PubMed Health⌕ Search

SEARCH · PubMed Health

Results for “vancomycin”

Explore indexed PubMed citations for clinical trials, systematic reviews and public health research. Read source abstracts and follow each citation to its original PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 199 records · Page 11Linked to original sources

Characterization of staphylococci with reduced susceptibilities to vancomycin and other glycopeptides.

During the last several years a series of staphylococcal isolates that demonstrated reduced susceptibility to vancomycin or other glycopeptides have been reported. We selected 12 isolates of staphylococci for which the vancomycin MICs were > or =4 microg/ml or for which the teicoplanin MICs were > or =8 microg/ml and 24 control strains for which the vancomycin MICs were < or =2 microg/ml or for which the teicoplanin MICs were < or =4 microg/ml to determine the ability of commercial susceptibility testing procedures and vancomycin agar screening methods to detect isolates with reduced glycopeptide susceptibility. By PCR analysis, none of the isolates with decreased glycopeptide susceptibility contained known vancomycin resistance genes. Broth microdilution tests held a full 24 h were best at detecting strains with reduced glycopeptide susceptibility. Disk diffusion did not differentiate the strains inhibited by 8 microg of vancomycin per ml from more susceptible isolates. Most of the isolates with reduced glycopeptide susceptibility were recognized by MicroScan conventional panels and Etest vancomycin strips. Sensititre panels read visually were more variable, although with some of the panels MICs of 8 microg/ml were noted for these isolates. Vitek results were 4 microg/ml for all strains for which the vancomycin MICs were > or =4 microg/ml. Vancomycin MICs on Rapid MicroScan panels were not predictive, giving MICs of either < or =2 or > or =16 microg/ml for these isolates. Commercial brain heart infusion vancomycin agar screening plates containing 6 microg of vancomycin per ml consistently differentiated those strains inhibited by 8 microg/ml from more susceptible strains. Vancomycin-containing media prepared in-house showed occasional growth of susceptible strains, Staphylococcus aureus ATCC 29213, and on occasion, Enterococcus faecalis ATCC 29212. Thus, strains of staphylococci with reduced susceptibility to glycopeptides, such as vancomycin, are best detected in the laboratory by nonautomated quantitative tests incubated for a full 24 h. Furthermore, it appears that commercial vancomycin agar screening plates can be used to detect these isolates.

Anti-Bacterial Agents↗

Vancomycin pharmacokinetics in neonates and infants: a retrospective evaluation.

OBJECTIVE: To evaluate the frequency with which current loading and maintenance vancomycin dosages achieve target serum concentrations based on pharmacokinetic parameters obtained after the initial dose. Also, to identify the daily vancomycin dosage necessary to achieve target serum concentrations at steady-state and to determine if any relationships exist between vancomycin pharmacokinetic parameters and various patient characteristics. SETTING: Neonatal intensive care unit (NICU) at Georgia Baptist Medical Center. PATIENTS/METHODS: Twenty-three infants with suspected or documented gram-positive infection who received intravenous vancomycin between July 1990 and November 1991 were included in this retrospective analysis. Gestational age range from 23 to 41 weeks and postconceptional age (PCA) at the time of the study ranged from 26 to 46 weeks. Vancomycin therapy was initiated with a loading dose of 15 mg/kg, followed by a maintenance dosage of 20-30 mg/kg/d, which was usually given as 10 mg/kg q8-12h. All vancomycin doses were administered using a syringe pump. Peak and trough serum concentrations were obtained following the first dose. Vancomycin pharmacokinetic parameters were determined using a one-compartment model. Infants receiving indomethacin within two weeks prior to study were analyzed separately (group 2, n = 4). All other infants were included in group 1 (n = 19). RESULTS: For group 1, vancomycin clearance (Cl), volume of distribution (Vd), and half-life were (mean +/- 1 SD) 0.072 +/- 0.032 L/kg/h, 0.52 +/- 0.08 L/kg, and 5.6 +/- 1.6 hours, respectively. For both groups, loading doses provided 1-hour postinfusion peak concentrations of 25-35 mg/L in one of every two infants studied, whereas only three percent of initial maintenance doses were projected to provide desired peak and trough concentrations at steady-state. For group 1, the mean daily dosage necessary to provide target peak (25-35 mg/L) and trough (5-10 mg/L) concentrations at steady-state was larger than that initially prescribed (29.6 +/- 13.1 vs. 22.2 +/- 4.7 mg/kg/d). For group 2, the mean daily dosage required to achieve target peak and trough concentrations at steady-state was smaller than that initially prescribed (14.8 +/- 4.3 vs. 20.0 +/- 0.1 mg/kg/d) and was exactly half of that required for group 1. Excellent correlations were observed between PCA and vancomycin Cl (L/h) (r = 0.92; p < 0.0001), body weight and Vd(L) (r = 0.94; p < 0.0001), body weight and vancomycin Cl (L/h) (r = 0.85; p < 0.0001), PCA and Vd (L) (r = 0.89; p < 0.0001), and body surface area and Vd (L) (r = 0.93; p < 0.0001) for group 1. Moderate correlations were also noted between PCA and Cl relative to body weight (L/kg/h), postnatal age and Cl (L/kg/h), and PCA and vancomycin dosage requirements (mg/kg/d). No linear correlation was observed between any patient characteristic and Vd standardized for body weight. CONCLUSIONS: Our data demonstrate the need for a more accurate method of estimating initial vancomycin dosage requirements in this NICU population. Although some of the relationships revealed in this study could be used to determine vancomycin dosage for infants in the range of approximately 30-36 weeks PCA, we hesitate to suggest this approach presently because of the potential limitations of our study design. Further prospective study is needed to confirm these observations. In addition, further study is necessary to describe the time course of the interaction between vancomycin and indomethacin in infants with successful and unsuccessful closure of their patent ductus arteriosus.

