Activity of DU-6859a, ciprofloxacin, ofloxacin, levofloxacin, sparfloxacin and OPC-17116 against 112 penicillin-susceptible and -resistant pneumococci.
Explore the source record for details and available documents.
Biomedical subjects
Publications and source records attributed to M R Jacobs.
Explore the source record for details and available documents.
The E test was used to determine the susceptibility of 209 anaerobic Gram-negative rods to ampicillin, amoxicillin-clavulanate, ticarcillin, ticarcillin-clavulanate, piperacillin, piperacillin-tazobactam, clindamycin, chloramphenicol, and cefoxitin. Minimum inhibitory (MICs) were read where growth intersected the strips or where the upper indentation intersected the strips for beta-lactamase inhibitor-containing strips. Reference MICs were performed by the National Committee for Clinical Laboratory Standards agar dilution method. Organisms tested consisted of 117 Bacteroides fragilis group, 24 fusobacteria, and 68 other species (mainly Prevotella species). Agreement of MICs by both methods occurred in 33.4% of cases; 80.8% were within one, 99.0% were within two, and 99.95% were within three doubling dilutions apart. E-test results, expressed as MIC50/MIC90 values (microgram/ml), were as follows: ampicillin: 16/> 256; amoxicillin-clavulanate (2:1), 0.5/4; ticarcillin, 16/> 256; tircarcillin-clavulanate (2 micrograms/ml), 0.5/4; piperacillin, 16/> 256; piperacillin-tazobactam (4 micrograms/ml), 1/8; piperacillin-tazobactam (8:1), 2/8; cefoxitin, 8/64; clindamycin, 0.25/4; and chloramphenicol, 2/8. Conventional MIC methodology yielded MIC50s and MIC90s either identical to, or within one doubling dilution of, E-test results. Percentages of strains susceptible varied by < 3% between the two methods, except for cefoxitin (E test 5.2% lower). Based on these results, the E test is an accurate and practical method for use with the agents and organisms evaluated.
To investigate the pathogenicity of Ureaplasma urealyticum and Mycoplasma hominis in preterm infants, we conducted a study to determine (1) frequency of isolation from cerebrospinal fluid and tracheal aspirate specimens and (2) clinical outcomes and effect of erythromycin treatment in ureaplasma-colonized infants. From the cerebrospinal fluid of 920 infants, U. urealyticum was isolated from 2 (0.2%) and M. hominis from none. From tracheal aspirate specimens from 224 infants, U. urealyticum was recovered from 37 (17%) and M. hominis from 4 (2%). Demographic characteristics and clinical outcomes were compared in very low birth weight infants (< 1500 gm) who were culture-positive or -negative for U. urealyticum. Although infants with positive results were less mature than their cohorts with negative results, there were no substantive differences in clinical outcomes between the two groups. Initiation of erythromycin treatment of infants with positive ureaplasma culture results at a mean age of 16.4 days did not appear to alter the clinical outcome. We conclude that in preterm infants (1) infection of the cerebrospinal fluid by U. urealyticum is infrequent, (2) ureaplasma organisms are frequently present in tracheal aspirate specimens but do not appear to be related to the presence or the subsequent development of respiratory disease, and (3) initiation of erythromycin treatment at 1 to 3 weeks of age does not alter the clinical course.
