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Prospective randomized comparison of imipenem-cilastatin and piperacillin-tazobactam in nosocomial pneumonia or peritonitis.

Nosocomial pneumonia and acute peritonitis may be caused by a wide array of pathogens, and combination therapy is often recommended. We have previously shown that imipenem-cilastatin monotherapy was as efficacious as the combination of imipenem-cilastatin plus netilmicin in these two settings. The efficacy of imipenem-cilastatin is now compared to that of piperacillin-tazobactam as monotherapy in patients with nosocomial pneumonia or acute peritonitis. Three hundred seventy one patients with nosocomial pneumonia or peritonitis were randomly assigned to receive either imipenem-cilastatin (0.5 g four times a day) or piperacillin-tazobactam (4.5 g three times a day). Three hundred thirteen were assessable (154 with nosocomial pneumonia and 159 with peritonitis). For nosocomial pneumonia, clinical-failure rates in the piperacillin-tazobactam group (13 of 75 [17%]) and in the imipenem-cilastatin group (23 of 79 [29%]) were similar (P = 0.09), as were the numbers of deaths due to infection (6 in the imipenem-cilastatin group [8%], 7 in the piperacillin-tazobactam group [9%]) (P = 0.78). For acute peritonitis, clinical success rates were comparable (piperacillin-tazobactam, 72 of 76 [95%]; imipenem-cilastatin, 77 of 83 [93%]). For infections due to Pseudomonas aeruginosa, 45 patients had nosocomial pneumonia (21 in the piperacillin-tazobactam group and 24 in the imipenem-cilastatin group) and 10 had peritonitis (5 in each group). In the patients with nosocomial pneumonia, clinical failure was less frequent in the piperacillin-tazobactam group (2 of 21 [10%]) than in the imipenem-cilastatin [corrected] group (12 of 24 [50%]) (P = 0.004). Bacterial resistance to allocated regimen was the main cause of clinical failure (1 in the piperacillin-tazobactam group and 12 in the imipenem-cilastatin group). For the patients with peritonitis, no difference in clinical outcome was observed (five of five cured in each group). The overall frequencies of adverse events related to treatment in the two groups were similar (24 in the piperacillin-tazobactam group, 22 in the imipenem-cilastatin group). Diarrhea was significantly more frequent in the piperacillin-tazobactam group (10 of 24) than in the imipenem-cilastatin group (2 of 22). This study suggests that piperacillin-tazobactam monotherapy is at least as effective and safe as imipenem-cilastatin monotherapy in the treatment of nosocomial pneumonia or peritonitis. In P. aeruginosa pneumonia, piperacillin-tazobactam achieved a better clinical efficacy than imipenem-cilastatin, due to reduced development of microbiological resistance. Tolerance was comparable, with the exception of diarrhea, which was more frequent with piperacillin-tazobactam.

Acute Disease↗

The pharmacokinetics of imipenem (thienamycin-formamidine) and the renal dehydropeptidase inhibitor cilastatin sodium in normal subjects and patients with renal failure.

The antibiotic imipenum (thienamycin-formamidine) is partially hydrolyzed during excretion by a renal brush border dehydropeptidase. The co-administration of imipenum with the renal dehydropeptidase inhibitor cilastatin results in an increase of the urinary recovery of the antibiotic, both in animals and humans. To study the pharmacokinetics of imipenem and cilastatin, subjects with normal renal function and patients with different degrees of renal insufficiency received intravenously 250 mg imipenum alone and 250 mg imipenem with 250 mg cilastatin. The mean plasma half-life of imipenem varied from 52 min in subjects with normal renal function to 173 min in subjects with end-stage renal failure studied while off-dialysis. The plasma half-life of imipenem was not affected by the co-administration of cilastatin. The mean plasma half-life of cilastatin varied from 54 min in normals to 798 min in patients with end-stage renal failure. The co-administration of cilastatin resulted in an increase of the urinary concentration and in the urinary recovery of imipenem, the effect being more pronounced in the subjects with normal or only mildly impaired renal function. The plasma clearance of imipenem was decreased when cilastatin was co-administered, possibly due to inhibition of tubular secretion of imipenem. Elimination studies performed during haemodialysis indicated efficient removal of both imipenem and cilastatin during a 4 h session. In view of the important increase in half-life of cilastatin as a function of increasing renal failure, a dosage reduction is proposed in patients with severe renal failure. It is recommended that the maximum dose of imipenem/cilastatin would be limited to either 1000/1000 mg twice daily or 500/500 mg four times daily in patients with a creatinine clearance of less than 15 ml/min. Also, a supplementary dose of imipenem and cilastatin after dialysis is recommended.

