Pharmacodynamics of marbofloxacin for calf pneumonia pathogens
Joanna Illambas1, Timothy Potter, Zhangrui Cheng
1The Royal Veterinary College, Hawkshead Campus, Hatfield, Hertfordshire AL9 7TA, United Kingdom.
Abstract:
The pharmacodynamic (PD) properties of the fluoroquinolone, marbofloxacin, were determined for the bovine respiratory tract pathogens Mannheima haemolytica and Pasteurella multocida. For six pathogenic isolates of each organism, three in vitro indices of efficacy and potency were determined, namely, minimum inhibitory concentration (MIC), minimum bactericidal concentration (MBC) and time-kill curves. Each parameter was determined in two matrices, Mueller Hinton Broth (MHB) and calf serum. For serum, MBC:MIC ratios were 2.7:1 (M. haemolytica) and 2.4:1 (P. multocida). The killing action of marbofloxacin had the characteristics of concentration dependency against M. haemolytica and co-dependency (on time and concentration) against P. multocida. To confirm the characteristics of the time-kill profiles, growth inhibition produced by marbofloxacin was also established ex vivo in three biological fluids, calf serum, exudate and transudate, harvested from a tissue cage model. The in vitro time-kill data were modelled with pharmacokinetic properties of marbofloxacin, established by intramuscular administration in calves at a dose of 2 mg/kg; three levels of activity, namely bacteriostatic, 3 log10 reduction and 4 log10 reduction in bacterial counts were determined. Mean AUC(24h)/MIC values (with percentage coefficients of variation indicating inter-isolate variability) for M. haemolytica, based on serum MICs, were 31.3 (41.6), 57.7 (42.4) and 79.2 (44.6) h, respectively. Corresponding values for MHB were 20.5 (58.0), 40.5 (51.8) and 51.2 (24.30) h, respectively. When allowance was made for binding of marbofloxacin to serum protein, the AUC(24h)/MIC values for serum were similar to those for MHB. Numerical AUC(24h)/MIC values for P. multocida were slightly lower than those obtained for M. haemolytica. These data establish for the first time inter-isolate variability in AUC(24h)/MIC values required for three levels of bacterial kill for two pathogenic species and thereby provide an indication of variability in serum concentration that might be required to achieve efficacy in clinical subjects.
Insights
This study determined the pharmacodynamic properties of marbofloxacin against bovine respiratory pathogens. Marbofloxacin efficacy varied between bacterial isolates, indicating a need for tailored dosing strategies in cattle treatment.
Area of Science:
- Veterinary Pharmacology
- Antimicrobial Resistance
- Bacterial Pathogenesis
Background:
- Bovine respiratory disease (BRD) is a significant concern in cattle production.
- Mannheimia haemolytica and Pasteurella multocida are key pathogens causing BRD.
- Understanding fluoroquinolone pharmacodynamics is crucial for effective treatment.
Purpose of the Study:
- To characterize the pharmacodynamics of marbofloxacin against M. haemolytica and P. multocida.
- To determine in vitro indices of efficacy including MIC, MBC, and time-kill curves.
- To model the relationship between marbofloxacin pharmacokinetics and bacterial kill in vivo.
Main Methods:
- In vitro susceptibility testing (MIC, MBC, time-kill curves) in Mueller Hinton Broth and calf serum.
- Ex vivo growth inhibition studies in biological fluids using a tissue cage model.
- Pharmacokinetic analysis of marbofloxacin in calves following intramuscular administration.
Main Results:
- Marbofloxacin exhibited concentration-dependent killing against M. haemolytica and time- and concentration-dependent killing against P. multocida.
- MBC:MIC ratios in serum were low (2.7:1 and 2.4:1).
- Inter-isolate variability in required AUC(24h)/MIC values was observed for both species, with values for P. multocida being slightly lower.
Conclusions:
- Marbofloxacin demonstrates potent activity against M. haemolytica and P. multocida.
- Serum protein binding did not significantly alter the required AUC(24h)/MIC values.
- The identified inter-isolate variability highlights the importance of considering individual animal responses for optimal marbofloxacin dosing in cattle.
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