BACKGROUND: Currently, the maximum outdate for platelets is 5 days, because of the increasing chance of bacterial growth over time. Various methods for rapid detection of bacterial contamination of blood components have been described, with mixed results and no general acceptance. A recently described, molecular biologic approach for the detection of bacterial contamination involves a chemiluminescence-linked universal DNA bacterial probe to a highly conserved bacterial region of ribosomal RNA (rRNA). STUDY DESIGN AND METHODS: A multicenter trial of a chemiluminescence-linked universal bacterial rRNA probe for the detection of bacterial contamination in platelet concentrates is described. At each of five sites, platelet concentrates (no older than 1 day from date of phlebotomy) were inoculated in triplicate with isolates of four bacterial species (Pseudomonas aeruginosa, Bacillus cereus, Staphylococcus epidermidis, and Staphylococcus aureus) to a final concentration of 10 to 50 colony-forming units (CFUs) per mL and in triplicate to a final concentration of 1000 CFUs per mL. At one site, an additional 6 platelet concentrates were inoculated with sterile saline to serve as controls. Inoculated units were then subjected periodically to quantitative cultures and probe analyses. A total of 126 platelet concentrates were studied over a period of 7 days (120 inoculated with bacteria and 6 with sterile saline). RESULTS: This assay was, in some cases, able to detect S. aureus bacterial contamination in the range of 100 to 1000 CFUs per mL; the majority of samples (B. cereus, P. aeruginosa, S. aureus, and S. epidermidis) with contamination exceeding 10(4) CFUs per mL; and all samples with contamination of 2.1 x 10(5) CFUs per mL or greater. Increasing the sample size from the recommended 0.4 mL to 1.0 mL resulted in an unacceptable loss of specificity (83.3%). CONCLUSION: The routine use of this assay would be expected to result in a decreased risk of septic platelet transfusion reactions and could lead to a lengthening of the current 5 day storage period for platelets. Further, the pooling of random-donor platelet concentrates before storage instead of immediately before transfusion may be possible if this rRNA probe is employed to detect bacteria in the pool.
BACKGROUND: A cluster of bacterial contamination of platelets occurred at a university hospital in a one-month period. This unusual clustering allowed us to examine the likely mechanism of contamination and clinical sequelae. METHODS: We reviewed medical records of patients receiving random donor platelet transfusions to determine numbers of platelets transfused, reactions reported, and episodes of bacterial contamination. We also reviewed procedures at the collecting blood agencies and the hospital blood bank. RESULTS: Four patients received bacterially contaminated platelets during June and July 1991. The rates of reported platelet transfusion reactions increased significantly (P < 0.001) from September 1989 through July 1991 (study period); in addition, the rate of contamination of platelets during June and July 1991 was 23-fold higher than during the previous 21 months (P < 0.001). Surveillance methodology changed dramatically during the study period, contributing to the recognition of the current cluster. Pathogens isolated from the contaminated platelet pools were Bacillus cereus, Staphylococcus epidermidis, or Pseudomonas aeruginosa in titers ranging from 10(6) to 10(8) colony forming units/mL. Four constituent individual platelet units identified as the probable cause of the outbreak (including one postepidemic episode) were significantly older (mean age, 4.8 days) than 106 randomly selected individual platelet units (mean age, 3.7 days; P = 0.04). Platelet pools were transfused an average of 2.5 hours after pooling. Review of blood collection and platelet preparation practices did not identify breaks in procedure or technique that could have caused contamination. CONCLUSIONS: Increased awareness of platelet transfusion reactions by clinical staff and routine culturing of all platelets associated with transfusion reactions will identify contaminated platelets. Identification of contaminated platelets is necessary to treat affected patients appropriately and to determine the prevalence of and risk factors for contaminated platelets (Infect Control Hosp Epidemiol 1994;15:82-87).