Adult↗

Disposition of radiolabeled imipenem and cilastatin in normal human volunteers.

In the first of two successive studies, four healthy male subjects received 500 mg of 14C-labeled imipenem alone and together with 500 mg of unlabeled cilastatin sodium. In the second study, the same subjects were given 250 mg of 14C-labeled cilastatin sodium alone and together with 250 and 1,000 mg of cold imipenem. Concentrations of imipenem and cilastatin in plasma, urine, and feces were assayed by high-pressure liquid chromatography and radiometry. Plasma concentrations of imipenem assayed radiometrically were higher than those measured by high-pressure liquid chromatography. In one subject studied at the end of drug administration, the open lactam metabolite of imipenem represented 9% of the radioactivity. Plasma levels of cilastatin determined by high-pressure liquid chromatography and radiometry were virtually identical. Urinary recovery of imipenem varied between 12 and 42% of the dose when that drug was given alone but increased to between 64 and 75% when administered with cilastatin sodium at a 1:1 ratio. Almost all radioactivity of imipenem was recovered in the urine within 96 h after drug administration. The open lactam metabolite, resulting from the metabolism of imipenem in the kidneys by a dipeptidase, dehydropeptidase-I, represented 80 to 90% of the effluent radioactivity when imipenem was given alone and about 20% when cilastatin sodium was coadministered. Renal excretion of cilastatin followed closely that of imipenem. Almost all of the administered radioactivity was recovered in 24 h, and about 75% of the dose was recovered as unchanged cilastatin within 6 h. The N-acetyl metabolite of cilastatin was found to represent about 12% of the total radioactivity.

Adult↗

Removal of imipenem and cilastatin by hemodialysis in patients with end-stage renal failure.

The removal of imipenem and cilastatin by hemodialysis was studied in 14 (for imipenem) and 6 (for cilastatin) subjects. Following intravenous infusion of imipenem and cilastatin at a combined concentration of 10 mg/kg of body weight, drug levels in plasma were determined serially during off- and on-hemodialysis periods, which were 2 and 4 h, respectively. The biexponential decay of the drug levels in plasma was evident in each subject for both imipenem and cilastatin. Hemodialysis accelerated the elimination of both imipenem and cilastatin: the mean elimination-phase half-life of imipenem was shortened from 200 to 78 min, and that of cilastatin was shortened from 445 to 115 min. Hemodialysis clearance of imipenem and cilastatin was calculated by five different methods, each with intrinsic assumptions. The mean hemodialysis clearance of imipenem was estimated to be 74.08 +/- 13.29 ml/min, and that of cilastatin was estimated to be 65.0 +/- 8.6 ml/min, after consideration of various methodological limitations. It was estimated that in a hypothetical anephric patient weighing 60 kg, a 4-h hemodialysis treatment would remove 54.8% of the imipenem and 62.9% of the cilastatin present in the body at the start of dialysis.

Cilastatin↗

Imipenem-cilastatin sodium, a broad-spectrum carbapenem antibiotic combination.