Female↗

Lack of vancomycin-associated nephrotoxicity in newborn infants: a case-control study.

OBJECTIVE: The purpose of this study was to compare the incidence of nephrotoxicity, defined as doubling of baseline serum creatinine concentration, in newborn infants with peak vancomycin serum concentrations </=40 microg/mL at steady state to infants with peak vancomycin serum concentrations >40 microg/mL. A secondary objective was to correlate concomitant disease states and potentially nephrotoxic drug therapy with rises in serum creatinine in vancomycin recipients. METHODS: Newborn infants with culture-proven Staphylococcus aureus or coagulase-negative staphylococcal septicemia who received vancomycin therapy for >3 days between 1985 and 1995 were identified from an existing database and a review of medical record. All 69 patients included in the study had serial serum creatinine determinations, including a baseline value within 48 hours of starting treatment with vancomycin, and serum vancomycin concentrations determined after at least three doses, with peak and trough concentrations determined 1 hour after a 60-minute infusion and 15 to 30 minutes before a dose, respectively. Infants with congenital renal or cardiac anomalies were excluded. Demographic characteristics, vancomycin dosing regimen, serum vancomycin concentrations and sample times, concomitant drug therapy, and disease states were recorded. Patients were divided into group A (peak vancomycin concentration </=40 microg/mL) and group B (peak vancomycin concentration >40 microg/mL). The change in serum creatinine concentration between the start and end of vancomycin therapy was determined. Nephrotoxicity was identified if serum creatinine doubled at any time from the start to the end of vancomycin therapy. Alternative definitions of nephrotoxicity (any rise in serum creatinine to >0.6 mg/dL or new abnormalities of urine sediment) were used in additional analyses. RESULTS: A total of 69 evaluable patients (gestational age, 28.9 +/- 3.0 weeks; birth weight, 1219 +/- 516 g) were identified, 61 in group A and 8 in group B. Six patients in group A underwent doubling of serum creatinine concentration during vancomycin therapy, whereas none in group B did so. Serum creatinine doubled to >0.6 mg/dL in only 3 infants (all in group A). Any increase in serum creatinine to >0.6 mg/dL was seen in 10 infants, 9 of whom were in group A. No confounding variable, including previous or concomitant underlying disease states associated with renal dysfunction or treatment with other potentially nephrotoxic agents, were associated with a significant rise in serum creatinine. CONCLUSION: Vancomycin-associated nephrotoxicity is rare in neonates, even with serum peak concentrations >40 microg/mL.

Anti-Bacterial Agents↗

[Is the methicillin-resistant Staphylococcus aureus heteroresistant to vancomycin in Croatia?].