A beta-lactamase-producing strain of Clostridium clostridioforme isolated from human peritoneal fluid was examined by MIC testing and enzyme characterization. MICs of penicillins (64-512 mg/L) were higher than those of cephalosporins (8-128 mg/L); the strain was susceptible to cefoxitin (8 mg/L) and imipenem (1 mg/L). No enhancement of cephalosporin activity occurred when clavulanate was also added, but a limited degree of enhancement of penicillin activity (resulting in beta-lactam MICs higher than available NCCLS breakpoints) occurred when clavulanate, sulbactam or tazobactam was added simultaneously. By contrast, addition of BRL 42715 with amoxycillin, ticarcillin or piperacillin led to a drop in beta-lactam MICs from 512 to < or = 1 mg/L, with a drop from 64 to 1 mg/L when BRL 42715 was added with cefotaxime. All inhibitors were added at fixed concentrations of 2 mg/L. As determined spectrophotometrically, the enzyme hydrolysed penicillin G, cloxacillin and piperacillin (Vmax values (%) 372, 1816, 1001, respectively relative to cephaloridine) more efficiently than cephalosporins (69-191, with cephaloridine as 100%). Km values (microM) varied between 30-308 microM (penicillins) and 2-20 microM (cephalosporins). Relative enzyme efficiency (relative Vmax/Km with cephaloridine as 100) varied from 21-100 (cephalosporins) and 8-77 (penicillins). IC50 values (microM) with nitrocefin, piperacillin and penicillin G substrates (concentrations 20, 100 and 20 microM, respectively) were > 1000, 7, 3.5 (clavulanate); > 1000, 300, 59 (sulbactam), > 1000, 29, 7.7 (tazobactam); 0.0004, 0.001, 0.0018 (BRL 42715). The enzyme was not inhibited by EDTA, cefoxitin, cloxacillin or aztreonam, but was inhibited by pCMB.(ABSTRACT TRUNCATED AT 250 WORDS)
This study evaluated the susceptibility of 123 Xanthomonas maltophilia strains to ticarcillin, ticarcillin-clavulanate, ampicillin, amoxicillin-clavulanate, ampicillin-sulbactam, piperacillin, piperacillin-tazobactam, imipenem, and ciprofloxacin by Kirby-Bauer disk, E test, and Sensititre dehydrated microdilution MIC and conventional agar dilution MIC methodology. Intermediate susceptibility breakpoints for members of the family Enterobacteriaceae were used. When results were analyzed as MICs for 50 and 90% of the strains tested and percentages of strains susceptible at the breakpoint, good correlation between the methods was observed, with ticarcillin-clavulanate clearly the most active beta-lactam by all four methods. However, when the various methods were compared with the agar dilution methodology by regression analysis, poor r2 values (0.3 to 0.7) were obtained for compounds with sufficient on-scale values to permit analysis. When the number of strains with log2 ratios of reference agar dilution MICs to test MICs of +3 to -3 were analyzed, correlation was also poor, with many major and very major discrepancies for all methods tested. Results obtained with time-kill studies of nine strains with discrepant ticarcillin-clavulanate MICs appeared to correlate best when compared at 24 h with agar dilution MICs. The concentration of ticarcillin-clavulanate required to reduce the colony count by > or = 2 log10 reduction values for eight of nine strains compared with that for growth controls was < or = 16.0/2.0 micrograms/ml at 6 h and ranged from 16.0/2.0 micrograms/ml to 128.0/2.0 micrograms/ml at 24 h. The susceptibility method of choice for X. maltophilia has not yet been standardized, but time-kill studies correlated best with agar dilution MICs.
Agar dilution was used to compare the in vitro activity of CP 99,219 with those of ciprofloxacin, grepafloxacin, metronidazole, cefoxitin, piperacillin, and piperacillin-tazobactam against 489 anaerobes. CP 99,219 yielded a MIC for 50% of the strains tested (MIC50) of 0.25 micrograms/ml and a MIC90 of 1.0 microgram/ml, with 99.6% of the strains susceptible at a breakpoint of 2.0 micrograms/ml. Ciprofloxacin and grepafloxacin were less active (MIC50, 4.0 micrograms/ml; MIC90, 32.0 micrograms/ml and 2.0 and 16.0 micrograms/ml, respectively). Metronidazole was active against all gram-negative rods (MIC90, 4.0 micrograms/ml), but 31% of the gram-positive anaerobes were resistant at > 8.0 micrograms/ml. Cefoxitin was active against 84% of all strains at < or = 16.0 micrograms/ml, with a MIC50 of 4.0 micrograms/ml and a MIC90 of 32.0 micrograms/ml. Tazobactam enhanced the activity of piperacillin against > 95% of the beta-lactamase-producing gram-negative anaerobic rods (MIC90, 16.0 micrograms/ml).
