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Individualized adjustment of vancomycin dosage: comparison with two dosage nomograms.

An individualized method of vancomycin dosage adjustment using steady-state serum concentrations was assessed in 50 patients (86 sets of vancomycin serum concentrations). The predictive accuracy of this method was compared with that of two published nomograms (Moellering, Matzke). Peak and trough serum concentrations predicted from previously drawn vancomycin serum concentrations (individualized method) using a one-compartment pharmacokinetic model were compared with measured steady-state peak and trough serum concentrations. Predicted peak and trough serum concentrations were also generated for both the Moellering and Matzke nomograms by using the elimination rate constant derived from each of the respective nomograms and the fixed volume of distribution (0.9 L/kg) assumed by the nomograms, and the actual administered vancomycin dose and dosage interval. These predicted concentrations were also compared with the measured peak and trough concentrations. Statistical measures of bias and precision indicated that the individualized method of dosage adjustment more closely predicted vancomycin serum concentrations following a dosage change than did either of the nomograms. Overall, the Moellering nomogram was the least accurate of the three methods in predicting vancomycin serum concentrations, and this nomogram should not be used to titrate vancomycin dosages in a clinical setting. Adjustment of vancomycin dosages should be individualized based on pharmacokinetic data derived from measured serum concentrations. In situations where quantitative analysis of vancomycin concentrations is not available, the Matzke nomogram appears to be a reasonable method of adjusting vancomycin dosages.

Adult↗

Inhibition of vancomycin-induced nephrotoxicity by targeting superoxide dismutase to renal proximal tubule cells in the rat.

Vancomycin, a glycopeptide antibiotic, has a broad spectrum against methicillin-resistant Staphylococcus aureus (MRSA). Because vancomycin induces renal dysfunction, the dose and the duration of its administration are limited. The mechanism of vancomycin-induced renal dysfunction is not known. We recently synthesized a hexamethylenediamine-conjugated cationic superoxide dismutase (AH-SOD) which rapidly accumulates in renal proximal tubule cells and inhibits oxidative injury of the kidney. The present work reports the protective effects of AH-SOD against vancomycin-induced renal dysfunction. Male Wistar rats (200-210 g) were intraperitoneally administered with either 200 or 400 mg/kg of vancomycin twice a day for 7 days. Either 5 mg/kg/day AH-SOD or saline was subcutaneously injected 5 min before every vancomycin injection. Biochemical analysis revealed that plasma levels of blood urea nitrogen and creatinine increased significantly in vancomycin-treated group by an AH-SOD-inhibitable mechanism. Histological examination revealed that vancomycin also elicited a marked destruction of glomeruli and necrosis of proximal tubule by an AH-SOD inhibitable mechanism. These results suggest that oxidative stress underlies the pathogenesis of vancomycin-induced nephrotoxicity and that targeting SOD and/or related antioxidants to renal proximal tubule cells might permit the administration of higher doses of vancomycin sufficient for eradication of MRSA without causing renal injury.

Animals↗

The clinical pharmacology of vancomycin in seriously ill preterm infants.

The first dose and steady state pharmacokinetics of vancomycin were studied in 16 seriously ill preterm infants (less than or equal to 34 wk gestational age) with documented Staphylococcus epidermidis infections. One infant was dropped from the study due to peripheral flushing occurring during administration of the first dose. Individual vancomycin doses ranged from 9.8 to 17.8 mg/kg and were infused intravenously over 15-37 min. Fifteen infants were studied after the first dose of vancomycin, whereas only 12 of these 15 were able to be studied under steady state conditions. Vancomycin half-life, steady-state volume of distribution, and body clearance averaged 6.0 h, 0.53 liter/kg, and 1.22 ml/min after the first dose and only slight differences were observed in these parameter estimates under steady state conditions. However, substantial accumulation of vancomycin in serum was observed with multiple dosing. Complete 8-h urine collections were possible in 12 of 15 premature infants after the first dose of vancomycin. Overall, 44.6% of the dose was recovered in the urine with a corresponding vancomycin renal ClR averaging 0.88 ml/min. Vancomycin body Cl correlated directly with renal ClR (r = 0.88, p less than 0.001) and body weight (r = 0.8, p less than 0.001). Vancomycin pharmacokinetic parameter estimates Vdss and Cl correlated directly with body weight, surface area, and postconceptional age. No significant relationships were observed between these parameter estimates and gestational age or postnatal age. Fourteen of 15 infants were treated successfully for their underlying infectious process. These data support the use of lower doses of vancomycin than previously recommended for the treatment of preterm infants.