The chemistry, antimicrobial spectrum, mechanism of action, pharmacology and pharmacokinetics, clinical use, adverse effects, dosage and administration, place in therapy, cost-effectiveness, and formulary considerations of imipenem-cilastatin sodium are reviewed. Imipenem is the first carbapenem antibiotic of the thienamycin class to be used clinically. Imipenem has the widest spectrum of antimicrobial activity of currently available beta-lactam agents and, in contrast to other beta-lactam antibiotics, lacks cross resistance with recently introduced extended-spectrum penicillins and third-generation cephalosporins. Against gram-positive and gram-negative aerobic and anaerobic organisms, imipenem demonstrates excellent activity. Pseudomonas maltophilia, some strains of Pseudomonas cepacia, and Streptococcus faecium are resistant. Strains of methicillin-resistant staphylococci should also be considered resistant to imipenem. For clinical use imipenem is coadministered in equal parts with cilastatin. Cilastatin is a renal dehydropeptidase inhibitor that inhibits the metabolism of imipenem by renal brush-border enzymes, thus increasing imipenem concentrations in urine. Imipenem-cilastatin is administered by the intravenous route only. The adverse reaction profile of imipenem-cilastatin is similar to t that of other beta-lactam antibiotics. Recommended dosage reductions appropriate for renal impairment should be guided by periodic assessments of renal function, with close adherence to recommended dosage schedules, particularly among patients who are predisposed to seizures or receiving anticonvulsant medication. Imipenem-cilastatin performed well in both comparative and noncomparative trials of clinical efficacy and safety. For infections with multiple organisms (e.g., pelvic, intra-abdominal, or soft-tissue infections), imipenem-cilastatin may be a cost-effective and less toxic single-agent alternative to "standard" combination (e.g., aminoglycoside-penicillin plus an antianaerobic agent) therapy. However, in patients with serious pseudomonal infections (e.g., pneumonia), isolates may rapidly acquire resistance to imipenem or be replaced by resistant strains of Ps. aeruginosa when imipenem is used alone. Therefore, when the recovery of Ps. aeruginosa is anticipated or documented, treatment with imipenem-cilastatin should include an aminoglycoside to reduce the likelihood of the emergency of resistant organisms during therapy.

Anti-Bacterial Agents↗

Effect of cilastatin on renal handling of vancomycin in rats.

To provide insights into the possibility of reducing the nephrotoxicity of vancomycin (VCM) by cilastatin, the effect of cilastatin on the renal handling of VCM, as well as on glomerular filtration rate (GFR) and plasma protein binding of VCM, were studied using rats. After a bolus intravenous (iv) dose of VCM (100 mg/kg), concomitant cilastatin administration (100 mg/kg, iv) resulted in a significant increase in the total VCM clearance and significant decrease in the kidney uptake clearance of VCM, defined as kidney VCM concentration vs AUC ratio. Moreover, after a 3-h continuous iv infusion of VCM (18 or 90 mg/h/kg), significant decrease in the kidney uptake clearance of VCM was observed with concomitant cilastatin iv infusion (300 mg/h/kg). On the other hand, GFR and VCM plasma protein binding did not show any significant change with cilastatin. From the observation that cilastatin decreased the kidney uptake clearance of VCM and enhanced its urinary excretion, it was suggested that cilastatin inhibited the reabsorption of VCM in the renal proximal tubular cells. Thus, it may be possible that cilastatin alleviates the nephrotoxicity of VCM due to reduced accumulation and accelerated renal excretion of VCM.

Animals↗

Cefepime versus imipenem-cilastatin as empirical monotherapy in 400 febrile patients with short duration neutropenia. CEMIC (Study Group of Infectious Diseases in Cancer).