INTRODUCTION: Staphylococcus (S.) aureus with reduced susceptibility to vancomycin has attracted much attention all over the world since the first report of Staphylococcus aureus isolate intermediarily resistant to vancomycin (VISA) in Japan 1997. Other authors from different parts of the world have also described VISA isolates in patients with treatment failures after prolonged vancomycin therapy. Most of the isolates were heterogeneously resistant (hVISA), i. e. only a part of the population showed resistance and the rest showed susceptibility to vancomycin. AIM: Aim of the study was to determine the existence of methicillin-resistant S. aureus (MRSA) strains with reduced susceptibility to vancomycin in Croatia. METHODS: Abbreviated population analysis was used for detection of strains with reduced susceptibility to vancomycin. Forty-eight MRSA strains from three different hospitals in Croatia were tested on brain-heart infusion agar (BHIA) screen plate containing 4 mg/L vancomycin. Thirty-three (68.7%) strains that showed growth on a screen plate were inoculated on BHIA plates with rising vancomycin concentrations (1-20 mg/L). After subcultivation and growth on a vancomycin-free BHIA plate, minimal inhibitory concentrations (MICs) were determined for all strains. RESULTS: Fourteen of 48 (29.1%) strains had vancomycin 8 mg/L and 1/48 (2.0%) strain had vancomycin 16 mg/L. In 3/48 (6.2%) MIC were stable after storage in liquid nitrogen for six months. Vancomycin MIC50 and MIC90 of all 33 strains grown on screen plate were 1 and 2 gm/L, respectively, when tested on Mueller-Hinton agar (MHA) before inoculation on BHIA with growing concentrations of vancomycin. Immediately thereafter, MIC were 4 and 8 mg/L, and after six months of storage, they were 4 and 4 mg/L, respectively. CONCLUSION: The prevalence of hVISA in Croatia is low, but there are some strains with reduced susceptibility to vancomycin. Unfortunately, because of lack of clinical data neither clinical correlation with laboratory findings nor therapeutic failures can be discussed.

Croatia↗

Vancomycin disposition following intraperitoneal administration in children receiving peritoneal dialysis.

BACKGROUND: Little information is available on the disposition of vancomycin during chronic peritoneal dialysis (PD) in children. The primary objective of this study was to investigate the disposition of vancomycin following intraperitoneal (IP) administration in children receiving short-dwell [e.g., automated PD (APD)] and long-dwell [e.g., continuous ambulatory PD (CAPD)] PD. METHODS: A 6-hour exchange containing vancomycin 500 mg/L, using an exchange volume of 1100 mL/m2 body surface area (BSA), was followed by 4-, 6-, and 8-hour antibiotic-free exchanges. The 8-hour exchange was followed by three to four 90-minute antibiotic-free exchanges. Serial blood and dialysis effluent samples were obtained and analyzed for vancomycin concentration by high-pressure liquid chromatography. Pharmacokinetic parameters were computed using noncompartmental methods. RESULTS: The bioavailability of vancomycin during a 6-hour IP exchange was 70% +/- 5%, resulting in a delivered dose of 12.0 +/- 1.8 mg/kg, and a 6-hour serum vancomycin concentration of 23.3 +/- 7.2 microg/mL. Total body vancomycin clearance measured 10.72 +/- 4.52 mL/minute/1.73 m2 BSA, while clearance attributable to PD measured 2.78 +/- 1.08 mL/min/1.73 m2 BSA and accounted for 29% +/- 11% of total vancomycin clearance. Dialysis clearance during long-dwell (CAPD) and short-dwell (APD) regimens was similar, measuring 2.46 +/- 1.04 and 3.09 +/- 1.28 mL/min/1.73 m2 BSA, accounting for 25% +/- 13% and 32% +/- 12% of total body clearance respectively. CONCLUSIONS: Intraperitoneal absorption and dialysis clearance of vancomycin in children receiving PD are similar to those reported in adult dialysis patients. In contrast, total body clearance of vancomycin appears to be increased and the elimination half-life decreased in children, due to increased elimination by non-renal nondialysis routes. For intermittent IP vancomycin therapy in children with peritonitis, an IP load containing vancomycin 1000 mg/L (or 30 mg/kg), followed a single full-fill (1100 mL/m2 BSA) daily exchange, containing vancomycin 250 mg/L (or 7.5 mg/kg), from day 2 until the end of treatment will maintain a vancomycin dialysate concentration of >4 microg/mL.

Absorption↗

Effect of quinupristin/dalfopristin alone or in combination with vancomycin on the structure of Enterococcus faecium.