Female↗

Effects of fosfomycin and imipenem-cilastatin on the nephrotoxicity of vancomycin and cisplatin in rats.

The nephrotoxicity of vancomycin and cisplatin and the protective effects of fosfomycin and imipenem-cilastatin on renal function have been studied in rats. The renal clearance of vancomycin after the induction of renal dysfunction was also evaluated by calculating the glomerular filtration rate (GFR) and its secretory clearance. Plasma concentrations of creatinine and urea nitrogen increased dose-dependently after vancomycin injection. No such increases were observed after co-treatment with fosfomycin or imipenem-cilastatin. Changes of N-acetyl-beta-D-glucosaminidase activity in the urine of vancomycin-treated rats were not remarkable compared with those in cisplatin-treated animals. The reduced renal clearance of vancomycin in rats with acute renal failure induced by vancomycin was because of a decrease in both GFR and secretory clearance. However, the changes in GFR and secretory clearance were not proportional-the change in GFR was more pronounced than that of secretory clearance in the experimental groups. In addition, the renal clearance of vancomycin was maintained at the control level after co-administration of fosfomycin or imipenem-cilastatin with vancomycin. These results suggest that vancomycin impairs glomerular filtration more markedly than renal tubular function as compared with cisplatin. Co-administration with fosfomycin or imipenem-cilastatin confers significant protection against the nephrotoxic effects of vancomycin.

Acetylglucosaminidase↗

Predictive performance of a vancomycin-aminoglycoside population model.

OBJECTIVE: To evaluate the Wragge-Cooper method of predicting vancomycin serum concentrations utilizing knowledge of aminoglycoside pharmacokinetic parameters in general medicine and intensive care unit populations, and to develop a revised model if necessary. DESIGN: This study consists of two phases evaluating 50 adults receiving concurrent vancomycin and aminoglycoside therapy. Patients were identified by a retrospective review of medical records. Bayesian analysis of measured serum aminoglycoside and vancomycin concentrations was performed to determine the individualized pharmacokinetic parameters. Phase I of the study tested the predictive performance of a published model incorporating aminoglycoside elimination (Wragge-Cooper) in 25 patients (group 1), and a revised model was developed. Phase II determined the predictive performance of the revised model (revised) and its performance relative to the Wragge-Cooper model and a traditional model incorporating estimated creatinine clearance (traditional) in an additional 25 patients (group 2). SETTING: Two tertiary care university teaching hospitals. MAIN OUTCOME MEASURES: The predictive performance of the models was determined by comparing predicted with measured vancomycin serum concentrations. Bias and precision were evaluated by calculating the mean prediction error (ME) and mean absolute error (MAE), respectively. Linear regression was performed to determine relationships between parameters. RESULTS: The Wragge-Cooper model consistently underpredicts vancomycin serum concentrations in general medicine and intensive care unit populations (ME = -5.18, MAE = 6.63). Relative predictive performance analysis indicates no significant difference in bias or precision between the traditional and Wragge-Cooper models (delta ME 1.17, delta MAE -0.80). Regression analysis of individualized aminoglycoside and vancomycin elimination derived from patients in group 1 reveals the following relationship: vancomycin k10 (1/h) = 0.081 + 1.037ke,amg, r = 0.73. The revised model is significantly less biased and more precise compared with the traditional model (delta ME -4.48; delta MAE 1.22), and is significantly less biased (delta ME 4.29) but no more precise than the Wragge-Cooper model (delta MAE -0.58), using patients from group 2. CONCLUSIONS: The revised model is an accurate method of predicting vancomycin serum concentrations in both general medicine and intensive care unit populations. Use of this model enables individualization of vancomycin dosage in patients receiving concurrent aminoglycoside therapy and minimizes vancomycin serum concentration monitoring.

