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A Mouse Model to Assess Innate Immune Response to Staphylococcus aureus Infection
Published on: February 28, 2019
Plectasin shows intracellular activity against Staphylococcus aureus in human THP-1 monocytes and in a mouse
Karoline Sidelmann Brinch1, Anne Sandberg, Pierre Baudoux
1Novozymes A/S, Anti-Infective Discovery, Krogshøjvej 36, DK-2880 Bagsvaerd, Denmark. kbri@novozymes.com
Abstract:
Antimicrobial therapy of infections with Staphylococcus aureus can pose a challenge due to slow response to therapy and recurrence of infection. These treatment difficulties can partly be explained by intracellular survival of staphylococci, which is why the intracellular activity of antistaphylococcal compounds has received increased attention within recent years. The intracellular activity of plectasin, an antimicrobial peptide, against S. aureus was determined both in vitro and in vivo. In vitro studies using THP-1 monocytes showed that some intracellular antibacterial activity of plectasin was maintained (maximal relative efficacy [E(max)], 1.0- to 1.3-log reduction in CFU) even though efficacy was inferior to that of extracellular killing (E(max), >4.5-log CFU reduction). Animal studies included a novel use of the mouse peritonitis model, exploiting extra- and intracellular differentiation assays, and assessment of the correlations between activity and pharmacokinetic (PK) parameters. The intracellular activity of plectasin was in accordance with the in vitro studies, with an E(max) of a 1.1-log CFU reduction. The parameter most important for activity was fC(peak)/MIC, where fC(peak) is the free peak concentration. These findings stress the importance of performing studies of extra- and intracellular activity since these features cannot be predicted from traditional MIC and killing kinetic studies. Application of both the THP-1 and the mouse peritonitis models showed that the in vitro results were similar to findings in the in vivo model with respect to demonstration of intracellular activity. Therefore the in vitro model was a good screening model for intracellular activity. However, animal models should be applied if further information on activity, PK/pharmacodynamic parameters, and optimal dosing regimens is required.
Insights
Plectasin shows some intracellular activity against Staphylococcus aureus, though less than extracellular activity. In vitro models effectively screen for this intracellular efficacy, but animal studies are crucial for understanding pharmacokinetics and dosing.
Area of Science:
- Microbiology
- Pharmacology
- Infectious Diseases
Background:
- Staphylococcus aureus infections present treatment challenges due to slow response and recurrence.
- Intracellular survival of S. aureus contributes to treatment difficulties, increasing interest in intracellular antimicrobial activity.
- Plectasin, an antimicrobial peptide, is investigated for its efficacy against S. aureus.
Purpose of the Study:
- To determine the intracellular activity of plectasin against Staphylococcus aureus in vitro and in vivo.
- To compare the efficacy of plectasin against extracellular and intracellular S. aureus.
- To correlate plectasin activity with pharmacokinetic parameters in an animal model.
Main Methods:
- In vitro studies using THP-1 monocytes to assess intracellular S. aureus killing by plectasin.
- In vivo studies utilizing a mouse peritonitis model with extra- and intracellular differentiation assays.
- Pharmacokinetic/pharmacodynamic (PK/PD) analysis correlating plectasin activity with parameters like fC(peak)/MIC.
Main Results:
- Plectasin demonstrated moderate intracellular activity against S. aureus (1.0-1.3 log CFU reduction in vitro, 1.1 log CFU reduction in vivo).
- Extracellular killing efficacy was significantly higher than intracellular activity (E(max) >4.5 log CFU reduction).
- The free peak concentration to minimum inhibitory concentration ratio (fC(peak)/MIC) was the key parameter for plectasin activity.
Conclusions:
- Intracellular activity of antistaphylococcal compounds is crucial and cannot be predicted by traditional MIC or killing kinetic studies.
- In vitro THP-1 monocyte model serves as a suitable screening tool for intracellular antimicrobial activity.
- Animal models are essential for comprehensive evaluation of activity, PK/PD, and optimal dosing regimens for intracellular targeting agents.