Twenty strains of Enterococcus faecium susceptible to quinupristin/dalfopristin (< 2 mg/l) were DNA fingerprinted to exclude strain duplication. Ten strains were susceptible to vancomycin (minimal inhibitory concentration [MIC] < 2 mg/l) and 10 were resistant to vancomycin (MIC > 400 mg/l). Vancomycin at 1/2 MIC, quinupristin/dalfopristin at 1/4 MIC and their combination, except for a tube control, was added to 10 ml trypticase soy broth tubes which were planted with the respective 24-h trypticase soy broth cultures. The products of incubation were sampled periodically throughout 24 h for gram stain and electron microscopy. Cell size was measured on photographs at 20,000x final magnification and results were statistically analyzed. The cells of all strains of Enterococcus faecium exposed for 12 h to quinupristin/dalfopristin were comparable in size to the control, Most cells, however, showed areas of low density of ribosome in the center of the cells. The cells of Enterococcus faecium resistant to vancomycin exposed to vancomycin were larger than the controls with means of 1.96 micron -2.07 micron versus 1.16 micron (p < 0.001); these cells consisted of individual organisms connected by wide cross walls of abnormal fibrous structure. Enterococcus faecium sensitive to vancomycin exposed to vancomycin remained comparable to the control. The combination of quinupristin/dalfopristin plus vancomycin produced large cells with multiple abnormal cross walls in both vancomycin-resistant and vancomycin-sensitive Enterococcus faecium. The addition of quinupristin/dalfopristin to vancomycin appears to modify the vancomycin-susceptible strains to respond to vancomycin in the same manner as do the vancomycin-resistant organisms.

Anti-Bacterial Agents↗

Microbiological features of vancomycin in the 21st century: minimum inhibitory concentration creep, bactericidal/static activity, and applied breakpoints to predict clinical outcomes or detect resistant strains.

The results of vancomycin susceptibility tests document that the drug continues to have activity against a wide variety of gram-positive pathogens. The subsequent emergence of vancomycin-resistant enterococci, the persistent failure of vancomycin therapy against strains tested as susceptible, and the more recent discoveries of vancomycin-intermediate or -resistant Staphylococcus aureus strains have compromised the use of vancomycin. Although analyses of surveillance studies fail to demonstrate "minimum inhibitory concentration creep" among populations of wild-type enterococci, streptococci, or staphylococci, enterococci with acquired resistance to vancomycin continue to evolve. The dominantly used automated commercial tests poorly recognize vancomycin-intermediate S. aureus, heteroresistant vancomycin-intermediate S. aureus, and vancomycin-resistant S. aureus isolates, which necessitates the use of expensive supplemental screening tests. Monitoring for appropriate serum levels of vancomycin and determinations of the bactericidal activity of vancomycin appear to best predict clinical outcome, thus creating additional diagnostic burdens for clinical laboratories. Improvements in current test methods with breakpoint criteria and expanded use of the vancomycin bactericidal assays to detect "tolerant" strains will be required to increase the value of vancomycin treatment or to refocus therapy toward the use of newer, alternative agents.

Anti-Bacterial Agents↗

Effects of prolonged vancomycin administration on methicillin-resistant Staphylococcus aureus (MRSA) in a patient with recurrent bacteraemia.

OBJECTIVES: To evaluate microbiological properties of methicillin-resistant Staphylococcus aureus (MRSA) during prolonged vancomycin therapy. METHODS: We evaluated vancomycin susceptibility and heteroresistance, accessory gene regulator (agr) function, autolysis, biofilm production and in vitro vancomycin killing in serial MRSA bloodstream isolates obtained over a 30 month period from a patient with a chronic endovascular infection. RESULTS: Despite the fact that the MRSA in this patient had the same genetic background as other clinical glycopeptide intermediate-resistant S. aureus (GISA) isolates, vancomycin administered for 9 months, maintaining serum concentrations >10 mg/L, did not select for GISA. Minimal changes in vancomycin susceptibility were detected using agar dilution and population analysis methods. We noted increases in delta haemolysin production, autolysis and the bactericidal effects of vancomycin in vitro against the MRSA obtained after prolonged vancomycin suppressive therapy was discontinued. CONCLUSIONS: Despite the lack of development of detectable resistance, MRSA exposed to vancomycin for prolonged periods may begin to develop vancomycin tolerance and decreased autolysis. In addition, suppression of agr function appears to end after vancomycin is stopped. Whether these changes are prerequisites for attenuated vancomycin efficacy and the development of glycopeptide resistance warrants further study. The development of vancomycin resistance may be more difficult under conditions where vancomycin serum concentrations are maintained >10 mg/L.

Anti-Bacterial Agents↗

Clinical failure of vancomycin treatment of Staphylococcus aureus infection in a tertiary care hospital in southern Brazil.