Adult↗

Desensitization protocols for vancomycin hypersensitivity.

OBJECTIVE: To discuss the pathophysiology of vancomycin-induced immediate hypersensitivity reactions, review the process of vancomycin desensitization, and provide specific directions for ordering and preparing rapid and slow desensitization protocols. DATA SOURCES: A MEDLINE search (1966-February 2001) of English-language literature pertaining to vancomycin desensitization and hypersensitivity reactions was performed. Tertiary sources were also used. DATA EXTRACTION: Published clinical studies and case reports. DATA SYNTHESIS: The pathophysiology of vancomycin-induced hypersensitivity reactions is discussed along with the procedure of vancomycin desensitization. Desensitization should be considered in Red Man syndrome (RMS) that does not respond to the usual treatment measures, and in vancomycin-induced anaphylaxis. Rapid desensitization is preferred as it is effective in the majority of patients and enables therapeutic dosing of vancomycin within 24 hours. In patients who fail rapid desensitization, a slow desensitization protocol may be tried. CONCLUSIONS: Vancomycin-induced immediate hypersensitivity reactions include RMS and anaphylaxis. Vancomycin desensitization should be considered for severe RMS reactions not responding to usual measures and in anaphylactic reactions to vancomycin, when substitution of another antbiotic is not feasible.

Anti-Bacterial Agents↗

Sensorineural hearing loss associated with intrathecal vancomycin.

OBJECTIVE: To report a case of nonreversible bilateral sensorineural hearing loss resulting from administration of intrathecal vancomycin. CASE SUMMARY: A 63-year-old white man with newly diagnosed pre-B-cell acute lymphocytic leukemia developed Corynebacterium jeikeium meningitis associated with an Ommaya reservoir. The patient was treated with intravenous vancomycin for several days without symptomatic improvement, and intrathecal vancomycin was added to the treatment regimen. Difficulty in the patient's hearing was noted after the first intrathecal dose and he experienced complete hearing loss after the second intrathecal dose. An audiogram was performed and the patient was diagnosed with cranial nerve VIII bilateral sensorineural hearing loss. The Ommaya reservoir was removed and the patient was successfully treated with linezolid. DISCUSSION: Ototoxicity with intravenous vancomycin has been documented in multiple case reports, but this adverse effect has not been reported with intrathecal vancomycin. Cerebrospinal fluid vancomycin concentrations were not measured in our patient, but there was 1 documented occurrence of supratherapeutic serum vancomycin concentrations. Other drug-related causes of ototoxicity were evaluated and intrathecal vancomycin-induced ototoxicity was considered to be possible according to the Naranjo probability scale. CONCLUSIONS: The strong temporal relationship that was seen in this case suggests the possibility of an association between administration of intrathecal vancomycin and hearing loss. Healthcare providers should consider the potential for this adverse reaction with the intrathecal route of vancomycin administration.

Aminoglycosides↗

Early vancomycin therapy and adverse outcomes in children with pneumococcal meningitis.

BACKGROUND: Experts recommend that children with suspected pneumococcal meningitis should empirically receive combination therapy with vancomycin plus either ceftriaxone or cefotaxime. The relationship between timing of the first dose of vancomycin relative to other antibiotics and outcome in these children, however, has not been addressed. METHODS: Medical records of children with pneumococcal meningitis at a single institution from 1991-2001 were retrospectively reviewed. Vancomycin start time was defined as the number of hours from initiation of cefotaxime or ceftriaxone therapy until the administration of vancomycin therapy. Outcome variables were death, sensorineural hearing loss, and other neurologic deficits at discharge. Associations between independent variables and outcome variables were assessed in univariate and multiple logistic regression analyses. RESULTS: Of 114 subjects, 109 received empiric vancomycin therapy in combination with cefotaxime or ceftriaxone. Ten subjects (9%) died, whereas 37 (55%) of 67 survivors who underwent audiometry had documented hearing loss, and 14 (13%) of 104 survivors were discharged with other neurologic deficits. Subjects with hearing loss had a significantly shorter median vancomycin start time than did those with normal hearing (<1 vs 4 hours). Vancomycin start time was not significantly associated with death or other neurologic deficits in univariate or multivariate analyses. Multiple logistic regression revealed that hearing loss was independently associated with vancomycin start time <2 hours, blood leukocyte count <15000/microL, and cerebrospinal fluid glucose concentration <30 mg/dL. CONCLUSIONS: Early empiric vancomycin therapy was not clinically beneficial in children with pneumococcal meningitis but was associated with a substantially increased risk of hearing loss. It may be prudent to consider delaying the first dose of vancomycin therapy until > or =2 hours after the first dose of parenteral cephalosporin in children beginning therapy for suspected or confirmed pneumococcal meningitis.