Even though the macrophage is the host cell for the intracellular bacterial parasite Mycobacterium avium, macrophages have undergone only limited evaluation as models for determining the capacities of antimycobacterial drugs to inhibit the growth of M. avium within this relevant intracellular environment. In the present study, we demonstrated that a panel of M. avium isolates could actively infect homogeneous monolayers of murine bone marrow-derived macrophages. A number of established and experimental antimycobacterial drugs were then added to these cultures at a range of concentrations, and their effects on the numbers of surviving bacilli were determined 8 days later. By plotting such numbers versus drug concentrations it was then possible to clearly distinguish between compounds with bactericidal activity (such as rifabutin and PD 125354) and those with bacteriostatic effects (such as clarithromycin), even though several of these compounds had very similar MICs. In addition, an estimate of the potential therapeutic efficiency of each drug could be made by determining the concentration needed to destroy an arbitrary percentage of the inoculum (in this case, the bactericidal concentration destroying 99% of the inoculum). Such values were considerably in excess of the MICs and may more realistically reflect the concentrations in serum required to effectively reduce the bacterial burden in vivo.
The National Committee for Clinical Laboratory Standards agar dilution method was used to compare the in vitro activity of WY-49605 (also called SUN/SY 5555 and ALP-201), a new broad-spectrum oral penem, to those of amoxicillin, amoxicillin-clavulanate, imipenem, ciprofloxacin, cefaclor, cefpodoxime, cefuroxime, clindamycin, and metronidazole against 384 clinically isolated anaerobes. These anaerobic organisms included 90 strains from the Bacteroides fragilis group, 87 Prevotella and Porphyromonas strains, non-B. fragilis group Bacteroides strains, 56 fusobacteria, 55 peptostreptococci, 49 gram-positive non-spore-forming rods, and 47 clostridia. Overall, WY-49605 had an MIC range of 0.015 to 8.0 micrograms/ml, an MIC at which 50% of the isolates are inhibited (MIC50) of 0.25 microgram/ml, and an MIC at which 90% of the isolates are inhibited (MIC90) of 2.0 micrograms/ml. Good activity against all anaerobe groups was observed, except for Clostridium difficile and lactobacilli (MIC50s of 4.0 and 2.0 micrograms/ml, respectively, and MIC90s of 8.0 and 2.0 micrograms/ml, respectively). Imipenem had an MIC50 of 0.03 microgram/ml and an MIC90 of 0.25 microgram/ml. Ciprofloxacin was much less active (MIC50 of 2.0 micrograms/ml and MIC90 of 16.0 micrograms/ml). By comparison, all oral beta-lactams were less active than WY-49605, with susceptibilities as follows: amoxicillin MIC50 of 8.0 micrograms/ml and MIC90 of > 256.0 micrograms/ml), amoxicillin-clavulanate MIC50 of 1.0 microgram/ml and MIC90 of 8.0 micrograms/ml, cefaclor MIC50 of 8.0 micrograms/ml and MIC90 of > 32.0 micrograms/ml, cefpodoxime MIC50 of 4.0 micrograms/ml and MIC90 of > 32.0 micrograms/ml, and cefuroxime MIC50 of 4.0 micrograms/ml and MIC90 of > 32.0 micrograms/ml. Clindamycin was active against all groups except some members of the B. fragilis group, Fusobacterium varium, and some clostridia ( overall MIC50 of 0.5 micrograms/ml and overall MIC90 of 8.0 micrograms/ml). Metronidazole was active (MIC of less than or equal to 4.0 micrograms/ml) against all gram-negative anaerobic rods, but most gram-positive non-spore-forming rods, some peptostreptococci, and some clostridia were less susceptible. To date, WY-49605 is the most active oral beta-lactam against anaerobes: these results suggest clinical evaluation for clinical indications suitable for oral therapy.