We describe a case of clinical failure of vancomycin treatment of Staphylococcus aureus infection and the laboratory characteristics of the organism in a tertiary referral university hospital in southern Brazil. An 11-month-old male patient presented with pneumonia and S. aureus was isolated from his respiratory tract. Initial treatment with oxacillin and gentamicin was ineffective. Vancomycin was added to the regimen as the patient worsened, but after the 30(th) day of vancomycin treatment S. aureus was isolated from the blood. This isolate had a minimum inhibitory concentration (MIC) for vancomycin of 4 mg/mL. After pre-incubation with vancomycin the isolate displayed an increase in the expression of vancomycin resistance and colonies grew in the presence of up to 12 mg/mL vancomycin. Based on these results, and considering that the patient had not responded to vancomycin, the isolate was considered to be S. aureus heteroresistant to vancomycin (SAHV). The SAHV proved to be similar, based on DNA macrorestriction analysis, to methicillin resistant S. aureus (MRSA) isolates from other patients in the hospital who had responded to vancomycin treatment. Our findings underline the need to improve methods in the clinical laboratory to detect the emergence of S. aureus clinically resistant to vancomycin. The fact that the isolate emerged in the blood 30 days after vancomycin treatment was initiated suggests that the organism was originally an MRSA that had acquired the ability to circumvent the mechanism of action of vancomycin.

Anti-Bacterial Agents↗

Enterococcal bacteremia in the surgical intensive care unit. Does vancomycin resistance affect mortality? The Johns Hopkins SICU Study Group.

OBJECTIVE: To determine the incidence and mortality rate associated with nosocomial bacteremia caused by vancomycin-resistant Enterococcus in a surgical intensive care unit. DESIGN: A retrospective study. SETTING: The surgical intensive care unit of a large university hospital tertiary referral center. PATIENTS: All patients in the surgical intensive care unit with a documented nosocomial bacteremia between January 1, 1992, and December 31, 1994. INTERVENTIONS: None. MAIN OUTCOME MEASURE: Mortality rate. RESULTS: Of the 134 nosocomial bacteremic episodes, 30.6% involved enterococci; 24.4% of the enterococci were resistant to vancomycin. Patients with vancomycin-resistant enterococcal bacteremia had a significantly longer hospital stay (mean +/- SD, 28 +/- 18 vs 12 +/- 10 days; P = .005) and were more likely to have been treated with vancomycin (70% vs 10.3%; P = .001) than patients with vancomycin-sensitive enterococcal bacteremia. The mortality (41.0%) associated with enterococcal bacteremia was similar to the overall bacteremic mortality (41.7%). There was no difference in episode-specific mortality associated with vancomycin-resistant enterococci (40%) vs vancomycin-sensitive enterococci (38.7%). Of the 4 deaths associated with vancomycin-resistant enterococcal bacteremia, only 2 occurred within 14 days of the bacteremia, as did 8 of 12 deaths associated with vancomycin-sensitive enterococcal bacteremia (P = .64). CONCLUSIONS: Enterococci were the most commonly isolated nosocomial blood-borne pathogens in the surgical intensive care unit. Nearly 25% of the enterococcal bacteremic episodes were resistant to vancomycin. Vancomycin-resistant Enterococcus is associated with a prolonged hospital stay and with vancomycin use. Nevertheless, vancomycin resistance itself does not increase the mortality rate associated with enterococcal bacteremia.

Adult↗

Effects of fosfomycin and imipenem/cilastatin on nephrotoxicity and renal excretion of vancomycin in rats.

PURPOSE: The effects of fosfomycin and imipenem/cilastatin on the nephrotoxicity of vancomycin were studied in rats, and those on the renal handling of vancomycin were also investigated in perfused kidneys. METHODS: The protective effects of fosfomycin and imipenem/cilastatin on vancomycin nephrotoxicity were evaluated by increases in plasma concentration of creatinine and urea nitrogen in rats. The urinary excretion of vancomycin was measured and analyzed kinetically in the perfused rat kidney. RESULTS: The nephrotoxicity induced by vancomycin (500 mg/kg, i.v.) was inhibited almost completely by co-administration of fosfomycin or imipenem/cilastatin. In the perfused rat kidney, the excretion ratio of vancomycin was less than those of p-aminohippurate and cimetidine, and greater than that of arbekacin, suggesting the secretion and reabsorption of vancomycin in renal tubules. The tissue/perfusate ratios of unbound vancomycin were not significantly changed by co-treatment with fosfomycin or imipenem/cilastatin. Imipenem/cilastatin significantly decreased the excretion ratio of vancomycin. Fosfomycin also decreased vancomycin excretion ratio, although this effect was not significant. CONCLUSIONS: The renal handling of vancomycin was different from those of organic anions and cations and an aminoglycoside antibiotic. The protective effects of fosfomycin and imipenem/cilastatin against the nephrotoxicity of vancomycin might be partly due to the change in renal handling of vancomycin, probably in its tubular secretion/ reabsorption, in rats.

