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B Marchou

Publications and source records attributed to B Marchou.

49 records · Page 3Linked to original sources

Development of beta-lactam-resistant Enterobacter cloacae in mice.

We compared the ability of four newer beta-lactam compounds to produce resistance in an experimental model of Enterobacter cloacae infection. Mice infected intraperitoneally developed resistance depending on antibiotic treatment and the dose given. Percentages of mice in which resistance was observed were as follows: 100% after ceftriaxone (50 mg/kg, two doses); 87% after ceftriaxone (50 mg/kg, one dose); 35% after ceftriaxone (500 mg/kg, one dose); and 21% after carumonam (25 mg/kg, two doses). No resistance occurred after therapy with either BMY 28142 (25 mg/kg, two doses) or Sch 34343 (50 mg/kg, two doses). Heterogeneous resistance to beta-lactams among the cells within a given Enterobacter population accounted for these differences. The minimal concentration inhibiting the growth of the preexisting resistant variants, together with the antibiotic concentrations obtained in the peritoneal fluid, were associated with further emergence of resistance in the mouse treated with this antibiotic.

Animals↗

Contribution of beta-lactamase hydrolysis and outer membrane permeability to ceftriaxone resistance in Enterobacter cloacae.

Mechanisms of ceftriaxone resistance were examined in Enterobacter cloacae. Clones were selected from four strains: susceptible (S), resistant (R1), selected by plating on ceftriaxone-containing agar, and highly resistant (R2), selected in ceftriaxone-treated mice infected with S clones. According to 14C-labeled beta-lactam binding assays, ceftriaxone resistance was not associated with altered target proteins. R1 and R2 clones stably produced 50 to 1,500 times more beta-lactamase than S clones; this production increased after cefoxitin induction in all S and some R1 clones. Experiments conducted with strain 218 suggested that ceftriaxone resistance involved beta-lactamase hydrolysis. Half-lives for the beta-lactamase-beta-lactam complexes at 37 degrees C were 0.4 and 2.2 min for ceftriaxone and Sch 34343, a drug not affected by the resistance, respectively; in chromatography experiments, 218 intact R1 cells (2 x 10(9) to 3 x 10(9) CFU) suspended in ceftriaxone-containing buffer (2 micrograms/ml) hydrolyzed 80% of the antibiotic in 30 min. Three observations also suggested decreased permeability in some clones, (i) Most of the R1 and R2 clones showed decreased expression of outer membrane proteins of 37,000 to 38,000 molecular weight (37K to 38K proteins) by electrophoresis, often associated with increased amounts of 42K protein. (ii) [14C]Sch 34343 labeling of intact cells proceeded more slowly in 218 R2 (with altered 37K to 38K proteins) than in 218 R1 (without this alteration), a difference persisting after competition with unlabeled cloxacillin. Delays in binding were not caused by different enzymatic activities, since 218 R1 and 218 R2 produce, in similar amounts, beta-lactamases undistinguishable in isoelectric point and Km of cephaloridine. (iii) Intact cells from 218 R2 hydrolyzed ceftriaxone more slowly (20% in 30 min) than did those from 218 R1. In 218 R1, beta-lactamase overproduction was responsible for a 15- to 200-fold increase in the MIC's of ceftriaxone, ceftazidime, carbenicillin, piperacillin, moxalactam, aztreonam, carumonam, and BMY 28142. Imipenem and Sch 34343 were not affected; an additional three- to fivefold increase in the MIC's of these antibiotics (with the exception of piperacillin, imipenem, Sch 34343), seen with 218 R2, was associated with decreased permeability.

Anti-Bacterial Agents↗

Combination therapy: a way to limit emergence of resistance?

The ability of antibiotic combinations to limit the emergence of resistance during therapy was evaluated in a murine model. Peritonitis was produced by injecting a mixture containing 10(8) colony-forming units of bacteria and sterilized talcum into the peritoneum. Two hours later, a single antibiotic dose was administered subcutaneously. The next day, peritoneal bacterial populations were analyzed on Szybalski's gradients. Acquired resistance was recorded when there was at least a fourfold increase in minimum inhibitory concentrations compared with untreated animals. No resistance emerged after amikacin monotherapy (15 mg/kg); however, resistance was frequently observed after monotherapy with ceftriaxone (50 mg/kg) or pefloxacin (25 mg/kg). Resistance to ceftriaxone and pefloxacin emerged, respectively, in 15 percent and 83 percent of animals with Klebsiella pneumoniae, 71 percent and 54 percent with Enterobacter cloacae, 0 percent and 83 percent with Serratia marcescens, 25 percent and 100 percent with Pseudomonas aeruginosa, and 0 percent with both Escherichia coli and Staphylococcus aureus. In mice with K. pneumoniae or E. cloacae infections, any dual combination of amikacin, pefloxacin, and ceftriaxone produced less acquired resistance than did monotherapy. In these animals, the combination of ceftriaxone and pefloxacin abolished all resistance, whereas the combinations of amikacin plus ceftriaxone or amikacin plus pefloxacin reduced the frequency of resistance by more than half. In animals with P. aeruginosa or S. marcescens infections, resistance to pefloxacin diminished or disappeared after treatment with the combinations of pefloxacin plus ceftriaxone or pefloxacin plus amikacin. However, combinations with ceftriaxone resulted in more frequent resistance to ceftriaxone than did ceftriaxone alone. This was the case in P. aeruginosa infections treated with ceftriaxone plus amikacin (p less than 0.01), and in S. marcescens infections treated with ceftriaxone plus pefloxacin (p less than 0.05). Despite these certain notable exceptions, our data confirm that in most cases combination therapy does limit the emergence of resistance.