In vitro susceptibility of 185 penicillin-susceptible and -resistant pneumococci to WY-49605, a new oral penem, was compared with susceptibility to penicillin G, amoxicillin with and without clavulanate, cefixime, cefaclor, cefpodoxime, cefuroxime, and cefdinir. WY-49605 yielded MICs for 50 and 90% of the strains tested (MIC50 and MIC90, respectively) of 0.03 and 0.06, 0.125 and 0.5, and 0.5 and 1.0 micrograms/ml, respectively, against penicillin-susceptible, intermediately resistant, and fully resistant strains, respectively. The MIC50 and MIC90 for both amoxicillin and amoxicillin-clavulanate were identical and approximately 1 doubling dilution higher than those for WY-49605 and were < or = 0.06 and 0.125, 0.25 and 1.0, and 1.0 and 1.0 micrograms/ml, respectively. Cephalosporin MIC90s were all significantly higher than those of the latter three compounds for intermediately resistant and fully resistant strains.
MICs of eight beta-lactams (piperacillin, piperacillin-tazobactam, ticarcillin, ticarcillin-clavulanate, ampicillin, ampicillin-sulbactam, ceftazidime, and ceftriaxone) were determined by agar dilution against 64 penicillin-susceptible, 70 intermediately penicillin-resistant, and 66 fully penicillin-resistant pneumococci. The MICs of piperacillin with and without tazobactam for 90% of the susceptible, intermediately resistant, and resistant strains tested (MIC90s) were < or = 0.064, 2.0, and 4.0 micrograms/ml, respectively. By comparison, those of ampicillin with and without sulbactam were 0.125, 2.0, and 4.0 micrograms/ml and those of ceftriaxone were < or = 0.064, 1.0, and 2.0 micrograms/ml, respectively. Strains were less susceptible to ticarcillin with and without clavulanate (MIC90s, 2.0, 64.0, and 128.0 micrograms/ml) and ceftazidime (MIC90s, 1.0, 8.0, and 32.0 micrograms/ml).
The Oxyrase agar dilution method (Oxyrase, Inc., Mansfield, Ohio), which provides an anaerobic environment without added CO2, was compared with the reference agar dilution method recommended by the National Committee for Clinical Laboratory Standards (anaerobic chamber with 10% CO2) to test the susceptibilities of 302 gram-negative and gram-positive anaerobes to erythromycin, azithromycin, clarithromycin, and roxithromycin. For erythromycin, the overall MIC for 50% of isolates tested (MIC50) was 0.5 micrograms/ml and the MIC90 was 8.0 micrograms/ml by the Oxyrase method, whereas they were 4.0 and 64.0 micrograms/ml, respectively, under standard anaerobic conditions with CO2. At a breakpoint of 4.0 micrograms/ml, 88% of strains were susceptible to erythromycin by the Oxyrase method, whereas 63% were susceptible in the chamber. The corresponding MIC50s and MIC90s of azithromycin, clarithromycin, and roxithromycin by the Oxyrase method were 0.5 and 8.0, 0.25 and 4.0, and 0.5 and 16.0 micrograms/ml, respectively, whereas in the chamber they were 4.0 and > 64.0, 2.0 and 64.0, and 2.0 and 64.0 micrograms/ml, respectively. At a breakpoint of 8.0 micrograms/ml for these three drugs, 89, 92, and 85% of the isolates, respectively, were susceptible by the Oxyrase method, whereas 67%, 72, and 68% of the isolates, respectively, were susceptible in the chamber. Most strains resistant to all four compounds by both methods were Bacteroides distasonis, Fusobacterium mortiferum, Fusobacterium varium and non-Clostridium perfringens Clostridium species. Results of the study may lead to a reappraisal of the role played by macrolides and azalides in the treatment of anaerobic infections.