Anti-Bacterial Agents↗

Vancomycin therapy for serious staphylococcal infections in chronic hemodialysis patients.

Vancomycin therapy during 7 episodes of serious staphylococcal infections in chronic hemodialysis patients was monitored by a sensitive bioassay technique. One gm of vancomycin was given during dialysis at a mean dosage interval of 7 days for a mean duration of 48 days. Serum peak and trough vancomycin levels were monitored during therapy. Accumulation of vancomycin occurred in 1 patient on prolonged therapy; progressive rising through levels required a reduction in vancomycin dosage. Pre and post-dialysis vancomycin levels in one patient were unchanged. Vancomycin was effective in eradication of all staphylococcal infections and bacteremias. Three A-V shunt infections required surgical revision; 2 A-V fistula infections were salvaged with vancomycin therapy alone. We conclude that 1 gm vancomycin every 7 days is an effective regimen for serious staphylococcal infections in chronic hemodialysis patients. Monitoring of vancomycin levels insures maintenance of adequate levels and prevents toxic accumulation.

Aged↗

An active surveillance study of vancomycin-resistant Enterococcus in Queen Elizabeth Hospital, Hong Kong.

OBJECTIVE: To assess the rate of faecal vancomycin-resistant Enterococcus colonisation in high-risk patients in a regional hospital. DESIGN: Prospective observational surveillance study. SETTING: Queen Elizabeth Hospital, Hong Kong. PATIENTS: From September 2001 to December 2002, stool samples from patients in the intensive care unit and patients in whom Clostridium difficile testing was requested were used for study using a broth enrichment method. MAIN OUTCOME MEASURES: Number of faecal vancomycin-resistant Enterococcus colonisation. RESULTS: A total of 2414 cultures from 1792 patients were tested for vancomycin-resistant Enterococcus using a broth enrichment method. Only one (0.06%) patient was found to harbour a vancomycin-resistant Enterococcus faecalis in the gastro-intestinal tract. Surveillance cultures from contacts of the case revealed another six with vancomycin-resistant Enterococcus faecalis. Vancomycin-resistant Enterococcus faecalis was also later reported from a clinical specimen (catheterized urine) of another patient. They were all epidemiologically linked to the index case. Mean inhibitory concentrations of vancomycin and teicoplanin were determined to be higher than 256 and 0.5 microgram/mL, respectively by E-test for all the vancomycin-resistant Enterococcus isolates. Polymerase chain reaction analysis confirmed the presence of vanB genes and the result was in line with the phenotype. Pulsed-field gel electrophoresis confirmed a monoclonal vancomycin-resistant Enterococcus outbreak. Strict infection control measures recommended by the Centers for Disease Control and Prevention were followed and the outbreak was successfully controlled. CONCLUSION: Vancomycin-resistant Enterococcus colonisation is rare, but present among high-risk patients in our hospital. A routine surveillance programme should be implemented that will enable early case detection and prompt initiation of infection control measures to prevent the emergence of an endemic situation.

Enterococcus faecalis↗

Vancomycin cerebrospinal fluid concentrations after intravenous administration in premature infants.