Animals↗

Vancomycin dosage requirements among pediatric intensive care unit patients with normal renal function.

PURPOSE: The purpose of this study was to determine a vancomycin dosage regimen among pediatric intensive care unit (PICU) patients with normal renal function resulting in desired peak and trough serum concentration and to determine the predictability of vancomycin peak concentrations based on reported trough concentrations. MATERIALS AND METHODS: The medical records of all PICU patients who received vancomycin over a 12-month period were identified through a hospital computer search and were obtained from the hospital's Department of Medical Records. Demographic and laboratory data as well as the patient's vancomycin dosing history were recorded. Patients who lacked appropriately timed vancomycin peak and trough concentrations or who exhibited renal dysfunction were excluded from the study population. The optimal vancomycin dose and the predictability of peak concentrations based on trough concentrations were assessed. RESULTS: A total of 135 patients were identified as having received vancomycin therapy during their PICU hospitalization between June 1997 and June 1998. Fifty-nine patients were excluded due to renal dysfunction or inappropriate vancomycin concentrations resulting in 76 patients representing our study population. The initial mean dose of vancomycin was 47 mg/kg/day resulting in a mean peak and trough serum concentration of 19 and 6 microg/mL, respectively. A mean of 2.2 (range, 1 to 5) and 2.1 (range, 1 to 5) peak and trough serum concentrations were reported for each patient, respectively. A mean of 1.1 (range, 0 to 4) dosing changes per patient was noted resulting in a final mean dose of 60 mg/kg/day corresponding to a mean peak and trough serum concentration of 26 and 8 microg/mL, respectively. A vancomycin trough concentration >5 microg/mL was highly predictive for a corresponding peak concentration >20 microg/mL (P > .0001). Eighty percent of the trough concentrations <5 microg/mL were associated with peak concentrations <20 microg/mL, whereas 81% of trough concentrations >5 microg/mL were associated with corresponding peak concentrations >20 microg/mL. CONCLUSIONS: PICU patients required higher doses of vancomycin than are typically prescribed to achieve conventionally accepted peak and trough vancomycin serum concentrations. In the absence of renal impairment, we recommend an initial dosage regimen of 60 mg/kg/day divided every 8 hours. Vancomycin trough concentrations are highly predictive of corresponding peak concentrations and therefore may negate the need to obtain routine peak concentrations.

Anti-Bacterial Agents↗

Vancomycin control measures at a tertiary-care hospital: impact of interventions on volume and patterns of use.

OBJECTIVE: Evaluate vancomycin prescribing patterns in a tertiary-care hospital before and after interventions to decrease vancomycin utilization. DESIGN: Before/after analysis of interventions to limit vancomycin use. SETTING: 420-bed academic tertiary-care center. INTERVENTIONS: Educational efforts began August 10, 1994, and involved lectures to medical house staff followed by mailings to all physicians and posting of guidelines for vancomycin use on hospital information systems. Active interventions began November 15, 1994, and included automatic stop orders for vancomycin at 72 hours, alerts attached to the medical record, and, for 2 weeks only, computer alerts to physicians following each vancomycin order. Parenteral vancomycin use was estimated from the hospital pharmacy database of all medication orders. Records of a random sample of 344 patients receiving vancomycin between May 1, 1994, and April 30, 1995, were reviewed for an indication meeting published guidelines. RESULTS: Vancomycin prescribing decreased by 22% following interventions, from 8.5 to 6.8 courses per 100 discharges (P<.05). The estimated proportion of vancomycin ordered for an indication meeting published guidelines was 36.6% overall, with no significant change following interventions. However, during the 2 weeks that computer alerts were in place, 60% of vancomycin use was for an approved indication. CONCLUSIONS: Parenteral vancomycin prescribing decreased significantly following interventions, but the majority of orders still were not for an indication meeting published guidelines. Further improvement in the appropriateness of vancomycin prescribing potentially could be accomplished by more aggressive interventions, such as computer alerts, or by targeting specific aspects of prescribing patterns.