This open, comparative, randomized, multicentre equivalence study compared cefepime 2 g bd and imipenem-cilastatin 1 g tds (50 mg/kg/day) as empirical monotherapy for febrile episodes in a homogeneous cohort of cancer patients with short duration neutropenia following chemotherapy for solid tumour, lymphoma or myeloma. The study was conducted in 17 French anti-cancer centres in 1995 and 1996. Response to monotherapy was assessed 7 days after treatment and was based on resolution of fever and signs and symptoms, eradication of pathogens, absence of new infection, relapse, and death of infectious origin, without addition of other antibiotics. Patients were treated for a minimum of 4 days. Of the 400 episodes randomized, 344 (86%) were evaluable for efficacy. Patient characteristics were comparable between treatment groups. Success of monotherapy was observed in 79% of episodes with cefepime and 72% with imipenem-cilastatin (equivalence, P <0.0001). The response rate for microbiologically documented infections was 66% with cefepime and 61% with imipenem-cilastatin (bacteraemic episodes: 63% for cefepime; 44% for imipenem-cilastatin). A second antibiotic (usually a glycopeptide) was added in 20% and 21% of the cases, respectively. Overall, the response to therapy, with or without an additional antibiotic, was 95% (cefepime) and 90% (imipenem-cilastatin). Survival was similar in both groups (95% and 98%, respectively). Cefepime treatment was better tolerated, with 9% of the patients experiencing related intercurrent events compared with 19% in the imipenem-cilastatin group (P = 0.003). Nausea/vomiting was significantly more frequent in the imipenem-cilastatin group (15%) than in the cefepime group (5%; P = 0.001). Cefepime monotherapy was as effective as, and better tolerated than, imipenem-cilastatin in the empirical treatment of fever during short duration neutropenia.

Antineoplastic Agents↗

Pharmacokinetics of imipenem-cilastatin in neonates.

Imipenem and its renal dehydropeptidase I inhibitor, cilastatin, were coadministered intravenously in a 1:1 ratio to 30 newborns. Five infants each received single doses of 10, 15, or 20 mg/kg of both drugs. Concentrations in plasma were proportional to the administered dose, and cilastatin achieved consistently higher concentrations than did equivalent doses of imipenem because of its smaller volume of distribution. The pharmacokinetics of both drugs were best described by a one-compartment model. The plasma half-lives of imipenem were 1.7 to 2.4 h, whereas those of cilastatin were 3.9 to 6.3 h. The plasma clearance of cilastatin was approximately one-quarter of that of imipenem in the dose range tested. The urinary concentrations of imipenem were 50% of those of cilastatin despite its higher clearance from plasma. Fifteen additional newborns received five to eight doses of imipenem-cilastatin at 20 mg/kg per dose every 12 h. There was no accumulation of either drug in plasma after repeated administrations, and the mean concentrations in plasma were similar when measured on the first and last days of the multiple-dose study. There was marked intersubject variability, more so for cilastatin. The pharmacokinetics of both drugs in neonates resembled those observed in adults with moderate to severe renal insufficiency. Because the effects of enzyme inhibition on neonates are unknown, additional studies with imipenem-cilastatin (primaxin) are recommended.

Chromatography, High Pressure Liquid↗

Imipenem and cilastatin in acute osteomyelitis and suppurative arthritis. Therapy in infants and children.

Twenty-five infants and children with acute osteomyelitis (n = 7), suppurative arthritis (n = 11), or both (n = 7) were treated with imipenem and cilastatin sodium. Patients ranged in age from 5 months to 11.3 years. Needle aspiration of infected sites was performed in all patients, and 11 (44%) required further surgical drainage. Imipenem and cilastatin sodium in a dosage of 100 mg/kg/d was used for children 3 years of age or younger, while older ones received 60 mg/kg/d intravenously, divided in four equal doses. Bacterial pathogens were identified in 15 patients (60%): Staphylococcus aureus in five, Haemophilus influenzae b in four, Pseudomonas aeruginosa in two, Streptococcus pneumoniae in one, group A Streptococcus in one, Kingella kingae in one, and Citrobacter amalonaticus in one. All isolates were susceptible to imipenem in vitro. Imipenem and cilastatin therapy was continued for a median of six days followed by treatment with appropriate orally administered antibiotics. Median peak serum bactericidal titers after imipenem and cilastatin infusions were 1:512 for S aureus, 1:32 for H influenzae b, 1:512 for streptococci, and 1:16 for gram-negative rods. All but one patient with P aeruginosa osteomyelitis responded favorably to imipenem and cilastatin. The median duration until resolution of symptoms was six days. Imipenem and cilastatin infusions were well tolerated, and side effects included maculopapular rash in one patient, watery diarrhea in one, and mild transient elevation of alanine aminotransferase levels in three. Because of imipenem and cilastatin's unusually broad spectrum of activity and its relative safety, this drug combination can be used for the initial, empiric therapy of acute bone and joint infections in pediatric patients.