OBJECTIVE: Staphylococcal species are the most common cause of nosocomial infections in the neonate. Because of staphylococcal resistance patterns, vancomycin has become the drug of choice for treatment. Although the blood stream is the usual site of infection, premature infants are at increased risk for the development of meningitis. The aim of this study was to determine vancomycin cerebrospinal fluid (CSF) concentration and penetration following intravenous (IV) administration in critically ill premature infants. STUDY DESIGN: A multiple-dose, open-label, case series was performed at a level III neonatal intensive care unit in a university teaching hospital. Three critically ill premature infants, 26 to 31 weeks of gestation requiring a course of IV vancomycin for suspected or proved sepsis were studied. Vancomycin was administered intravenously at 20 mg/kg, every 18 to 24 hours over 60 minutes. Serum and CSF vancomycin concentrations were obtained and pharmacokinetic analysis and CSF penetration was calculated. RESULTS: Serum vancomycin pharmacokinetics were consistent with those previously reported. CSF vancomycin concentrations ranged from 2.2 to 5.6 micrograms/ml and the calculated vancomycin CSF penetration ranged from 26% to 68%. CONCLUSIONS: CSF penetration of vancomycin after IV administration was much higher than that reported in older infants and children. This higher penetration may improve clinical outcomes in neonates with central nervous system infections. These data should be encouraging to clinicians who choose to use IV vancomycin for neonatal meningitis.

Anti-Bacterial Agents↗

Narasin used as a feed additive in conventional rearing of broilers can co-select for vancomycin-resistant Enterococcus faecium through the NarAB ionophore resistance mechanisms.

OBJECTIVES: To investigate the role of the NarAB resistance mechanism in the selection of vancomycin-resistant Enterococcus faecium (VREfm) and assess the impact of ionophore feed additives, particularly narasin, on the emergence of VREfm in broiler chickens. MATERIALS AND METHODS: Three isogenic E. faecium strains with different antimicrobial resistance determinants were created by mutagenesis and conjugation and used in a controlled animal experiment. Ross 308 broiler chickens were inoculated with either a rifampicin-resistant, a rifampicin- and vancomycin-resistant or a rifampicin-, vancomycin- and narasin-resistant strain and fed diets supplemented with selected ionophores. Bacterial populations were analysed on selective Slanetz and Bartley agar to determine the presence and selection of VREfm and other vancomycin-resistant species. Bacterial inoculation strains and isolates were whole genome sequenced for species identification and to identify genetic resistance mechanisms. RESULTS: Narasin was shown to select for VREfm in broilers, with NarAB being essential for co-selection. Intrinsically vancomycin-resistant Pediococcus acidilactici and Enterococcus gallinarum were identified as part of the broilers' vancomycin-resistant resident microbiota. Notably, among the P. acidilactici isolates that were susceptibility tested, strains resistant to both vancomycin and narasin were only found in broilers fed narasin, supporting that narasin promotes the growth of narasin-resistant populations. CONCLUSION: Narasin use in broiler feed can co-select for vancomycin-resistant bacteria, including VREfm, through the NarAB mechanism. These findings emphasize the concerns associated with the use of particular ionophores in poultry and suggest that vancomycin and narasin resistance may be more widespread in the broiler microbiota than previously recognized. Further research is needed to understand the implications for antimicrobial resistance and human health.

Animals↗

MIC distribution and inoculum effect of LY333328: a study of vancomycin-susceptible and VanA-type and VanC-type enterococci obtained from intensive care unit patient surveillance cultures.

OBJECTIVE: To determine the in vitro activity and inoculum effect of LY333328, a semisynthetic glycopeptide, against vancomycin-susceptible and vancomycin-resistant enterococcal isolates. METHODS: One hundred and seventy-six enterococcal isolates (117 vancomycin-susceptible, 29 VanA-type and 30 VanC-type isolates) obtained from surveillance cultures of 139 intensive care unit patients were studied by the standard agar dilution method. Vancomycin resistance determinants were characterized by PCR. RESULTS: The activity of LY333328 was comparable (MIC range, 0.1-2 mg/L) to those of vancomycin (0.1-4 mg/L) and teicoplanin (0.06-1 mg/L) for vancomycin-susceptible isolates. LY333328 was more active (0.1-8 mg/L) than vancomycin (256 to >1024 mg/L) and teicoplanin (32-512 mg/L) against VanA-type isolates, and similar (0.2-1 mg/L) to teicoplanin (0.1-0.5 mg/L) against VanC-type isolates. The MIC distribution of LY333328 displayed a narrower range than that of vancomycin, with no clear distinction between susceptible and resistant populations. The increment in the inoculum size, from 104 to 106 CFU/spot, of susceptible isolates increased the MIC values of LY333328, vancomycin and teicoplanin by factors of 11.4, 1.6 and 3.8, respectively. The corresponding factors for LY333328 for VanA-type and VanC-type isolates were 3.5 and 6.4, respectively. CONCLUSIONS: LY333328 displays an excellent in vitro activity against vancomycin-susceptible and -resistant enterococci. Nevertheless, the inoculum size used in susceptibility tests should be carefully controlled.

