Background: Anti-microbial lock solutions (AML), in conjunction with systemic antibiotics, may successfully treat tunnelled haemodialysis catheter-related bloodstream infections (CR-BSI). It is unknown whether AML promote anti-microbial resistance.
Methods: This is a retrospective cohort study of all CR-BSI (2003-2006) in our dialysis unit. Controls (n = 265) were treated with systemic vancomycin and gentamicin. In addition to the systemic antibiotics, the study group (n = 662) received AML containing vancomycin and gentamicin during inter-dialytic periods. Antibiotic sensitivity/resistance profiles of all organisms were analysed. Changes in the incidence of infection (chi-square test) and resistant organisms (Fisher's exact test) were calculated.
Results: The incidence of CR-BSI decreased from 8.50/1000 catheter days (controls) to 3.80 (study group; P < 0.0001), and the incidence of relapses decreased (P = 0.0027). The number needed to treat to prevent subsequent bacteraemia using an AML adjunct is 3 ± 0.4. The proportion of Gram-positive cultures increased (P < 0.0001), including Staphylococcus aureus (P = 0.03), but the proportion of methicillin-resistant S. aureus (P = 0.87) and vancomycin resistance (P = 0.90) did not. Increased gentamicin resistance (P < 0.0001) and ciprofloxacin resistance (P = 0.04) were observed in Gram-negative cultures. Gentamicin resistance [relative risk (RR) > 15.29; P < 0.0001] and ciprofloxacin resistance (RR = 6; P = 0.007) increased in Enterobacter species, but not Pseudomonas or Escherichia coli species.
Conclusion: AML decrease CR-BSI incidence, although proportions of S. aureus and anti-microbial-resistant Enterobacter are increased.
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http://dx.doi.org/10.1093/ndt/gfs081 | DOI Listing |
Trials
December 2024
Division of Infectious Diseases, Department of Medicine, Vanderbilt University Medical Center, Nashville, TN, USA.
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Department of Petroleum Engineering, Chemistry and Chemical Engineering Research Center of Iran, Tehran, Iran; Polymer Synthesis Technology, School of Chemical Engineering, Aalto University, Espoo, Finland.
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Henan Engineering Laboratory for Bioconversion Technology of Functional Microbes, College of Life Sciences, Henan Normal University, Xinxiang, China. Electronic address:
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Bacterial Disease Division, Animal and Plant Quarantine Agency, Gimcheon-si, Republic of Korea. Electronic address:
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School of Biomedical Engineering, Shanghai Jiao Tong University, Shanghai, 200030, China; Zhengzhou Industrial Technology Research Institute of Shanghai Jiao Tong University, Zhengzhou, 450016, China. Electronic address:
Antimicrobial resistance (AMR) has become an increasingly severe threat to global health, and AMR-associated infection is one of the leading causes of death around the world. Due to the long turnaround time and the limited flexibility and availability of current antimicrobial susceptibility testing (AST) methods, a large portion of patients with bacterial infections are still treated empirically, increasing the risk of mistreatment. To address the demand for precision treatment of bacterial infections, we developed a nano-dilution SlipChip (nd-SlipChip)-based systematic evaluation method, which facilitates rapid, logic feedback for the assessment of antibiotics, antibiotic combinations, and phage therapy.
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