The susceptibilities of 123 clinically isolated strains of Xanthomonas maltophilia to six fluoroquinolones (clinafloxacin, PD 131628, PD 138312, PD 140248, ciprofloxacin, and ofloxacin) were examined by microdilution MIC methodology. Clinafloxacin and PD 131628 were the most active compounds tested (MICs for 50% of the strains tested [MIC50s] of 0.5 and 1.0 microgram/ml and MIC90s of 2.0 and 4.0 micrograms/ml, respectively). PD 138312, PD 140248, ciprofloxacin, and ofloxacin were less active, with MIC50s ranging from 4.0 to 8.0 micrograms/ml and MIC90s of 16.0 micrograms/ml for all four compounds. Only clinafloxacin and PD 131628 were active against ciprofloxacin-resistant strains, with MIC50s of 0.5 and 1.0 microgram/ml and MIC90s of 2.0 and 4.0 micrograms/ml, respectively.
MICs of six extended-spectrum cephalosporins (cefotaxime, ceftriaxone, ceftazidime, FK 037, cefpirome, cefepime), three carbapenems (imipenem, meropenem, biapenem), and vancomycin for 49 penicillin-susceptible (S), 77 penicillin intermediate-resistant (I), and 51 penicillin-resistant (R) pneumococci were determined by agar dilution. Compared with ceftazidime (MICs for 90% of strains tested [MIC90s] of 2.0, 16.0, and 16.0 micrograms/ml for S, I, and R strains, respectively), all other cephalosporins yielded lower MICs (MIC90s of 0.06 to 0.125, 0.5 to 1.0, and 1.0 to 2.0 micrograms/ml against S, I, and R strains, respectively). All three carbapenems were very active, with MIC90s, even for R strains, of < or = 1.0 micrograms/ml. All strains were susceptible to vancomycin (MIC90 of 0.5 micrograms/ml).
The relationship between the structures of quinolones and their anti-Mycobacterium avium activities has been previously derived by using the Multiple Computer-Automated Structure Evaluation program. A number of substructural constraints required to overcome the resistance of most of the strains have been identified. Nineteen new quinolones which qualify under these substructural requirements were identified by the program and subsequently tested. The results show that the substructural attributes identified by the program produced a successful a priori prediction of the anti-M. avium activities of the new quinolones. All 19 quinolones were found to be active, and 4 of them are as active or better than ciprofloxacin. With these new quinolones, the updated multiple computer-automated structure evaluation program structure-activity relationship analysis has helped to uncover additional information about the nature of the substituents at the C5 and C7 positions needed for optimal inhibitory activity. A possible explanation of drug resistance based on the observation of suicide inactivation of bacterial cytochrome P-450 by the cyclopropylamine moiety has also been proposed and is discussed in this report. Furthermore, we confirm the view that the amount of the uncharged form present in a neutral pH solution plays a crucial role in the drug's penetration ability.