Journal Article↗

Vancomycin Use in a Brazilian University Hospital: Comparison With Hospital Infection Control Practices Advisory Committee Guidelines.

Emergence of vancomycin-resistant bacteria is of concern. In an effort to reduce this danger, guidelines to ensure proper prescribing of vancomycin have been proposed by the Hospital Infections Control Practices Advisory Committee (HICPAC) of the Centers for Disease Control. To evaluate use of vancomycin at Uberlândia University Hospital in Brazil, each patient who received the drug during a 10 month period had nasal and rectal cultures done within 48 hours of initiation of therapy, then at weekly intervals until discharge. Their hospital records were reviewed to obtain demographic and clinical data, and each was scored as to whether or not HICPAC guidelines were followed. Thirty-one patients were enrolled in the study; 15 of whom had been approved for vancomycin by the hospital infectious diseases (ID) specialist, and 16 who had the drug given without approval. During the study, 4 strains of VRE (Vancomycin Resistant Knterococci) and 8 strains of MRSA(Methicillin Resistant S.aureus) emerged. The use of vancomycin did not follow HICPAC guidelines in 21/31 patients (68%), in that the drug was prescribed empirically without prior documentation of need. This occurred 13 of 16 (81%) times when no approval by an ID specialist was provided, and 8 of 15 times (53%)after approval by a ID specialist. In 6 of 8 patients (75%), empirical use of vancomycin was approved by an ID specialist in patients with severe illnesses, each of whom subsequently died. This could be considered appropriate use, although outside the guidelines. Only 3 of 13 patients (23%) were severely ill when vancomycin was used without ID approval. Most of the vancomycin use which did not follow HICPAC guidelines occurred on the medicine service in patients moderately ill with pneumonia or bacteremia, and associated with invasive procedures. We conclude that there is a special need to improve education regarding the appropriate use of vancomycin and to increase review of its use by an ID specialist, particularly on medicine services of our hospital.

Journal Article↗

Vancomycin resistance in Staphylococcus aureus.

Vancomycin resistance in enterococci, predominantly Enterococcus faecium, developed in the latter half of the 1980s, and the long anticipated development of vancomycin resistance in Staphylococcus aureus has now occurred. A number of vancomycin-intermediate strains have been described, and these strains have abnormal, thickened cell walls in the presence of vancomycin. Two mechanisms of resistance have been described in the strains: affinity trapping of vancomycin molecules by cell wall monomers and clogging of the outer layers of peptidoglycan by bound vancomycin molecules, and change in the structure or metabolism of teichoic acids. Of more serious concern has been the description in 2002 of two patients with vancomycin-resistant S aureus infections. In one instance, the patient had skin lesions coinfected with vancomycin resistant, vanA genotype, E faecalis, and the vanA resistance genes could have been transferred to the S aureus strain. Expression of resistance was high in one S aureus strain and low in the other, making detection more challenging in the latter instance. These developments are of great concern, and every effort should be made to prevent further development and spread of vancomycin resistance in staphylococci.

Anti-Bacterial Agents↗

Characterisation of laboratory-generated vancomycin intermediate resistant Staphylococcus aureus strains.