Algorithms↗

Timing of vancomycin prophylaxis for cardiac surgery patients and the risk of surgical site infections.

BACKGROUND: Increased incidence of methicillin-resistant Staphylococcus species has required some hospitals to choose vancomycin for surgical prophylaxis. Guidelines for appropriate timing of vancomycin prophylaxis state that the infusion should begin within 120 min before the first surgical incision. However, no studies have investigated the proper timing of vancomycin prophylaxis in relationship to surgical site infections (SSI). The objective of the present study was to assess the effect of vancomycin prophylaxis timing in relation to the first surgical incision on the incidence of SSI. METHODS: We prospectively monitored vancomycin prophylaxis timing and incidence of SSI in 2048 patients undergoing coronary bypass graft or valve replacement surgery. The timing of vancomycin was categorized into five groups based on the relation between the start of the infusion and the surgical cut time. Study hypotheses were tested using logistic analysis and further validated using a Heckman two-stage model. RESULTS: The incidence of SSI were lowest in the 176 patients given vancomycin between 16 and 60 min before the surgical incision (3.4%) compared with 15 patients given vancomycin between 0 and 15 min [26.7%; relative risk (RR): 7.8; 95% CI: 2.5-24.7], 888 patients given vancomycin between 61 and 120 min (7.7%; RR: 2.2; 95% CI: 0.99-5.09), 700 patients given vancomycin between 121 and 180 min (6.9%; RR: 2.0; 95% CI: 0.87-4.62) or 269 patients given vancomycin >180 min (7.8%; RR: 2.3; 95% CI: 0.94-5.56) (P = 0.0119 by chi(2) analysis). Stepwise logistic regression analysis and a Heckman two-stage model confirmed that vancomycin administration between 16 and 60 min before the first surgical incision was associated with the lowest incidence of SSI. CONCLUSIONS: Vancomycin administration within 16-60 min before the first surgical incision reduced the risk of SSI in cardiac surgery patients.

Aged↗

Vancomycin usage in central venous catheters in a neonatal intensive care unit.

BACKGROUND: We previously reported that vancomycin in hyperalimentation solution reduces catheter-related infections in the neonatal intensive care unit. Since June 1993 vancomycin (25 microg/ml) was routinely added to central venous catheter solutions, primarily hyperalimentation solution. Because the prophylactic use of vancomycin could lead to the emergence of resistant organisms, the decision to discontinue this practice was made in April of 1999. The use of vancomycin was reserved for documented infections with vancomycin-susceptible organisms. OBJECTIVE: To compare catheter longevity, rate of laboratory-confirmed blood stream infections and total vancomycin exposure between two 18-month periods before and after the cessation of prophylactic vancomycin use. METHODS: Data were evaluated for every neonate in whom a percutaneous central venous catheter was placed. RESULTS: There were 394 neonates enrolled. No statistically significant difference was identified between the two periods regarding the mean catheter days or number of catheters per patient. There was a higher rate of Gram-negative laboratory-confirmed blood stream infections during Period I in patients with percutaneous central venous catheters in place. There were more isolates of coagulase-negative staphylococci in Period II, resulting in more frequent vancomycin therapy institution and thus an overall increase in the amount of vancomycin used in that period CONCLUSION: Discontinuing the use of prophylactic vancomycin resulted in exposure of fewer neonates to vancomycin but a higher total amount of vancomycin used. The impact of low dose widespread exposure to vancomycin vs. high dose limited exposure on the microbiologic flora in the neonatal intensive care unit should be further examined.

Anti-Bacterial Agents↗

Gastrointestinal tract colonization with vancomycin-resistant Enterococcus faecium in an animal model.