Acute Disease↗

Steady-state pharmacokinetics of intramuscular imipenem-cilastatin in elderly patients with various degrees of renal function.

We studied the concentrations in plasma and pharmacokinetics of imipenem and cilastatin in elderly patients (greater than 65 years old) who had various degrees of renal function and who were hospitalized with soft tissue infections. Three groups of patients received imipenem-cilastatin (500/500 mg) intramuscularly every 12 h: group I consisted of eight patients with a creatinine clearance (CLCR) of greater than 50 ml/min (range, 51 to 84 ml/min; mean, 65.8 ml/min); group II consisted of three patients with a CLCR of 20 to 50 ml/min; and group III consisted of two patients with a CLCR of less than 20 ml/min. Imipenem and cilastatin concentrations were measured at steady state on day 5. Mean peak and trough plasma imipenem concentrations were 5.28 +/- 1.78 and 1.43 +/- 0.76 micrograms/ml in group I, 6.25 +/- 0.78 and 2.50 +/- 0.00 micrograms/ml in group II, and 14.3 +/- 0.71 and 6.85 +/- 1.06 micrograms/ml in group III, respectively. Mean peak and trough plasma cilastatin concentrations were 11.8 +/- 2.85 and 0.31 +/- 0.43 microgram/ml in group I, 15.5 +/- 2.48 and 2.03 +/- 2.05 micrograms/ml in group II, and 24.5 +/- 6.72 and 10.7 +/- 5.94 micrograms/ml in group III, respectively. Mean imipenem AUCss (area under the concentration-time curve over a dosage interval at steady state) values were 38.7 +/- 7.9 micrograms.h/ml for group I, 52.3 +/- 7.3 micrograms.h/ml for group II, and 143.7 +/- 11.9 micrograms.h/ml for group III. Mean cilastatin AUCss values were 45.6 +/- 12.5 micrograms.h/ml for group I, 93.8 +/- 51.2 micrograms.h/ml for group II, and 217.5 +/- 57.8 micrograms.h/ml for group III. Cilastatin mean apparent body clearance values (normalized to weight) were 2.78 +/- 0.67 ml/min for group I, 1.43 +/- 0.81 ml/min for group II, and 0.71 +/- 0.24 ml/min for group III. Imipenem open-lactam metabolite levels were all below the level of detective of the assay (<3.9 micrograms/ml). There was a progressive increase in plasma imipenem and cilastatin levels and AUCss and there was a decline in body clearance as renal function declined.

Aged↗

Dose-dependent kinetics of cilastatin in laboratory animals.

Cilastatin, a potent inhibitor of renal dehydropeptidase I, was specifically designed to inhibit renal metabolism of the antibiotic imipenem in order to achieve therapeutically relevant imipenem concentrations in the urinary tract. In this study the elimination kinetics of cilastatin in rats at doses of 5, 10, 20, 50, 100, and 200 mg/kg iv were demonstrated to be dose dependent, with total plasma clearance and non-renal clearance falling from 20.2 +/- 3.1 ml/min/kg and 17.7 +/- 3.3 ml/min/kg (mean +/- S.D.) at the 5 mg/kg dose to 11.4 +/- 1.2 ml/min/kg and 5.30 +/- 1.2 ml/min/kg, respectively, at the 200 mg/kg dose, whereas the volume of distribution of the drug remained unchanged. Since cilastatin is mainly eliminated by renal excretion as well as by N-acetylation, the non-renal clearance may reasonably reflect the N-acetylation process. Thus, the dose-dependent kinetics of cilastatin might be explained, at least partly, by the saturation of the N-acetylation of the drug. The dose-related decrease in the fraction (fm) of cilastatin converted to its N-acetylated metabolite provided further evidence for the saturable N-acetylation. The fm values decreased from 0.915 at the 10 mg/kg dose to 0.626 at the 100 mg/kg dose. Although both the total plasma clearance and non-renal clearance decreased with increasing dose, the dose had an opposite effect on the renal clearance of cilastatin. The renal clearance of cilastatin increased from 2.50 +/- 0.40 ml/min/kg at the lowest dose to 6.10 +/- 0.50 ml/min/kg at the highest dose as the dose increased.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Pharmacokinetics of imipenem and cilastatin during continuous venovenous hemodialysis in patients who are critically ill.