Vancomycin has been the drug of choice for 30 years for the treatment of methicillin-resistant Staphylococcus aureus (MRSA). Emergence of decreased vancomycin susceptibility in MRSA strains presents a significant clinical problem with few therapeutic options. This study was performed to generate and characterise S. aureus strains with reduced susceptibility to vancomycin. Eighteen S. aureus strains were subjected to serial passaging on vancomycin to generate vancomycin intermediate resistant S. aureus (VISA) strains. Minimum inhibitory concentration (MIC) determination was performed for the parent and the passaged cultures with 13 different antibiotics. The strains were tested by the following five methods: simplified population analysis; CDC method; modified vancomycin agar screen; population analysis profile (PAP); and modified population analysis (PAP-area under the curve (AUC) ratio). Phenotypic changes such as doubling time, synergy with beta-lactam antibiotics and effect on norA efflux pumps were also studied for these strains. The result indicated that 8 VISA mutants (vancomycin MICs, 8-16 microg/mL) were generated in vitro from the 18 S. aureus strains. The CDC and modified agar methods proved to be the most sensitive and specific methods for detection of VISA strains. The PAP for all the VISA strains ranged from 12 microg/mL to > 16 microg/mL, with a PAP-AUC ratio of > 1.3. All mutants showed increased doubling time compared with their parent isolate. Synergism of the vancomycin and beta-lactam combinations was observed for all methicillin-resistant mutants. Upon acquisition of vancomycin resistance, a few mutants showed decreased oxacillin resistance. Two VISA strains were chosen for molecular characterisation of the mecA gene and one mutant showed genotypic changes with deletion of mecA. Loss of norA efflux pumps leading to fluoroquinolone sensitivity was also observed in four mutants.

Laboratories↗

Validation of Vitek version 7.01 software for testing staphylococci against vancomycin.

We tested 143 isolates of staphylococci with vancomycin by the National Committee for Clinical Laboratory Standards broth microdilution (BMD) reference method and compared the results to those generated using the Vitek automated system (GPS-105 and GPS-107 cards and version 7.01 software). For ten isolates, the vancomycin MICs by BMD were 8 microg/ml. By Vitek, the vancomycin MICs ranged from 2 to 16 microg/ml. Vancomycin MICs of > or =32 microg/ml were reported for two additional isolates by Vitek; however, the MICs decreased to < or =0.5 microg/ml on retesting. By BMD, the vancomycin MICs for both isolates were 1 microg/ml. While the modal vancomycin MIC results by BMD for S. aureus and coagulase-negative staphylococci (CoNS) were both 1 microg/ml, Vitek results showed a mode of < or =0.5 microg/ml for S. aureus, and a mode of 2 microg/ml for CoNS. Vitek did not report vancomycin MICs of 1 or 4 microg/ml for any of the isolates tested. While the sensitivity of detecting staphylococci with reduced susceptibility to vancomycin appears to be improved with Vitek version 7.01 software, when compared to earlier software versions, laboratories may notice an overall shift in MIC data toward higher vancomycin MICs, although for the most part, this does not affect the categorical interpretations of the results.

Anti-Bacterial Agents↗

Vancomycin-resistant Staphylococcus aureus: a new model of antibiotic resistance.

Vancomycin has been the most reliable therapeutic agent against infections caused by meticillin-resistant Staphylococcus aureus (MRSA). However, in 1996 the first MRSA to acquire resistance to vancomycin, was isolated from a Japanese patient. The patient had contracted a post-operative wound infection that was refractory to long-term vancomycin therapy. Subsequent isolation of several vancomycin resistant S. aureus (VRSA) strains from USA, France, Korea, South Africa, and Brazil has confirmed that emergence of vancomycin resistance in S aureus is a global issue. A certain group of S. aureus, designated hetero-VRSA, frequently generate VRSA upon exposure to vancomycin, and are associated with infections that are potentially refractory to vancomycin therapy. Presence of hetero-VRSA may be an important indicator of the insidious decline of the clinical effectiveness of vancomycin in the hospitals. Vancomycin resistance is acquired by mutation and thickening of cell wall due to accumulation of excess amounts of peptidoglycan. This seems to be a common resistance mechanism for all VRSA strains isolated in the world so far.

Anti-Bacterial Agents↗