Vancomycin-resistant enterococci have become important nosocomial pathogens in many institutions. The gastrointestinal tract of susceptible hosts serves as the likely reservoir from which the organism is disseminated. To study factors promoting colonization and the efficacy of decontamination therapy with antimicrobial agents, a model of gastrointestinal colonization with vancomycin-resistant Enterococcus faecium was developed in CF1 mice. At baseline, all animals were colonized with non-vancomycin-resistant enterococci (5.0 log10 CFU/g), but vancomycin-resistant organisms were not detectable. Following gastric inoculation with 5 x 10(8) CFU of a clinical isolate of vancomycin-resistant E. faecium, the strain transiently colonized the gastrointestinal tract of 100% of mice but was undetectable by Day 14 (< or = 2.7 log10 mean CFU/g). In animals who received 5 mg of streptomycin per ml or 250 micrograms of vancomycin per ml in drinking water, colonization with the organism occurred at significantly higher bacterial counts than in controls at 7 days following inoculation (9.4 for vancomycin, 9.2 for streptomycin, and 5.1 log10 mean CFU/g for controls; P < 0.05). Fecal concentrations of vancomycin-resistant E. faecium persisted at high counts through Day 22 in mice receiving these antibiotics, but low counts were also still detected in 3 of 10 control animals. In mice with previously established vancomycin-resistant E. faecium colonization, oral administration of ramoplanin, a lipoglycodepsipeptide to which the strain was susceptible, suppressed growth of all enterococci in feces, including the vancomycin-resistant strain after 7 days of therapy (< or = 3.1 and < or = 3.3 log10 mean CFU/g for vancomycin and streptomycin groups, respectively). All mice had a recurrence of colonization with vancomycin-resistant E. faecium after the ramoplanin was discontinued. In summary, this animal model demonstrates the importance of antibiotics in predisposing to gastrointestinal colonization with vancomycin-resistant Enterococcus spp. Although treatment with ramoplanin temporarily suppressed the organism, recurrence of colonization due to relapse or reinfection occurred.

Administration, Oral↗

Removal of vancomycin during plasmapheresis.

OBJECTIVE: To examine the removal of vancomycin during plasmapheresis, determine whether drug administration should be withheld prior to or a supplemental dose given after the procedure, and determine whether a redistribution phenomenon in vancomycin serum concentrations occurs after plasmapheresis. DESIGN: Prospective, cohort study. SETTING: An 800-bed, tertiary-care, teaching hospital. PATIENTS: Twelve patients receiving vancomycin as prescribed who were also undergoing therapeutic plasmapheresis. METHODS: Blood samples for determination of vancomycin concentrations were obtained from each patient immediately before, during, immediately after, and 2 hours after plasmapheresis. Vancomycin concentration in plasma removed by plasmapheresis and volume of plasma removed were measured. Patient-specific pharmacokinetic parameters were determined for each patient using serum concentration data and a one-compartment model. Percent of drug removed by plasmapheresis and percent increase in vancomycin total clearance secondary to plasmapheresis were calculated. RESULTS: A mean of 6.3% of the total body store of vancomycin was removed by plasmapheresis. Vancomycin clearance during plasmapheresis averaged 1.6 L/h, which was an average increase of 285% in the total clearance of vancomycin from the body. Nine of 10 patients had a higher observed vancomycin concentration 2 hours after plasmapheresis than that predicted by degrading the concentration observed immediately after the procedure, suggesting that redistribution in serum concentrations occurs after the procedure. CONCLUSIONS: A single one-volume plasmapheresis does not remove a clinically important amount of vancomycin; therefore, supplemental dosing after the procedure is not necessary. A redistribution phenomenon in vancomycin concentrations appears to exist after plasmapheresis. Further study is needed to determine how long the redistribution phase lasts and when vancomycin concentrations should be measured after plasmapheresis.

Adolescent↗

Probable vancomycin-induced neutropenia.

OBJECTIVE: To report a case of vancomycin-induced neutropenia and provide a review of the literature. CASE SUMMARY: A 64-year-old white man was treated with intravenous vancomycin 1.5 g/day for finger osteomyelitis. He developed neutropenia after 21 days of vancomycin therapy. The absolute neutrophil count reached a nadir of 418 cells/mm(3) during vancomycin use and returned to normal 7 days after its discontinuation. The eosinophil count was also elevated during the neutropenic episode and probably related to vancomycin. Based on the Naranjo probability scale, the reaction was probably related to vancomycin use. DISCUSSION: Articles describing cases of vancomycin-induced neutropenia were identified. All patients developed neutropenia as a result of vancomycin therapy >/=12 days. Neutrophil counts generally increased following discontinuation of vancomycin. One article reported successful resolution of neutropenia and infection by switching the patient's therapy to the structurally related antibiotic agent teicoplanin. Other patients were continued on vancomycin therapy, and neutropenia was treated with moderate to good success with filgrastim. Rechallenge was not generally attempted. The mechanism of neutropenia caused by vancomycin is unclear, but appears to be immune-mediated. CONCLUSIONS: Vancomycin therapy should not be prolonged unless absolutely necessary, and therapy should be reserved for patients with clear indications for the drug, such as infections due to gram-positive organisms resistant to other therapies. Patients should have periodic assessment of white blood cell and neutrophil counts with consideration to discontinue vancomycin if neutropenia develops.

Adult↗