noted nor did the regimen adversely affect renal or hepatic function. Throughout the treatment period, amdinocillin maintained high therapeutic serum levels. Resistance to amdinocillin did not develop during treatment.

Amdinocillin

Determination of amdinocillin in plasma and urine by high-performance liquid chromatography.

A rapid, sensitive and specific high-performance liquid chromatographic (HPLC) assay was developed for the determination of amdinocillin (formerly mecillinam) in human plasma and urine. The assay is performed by direct injection of a plasma protein-free supernatant or a dilution of urine. A 10 micrometer muBondapak phenyl column with an eluting solvent of water--methanol--1 M phosphate buffer, pH 7 (70:30:0.5) was used, with UV detection of the effluent at 220 nm. Azidocillin potassium salt [potassium-6-(D-(-)-alpha-azidophenyacetamido)-penicillanate] was used as the internal standard and quantitation was based on peak height ratio of amdinocillin to that of the internal standard. The assay has a recovery of 74.4 +/- 6.3% (S.D.) in the concentration ranges of 0.1-20 microgram per 0.2 ml of plasma with a limit of detection equivalent to 0.5 microgram/ml plasma. The urine assay was validated over a concentration range of 0.025-5 mg/ml of urine, and has a limit of detection of 0.025 mg/ml (25 microgram/ml) using a 0.1-ml urine specimen per assay. The assay was applied to the determination of plasma and urine concentrations of amdinocillin following intravenous administration of a 10 mg/kg dose of amdinocillin to two human subjects. The HPLC and microbiological assays were shown to correlate well for these samples.

Amdinocillin

Pharmacokinetics of intravenous amdinocillin in healthy subjects and patients with renal insufficiency.

Five healthy volunteers and 31 patients with various degrees of renal impairment received a 10-mg/kg intravenous dose of amdinocillin by infusion over 15 min to establish the disposition profile of the drug in plasma and urine. Both clearance from plasma and elimination rate constant showed a linear relationship with creatinine clearance. It was noted that in subjects with creatinine clearances of greater than 50 ml/min, the elimination half-life remained relatively constant; however, as the creatinine clearance decreased from 50 to 5 ml/min, there was a progressive rise in the elimination half-life. Despite the removal of the drug by hemodialysis (32 to 72% of the dose), concentrations of amdinocillin in plasma remained in the therapeutic range. In patients undergoing peritoneal dialysis, less than 4.0% of the infused dose was removed by dialysis during the hourly exchanges over a 14- to 18-h period. Although the clearance from plasma and the half-life of amdinocillin were altered up to fourfold in patients with creatinine clearances of less than 15 ml/min, the amdinocillin dosage per se may not need to be reduced for these patients if the frequency of dosing is reduced from six to three or four times daily. This is based on drug accumulation estimates of 56% from a regimen of 10 mg/kg every 8 h in these patients as compared with less than 10% from a regimen of 10 mg/kg every 4 h in subjects with normal renal function. In addition, supplemental doses may not be necessary during or at the end of hemodialysis for patients undergoing hemodialysis.

Adult

Involvement of penicillin-binding protein 2 with other penicillin-binding proteins in lysis of Escherichia coli by some beta-lactam antibiotics alone and in synergistic lytic effect of amdinocillin (mecillinam).

Compared with cefotaxime, ceftazidime, moxalactam, and aztreonam, ceftriaxone produced the best lytic and bactericidal effects when each was added at about 10 times the MIC to Escherichia coli W7. When each of these antibiotics was added at its MIC, only bacteriostasis occurred, but the simultaneous addition of amdinocillin (mecillinam) was synergistic in causing rapid lysis and bactericidal effects. Induction of lysis of two E. coli mutants containing either a thermosensitive penicillin-binding protein (PBP) 2 or 3 by relatively PBP 3-specific (aztreonam) and PBP 2-specific (amdinocillin) antibiotics indicated that inhibition of only PBPs 2 and 3 can cause lysis. Examination of the interactions of cefotaxime, aztreonam, and cefsulodin, with or without amdinocillin, with their targets suggested that other combinations of PBPs could be involved in the onset of lysis. However, inhibition of both PBPs 2 and 3 may explain the better lysis-inducing activity of ceftriaxone (which binds well to both of these PBPs), as well as the synergistic effect of amdinocillin when added together with low concentrations of other beta-lactam antibiotics that interact with PBP 3.

Acyltransferases

Amdinocillin: interaction with other beta-lactam antibiotics for gram-negative bacteria.

Amdinocillin was studied alone and in combination with three other beta-lactam antibiotics (aztreonam, cefoperazone, and ceftriaxone) for activity against gram-negative bacilli. These antibiotic combinations failed to show synergy by the checker-board double-dilution test or by killing kinetic studies. However, amdinocillin did show additive killing action when combined with the other beta-lactam antibiotics studied. Amdinocillin failed to induce or inhibit beta-lactamase production in species of Enterobacteriaceae, but with Pseudomonas aeruginosa, beta-lactamase production was induced. It is concluded that the activity of amdinocillin alone or in combination with another beta-lactam antibiotic should not be more effective in the treatment of infections by gram-negative bacilli than just using the beta-lactam antibiotic alone at a higher dose.

Amdinocillin