The objective of this study is to study the pharmacokinetics of imipenem-cilastatin in patients with anuria related to multiorgan failure during continuous venovenous hemodialysis (CVVHD) at a fixed blood flow rate of 60 ml/min, fixed dialysate flow rate of 20 ml/min, and drainage flow rate of 1-3 mil/min. A prospective open label study was designed in an intensive care unit in a university hospital. Six patients who required mechanical ventilation and inotropic agents and exhibited acute anuric renal failure were examined. Intravenous imipenem-cilastatin, 500/500 mg, was administered over 30 mins. Blood samples were obtained from the inlet and the outlet of the dialyzer and dialysate samples from the outlet before and at 0.0, 0.5, 1.0, 2.0, 3.0, 6.0, 9.0, and 12.0 hrs after infusion ended. The peak and trough concentrations of imipenem were 32.47 +/- 6.69 micrograms/ml and 1.12 +/- 0.46 micrograms/ml, respectively, whereas those of cilastatin were 50.05 micrograms/ml +/- 14.80 and 9.53 +/- 3.25 micrograms/ml, respectively. The half life was 2.79 +/- 0.3 hr for imipenem, and 6.67 +/- 0.93 hr for cilastatin. Total body clearance of imipenem was 89.4 +/- 17.5 ml/min, including the clearance by CVVHD of 18.7 +/- 1.2 ml/min, and corresponding values for cilastatin were 31.7 +/- 9.0 ml/min and 13.7 +/- 3.4 ml/min. In conclusion, in patients with anuria, the elimination of imipenem-cilastatin was constant during CVVHD. The recommended regimen in patients with anuria who receive CVVHD in this setting was estimated as intravenous imipenem-cilastatin, 500/500 mg, every 12 hrs.

Adolescent↗

Biliary excretion of imipenem-cilastatin in hospitalized patients.

Imipenem-cilastatin concentrations in bile were measured in 12 cholecystectomy patients (group 1) and 12 patients with common duct drainage (group 2). Six patients in each group received 0.5 g, and six received 1.0 g intravenously over 30 to 60 min. In group 1, bile was collected a mean of 85 min postinfusion. The mean concentrations of imipenem in bile were 1.3 microgram/ml after the 0.5-g dose and 3.5 micrograms/ml after the 1.0-g dose. The mean concentrations of cilastatin in bile were 9.0 micrograms/ml after the 0.5-g dose and 38.0 micrograms/ml after the 1.0-g dose. In patients with common duct drainage, bile was collected predose and 0 to 2, 2 to 3, 3 to 4, and 4 to 6 h postinfusion. Peak imipenem concentrations in bile were 4.4 micrograms/ml after the 0.5-g dose and 8.6 micrograms/ml after the 1.0-g dose. Peak cilastatin concentrations in bile were 4.6 micrograms/ml for the 0.5-g dose and 10.9 micrograms/ml for the 1.0-g dose. Peak imipenem concentrations in bile occurred a mean of 2.3 h after administration of the drug; cilastatin peak concentrations occurred at a mean of 2.4 h. Less than 0.3% of each drug was recovered in the bile. Our results suggest that imipenem enters bile by simple diffusion and in most patients attains concentrations sufficient to inhibit susceptible organisms. In contrast, cilastatin had a bimodal entry into bile. Some patients had very high concentrations in bile, whereas others had very low or undetectable concentrations, suggesting that cilastatin may be actively secreted into the bile.