Time-kill studies were used to examine the in vitro activities of penicillin G, RP 59500, erythromycin, ciprofloxacin, sparfloxacin, and vancomycin against 10 pneumococci expressing various degrees of susceptibility to penicillin and erythromycin. RP 59500 MICs for all strains were 0.5 to 2.0 micrograms/ml, while erythromycin MICs were 0.008 to 0.06 microgram/ml for erythromycin-susceptible strains and 32.0 to 64.0 micrograms/ml for erythromycin-resistant strains. Strains were more susceptible to sparfloxacin (0.125 to 0.5 microgram/ml) than to ciprofloxacin (0.5 to 4.0 micrograms/ml), and all were inhibited by vancomycin at MICs of 0.25 to 0.5 microgram/ml. Time-kill studies showed that antibiotic concentrations greater than the MIC were bactericidal for each strain, with the following exceptions. Erythromycin was bactericidal for one penicillin-resistant strain at 6 h, with regrowth after 12 and 24 h. Three penicillin-susceptible strains were bacteriostatically inhibited by erythromycin at concentrations greater than or equal to the MIC by 6 h. One penicillin-susceptible strain (penicillin MIC, 0.06 microgram/ml) was bacteriostatically inhibited by penicillin G at 24 h at the MIC or at one-half the MIC; a bactericidal effect was found only with penicillin G at concentrations of > or = 0.25 microgram/ml. At 10 min after inoculation a 1- to 3-log10-unit reduction (90 to 99.9%) in the original inoculum was seen for 6 of 10 strains with RP 59500 at concentrations greater than or equal to the MIC. This effect was not found with any of the other compounds tested. A bactericidal effect was found at > or = 6 h with RP 59500 at concentrations of one-half to one-quarter the MIC in 7 of 10 strains, and a bacteriostatic effect was found in 3 or 10 strains, with regrowth at 24 h. One penicillin-resistant strain was examined by the time-kill methodology at 0, 1, 2, and 3 h. RP 59500 at a concentration equal to the MIC was bactericidal within 1 h, and at a concentration of one-half the MIC it was bactericidal within 3 h. This phenomenon was not seen with the other antimicrobial agents tested. Regrowth of strains at ciprofloxacin concentrations equal to the MIC or at a one-half to one-quarter the MIC was found. For sparfloxacin, three of the four penicillin-susceptible strains and two of four penicillin-resistant strains were bacteriostatically inhibited by 6 h. Bactericidal effects were found at 6, 12, and 24 h with both intermediate-resistant, one penicillin-susceptible, and two penicillin-resistant strains. Complete killing was observed with vancomycin at concentrations greater than MIC. Of the new compounds tested, RP 59500 and sparfloxacin show promise for the treatment of infections caused by penicillin-susceptible and -resistant pneumococci. The clinical significance of rapid killing by RP 59500 remains to be determined.
The ability of the RapID onE system (Innovative Diagnostic Systems, Inc., Norcross, Ga.) to identify 364 strains in the family Enterobacteriaceae and 15 oxidase-negative, gram-negative, nonfermentative rods was evaluated. Kits were inoculated with no. 2 McFarland standard suspensions, and reactions were interpreted after 4 h of incubation at 35 degrees C. Overall, the method correctly identified (to the species level or to the genus level for salmonellas and non-Shigella sonnei Shigella species) 363 strains (95.8%) without additional tests. For four strains (1.0%), additional tests were required to delineate the correct identification from a range of two or more possibilities; these included one Serratia liquefaciens (Serratia marcescens or Serratia liquefaciens), one Serratia rubidaea (Serratia rubidaea or Serratia odorifera), one Salmonella typhi (Leminorella richardii or Salmonella sp.) and one Yersinia enterocolitica (Yersinia frederiksenii, Yersinia intermedia, or Yersinia enterocolitica). Twelve strains (3.2%) were misidentified or yielded codes with no identification; these comprised one Citrobacter amalonaticus (no identification), three Enterobacter hormaechei (not in the RapID onE database; two Enterobacter amnigenus, one Enterobacter sp.), one Serratia liquefaciens (Enterobacter cloacae), one Serratia rubidaea (no identification), four Serratia fonticola (not in RapID onE database; two Enterobacter aerogenes, one Serratia marcescens, one not identified), one Proteus mirabilis (Proteus penneri), and one Proteus vulgaris (Providencia rustigianii). If the seven strains not included in the database had been excluded, correct identification rates would have risen to 97.6% without additional tests and 98.7% with additional tests, with misidentification rates dropping to 1.3%. The RapID onE system is easy to set up and the results are easy to read, and the system provides an accurate, nonautomated commercially available method for the same-day identification of members of the family Enterobacteriaceae and oxidase-negative, gram-negative nonfermenters.