Amikacin↗

Emergence of resistance after therapy with antibiotics used alone or combined in a murine model.

A murine model of peritonitis allowing detection and quantification of in-vivo acquired resistance during short term therapy has been used in order to evaluate the capacity of antimicrobial combinations to limit emergence of resistance, as compared to individual components of the regimens. Mice were challenged intraperitoneally with 10(8) cfu of bacteria. Two hours later, a single antibiotic dose was injected subcutaneously: amikacin (15 mg/kg), ceftriaxone (50 mg/kg), pefloxacin (25 mg/kg), amikacin + ceftriaxone, amikacin + pefloxacin or ceftriaxone + pefloxacin. Escherichia coli and Staphylococcus aureus never became resistant. Single drug therapy yielded resistant mutants in Enterobacter cloacae, Serratia marcescens, Klebsiella pneumoniae and Pseudomonas aeruginosa as follows: 74% of ceftriaxone-treated animals, 57% of pefloxacin treated animals and 27% of amikacin treated animals. All the tested combinations reduced the frequency of in-vivo acquired resistance produced by single drugs, and no combination selected resistance when the separate agents of the combination did not. Combining antimicrobial agents limits the risk of emergence of resistance during antibiotic therapy.

Amikacin↗

Diffusion of ceftriaxone (Ro 13-9004/001) in the cerebrospinal fluid. Comparison with other beta-lactam antibiotics in dogs with healthy meninges and in dogs with experimental meningitis.

After i.v injection of 50 and 100 mg/kg ceftriaxone in 1 h in dogs with healthy meninges, the cerebrospinal fluid (CSF) concentrations found between minutes 90 and 240 were an average of 0.37 (0.32-0.41) and 1.22 microgram/ml (1.02-1.56), respectively. In dogs with meningitis a dosage of 50 mg/kg yielded high concentrations from minutes 60 to 240: on average, 13.0 microgram/ml (9.9-14.9); 9.9 microgram/ml in the fourth hour. The concentrations obtained in dogs with healthy meninges were 10-100 times higher than the MICs for meningococci and Haemophilus influenzae. In the infected dogs, the concentrations obtained were enough to eliminate virtually all the bacteria responsible for meningitis (except Mycobacterium tuberculosis). In the dogs with healthy meninges, the ratio of the CSF/plasma AUCs was 0.61% after 50 mg/kg, and 1.00% after 100 mg/kg. In the infected dogs, this ratio was 22.4% after 50 mg/kg. Comparison of the ratio of AUCs obtained under ceftriaxone with that under other beta-lactam antibiotics shows the former to be one of the highest.

Animals↗

[The Nadis cohort: 6236 HIV-infected patients followed up in French university hospitals].

OBJECTIVE: The Nadis electronic medical patient record allows real time constitution of a database including the clinical, therapeutic, biological, and epidemiological features of HIV-positive patients. METHODS: Data concerning HIV-infected patients followed-up in 6 French University Hospitals was collected. Data quality was assessed on a regular basis in each center. RESULTS: The 6 first University hospitals using Nadis agreed to group their data on March 15, 2004, concerning 6236 patients having consulted at least once in the previous year. Among these, 29% were female patients, 80% were under treatment on March 15, 2004, 9% were off treatment, 29% were co-infected by hepatitis B or C virus, 57% had an undetectable viral load, 15% of the treated patients were in a worrying immunovirological situation, 358 were diagnosed HIV-positive in 2003. 35% of these "new patients" were women, the mode of infection was sexual in 80%, 45% were under treatment on March 15, 04. This recent data allowed us to have an accurate assessment of this population's management in 2004.

Adult↗

[Evaluation of the pharmacovigilance follow-up of zidovudine].

A therapeutic committee was established in Toulouse Regional University Hospital in order to prescribe zidovudine in patients suffering from AIDS. Using an informatic card, the side effects were evaluated in the 125 patients treated by Zidovudine since the creation of the Committee (from July 1987 to January 1989). Zidovudine was prescribed from May 1987 to June 1988 at the total dose of 1,200 mg daily from June 1988 at 900 mg daily. The most frequent side effects were hematologic: zidovudine used alone (or associated with non hematotoxic drugs) elicited in 21.2% of patients a neutropenia (defined as a number of neutrophils less than 1,000/mm3), in 2.4% anaemia (haemoglobin less than or equal to 9 g/100 ml) and in 4.8% neutropenia associated with anaemia. When zidovudine was administered with hematotoxic drugs, neutropenia, anaemia or the association of both were observed in 12.0%, 3.2% and 2.4% of patients respectively. These hematologic side effects were always regressive after drug cessation. However, it is important to underline the low incidence of hematological side effects on red cells of zidovudine in the present study. This result is unexpected. The other side effects of Zidovudine (used alone) did not led to modification in drug treatment: gastrointestinal disturbances (30.4%), headaches (16.8%), insomnia (13.6%), somnolence (6.4%).... These side effects appeared during the four first months and decreased with the continuation of drug treatment. Their imputation was difficult to define and differentiate to evolution of the disease.

Computers↗

[Neurotoxoplasmosis in the immunosuppressed child. Apropos of 2 cases].

About 2 cases reports, the authors stress on the principal characteristics of neurotoxoplasmosis : neurologic and/or febrile symptoms in a immuno-compromised patient with predominantly a deficient cellular mediated immunity. Cerebrospinal fluid, electroencephalographic and tomodensitometric abnormalities. Importance of serology in the survey of high-risk patients. Bad prognosis of acute clinical pictures. Potential regression of subacute and chronic forms.

Brain↗