Adult↗

Piperacillin-tazobactam versus imipenem-cilastatin for treatment of intra-abdominal infections.

In order to compare the clinical and microbiological efficacies and safety of piperacillin plus tazobactam with those of imipenem plus cilastatin, 134 patients with intra-abdominal infections (73 patients with appendicitis) participated in an open randomized comparative multicenter trial. A total of 40 men and 29 women (mean age, 53 years; age range, 18 to 92 years) were enrolled in the piperacillin-tazobactam group and 40 men and 25 women (mean age, 54 years; age range, 16 to 91 years) were enrolled in the imipenem-cilastatin group. The patients received either piperacillin (4 g) and tazobactam (500 mg) every 8 h or imipenem and cilastatin (500 mg each) every 8 h. Both regimens were given by intravenous infusion. A total of 113 patients were clinically evaluable. Of 55 patients who received piperacillin-tazobactam, 50 were clinically cured, while 40 of 58 patients in the imipenem-cilastatin group were clinically cured. The differences were significant (Wilcoxon test; P = 0.005). There were 4 failures or relapses in the piperacillin-tazobactam group and 18 failures or relapses in the imipenem-cilastatin group. The microorganisms isolated were eradicated in similar proportions in the two patient groups. Adverse reactions, mainly gastrointestinal disturbances and nausea, were noted in 13 patients who received piperacillin-tazobactam and in 14 patients who received imipenem-cilastatin. Results of the present study show that piperacillin-tazobactam is effective and safe for the treatment of intra-abdominal infections.

Abdomen↗

Pharmacokinetics of imipenem-cilastatin in critically ill patients undergoing continuous venovenous hemofiltration.

The pharmacokinetics of imipenem-cilastatin were investigated in 12 critically ill patients with acute renal failure (ARF) managed by continuous veno-venous hemofiltration (CVVH) while receiving a fixed combination of 500 mg of imipenem-cilastatin intravenously three or four times daily. No adverse drug reactions were observed. Plasma and hemofiltrate samples were taken at specified times during one dosing interval, and the concentrations of imipenem and cilastatin were determined by high-performance liquid chromatography. Pharmacokinetic variables were calculated by a first-order, two-compartment pharmacokinetic model for both substances. Total clearances of imipenem and cilastatin (mean +/- standard deviations) were 122.2 +/- 28.6 and 29.2 +/- 13.7 ml/min, respectively, with hemofiltration clearances of 22.9 +/- 2.5 and 16.1 +/- 3.1 ml/min, respectively, and nonrenal, nonhemofiltration clearances of 90.8 +/- 26.3 and 13.2 +/- 13.9 ml/min, respectively. Mean imipenem dosage requirements were approximately 2,000 mg/24 h (2,111.8 +/- 493.4 mg/24 h). They were calculated in order to achieve an average steady-state concentration of 12 mg/liter to ensure that concentrations in plasma exceeded the MICs at which 90% of intermediately resistent bacteria are inhibited (8 mg/liter) during the majority of the dosing interval. By contrast, the recommended dosage for patients with end-stage renal failure (ESRF) and infections caused by intermediately resistant bacteria is 1,000 mg/24 h. This remarkable difference may be due (i) to differences in the nonrenal clearance of imipenem between patients with ARF and ESRF and (ii) to the additional clearance by the hemofilter. Since the total clearance of cilastatin was low, marked accumulation occurred, and this was particularly pronounced in patients with additional liver dysfunction. Thus, in patients with ARF managed by CVVH, rather high imipenem doses are required, and these inevitably result in a marked accumulation of cilastatin. The doses of imipenem recommended for patients with ESRF, however, will lead to underdosing and inadequate antibiotic therapy.

Acute Kidney Injury↗

Stability of imipenem and cilastatin sodium in total parenteral nutrient solution.

The chemical stability and compatibility of imipenem-cilastatin sodium (Primaxin) in two different total parenteral nutrient (TPN) solutions was determined. TPN solutions consisted of 4.25% and 5% amino acids with 25% and 35% dextrose, respectively. Imipenem-cilastatin sodium was constituted with 10 ml of sterile water and admixed with 90 ml of TPN solution for a final concentration of 5 mg/ml of each drug. The final solutions were assayed at times 0 (immediately after admixture), 15 min, 30 min, 1, 4, 8, and 24 hr by a stability-indicating high-performance liquid chromatographic assay. Concurrently, test TPN solutions were monitored for pH changes, color changes, and precipitate formation. The potential effect of imipenem-cilastatin sodium on the stability of amino acids and other TPN additives was not evaluated. Imipenem and cilastatin sodium was stable (greater than or equal to 90% recovered) in each TPN solution at 15 min. A significant (greater than or equal to 10%) and steady decrease of imipenem recovery occurred at subsequent sampling times. Cilastatin appeared more stable than imipenem in both TPN solutions. A physical color change from colorless to dark orange appeared in each TPN solution over the 24-hr study period. Imipenem-cilastatin sodium is stable for 15 min in the TPN solutions studied; however, until the stability of the amino acids can be determined, the antibiotic should be administered through a separate line or Y-site while the TPN infusion is interrupted.

Anti-Bacterial Agents↗

Multiple-dose pharmacokinetics of imipenem-cilastatin.

We characterized the pharmacokinetic profile of imipenem-cilastatin administered intravenously to six normal volunteers in a dose of 1,000 mg of each drug every 6 h for 40 doses. The plasma concentrations of imipenem and cilastatin 1 h after the end of a 30-min infusion were 18.7 (+/- 2.1) and 19.1 (+/- 4.6), 20.0 (+/- 3.2) and 17.8 (+/- 4.8), and 23.4 (+/- 2.3) and 19.1 (+/- 3.5) micrograms/ml in the 1st, 17th, and 37th dosing intervals, respectively. The central compartment volumes of distribution for imipenem and cilastatin were 0.16 (+/- 0.05) and 0.14 (+/- 0.03) liter/kg, respectively. Elimination half-lives were short: 0.93 (+/- 0.09) h for imipenem and 0.84 (+/- 0.11) h for cilastatin. Plasma clearances were 12.1 (+/- 0.06) liters/h per 1.73 m2 for imipenem and 12.4 (+/- 1.1) liters/h per 1.73 m2 for cilastatin. Renal clearance accounted for 54% of the plasma clearance of imipenem and 69% of the plasma clearance of cilastatin. The concentrations of imipenem in plasma and urine remained above the MICs of the vast majority of pathogens throughout the dosing interval.

Adult↗

In vitro and in vivo studies of imipenem-cilastatin alone and in combination with gentamicin against Listeria monocytogenes.

Imipenem was evaluated for its in vitro and in vivo activities alone and in combination with gentamicin against a clinical isolate of Listeria monocytogenes, and the results were compared with the activities of ampicillin with and without gentamicin. In vitro, the MBC of imipenem was fourfold less than that of ampicillin. Checkerboard determinations of the MBCs exhibited a synergistic response for imipenem-gentamicin but an indifferent response for ampicillin-gentamicin. In vivo studies with experimental bacteremia and meningitis due to L. monocytogenes in newborn rats revealed that both imipenem-cilastatin and ampicillin at a dose of 50 mg/kg produced excellent bactericidal titers in serum. Overall mortality rates were not significantly different among four groups of animals receiving imipenem-cilastatin, imipenem-cilastatin-gentamicin, ampicillin or ampicillin-gentamicin. However, imipenem-cilastatin alone or in combination with gentamicin was significantly less effective than ampicillin-gentamicin, as judged by the rapidity of clearance of bacteria from blood, liver, and spleen. These findings suggest that imipenem-cilastatin and imipenem-cilastatin-gentamicin may not be suitable alternatives for the treatment of listeriosis.

Ampicillin↗