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Management of listeriosis
H Hof1, T Nichterlein, M Kretschmar
1Institute of Medical Microbiology and Hygiene, Faculty of Clinical Medicine Mannheim, University of Heidelberg, Germany.
Abstract:
Determination of the MIC in vitro is often used as the basis for predicting the clinical efficacy of antibiotics. Listeriae are uniformly susceptible in vitro to most common antibiotics except cephalosporins and fosfomycin. However, the clinical outcome is poor. This is partially because listeriae are refractory to the bactericidal mechanisms of many antibiotics, especially to ampicillin-amoxicillin, which still is regarded as the drug of choice. A true synergism can be achieved by adding gentamicin. Another point is that listeriae are able to reside and multiply within host cells, e.g., macrophages, hepatocytes, and neurons, where they are protected from antibiotics in the extracellular fluid. Only a few agents penetrate, accumulate, and reach the cytosol of host cells, where the listeriae are found. Furthermore, certain host cells may exclude antibiotics from any intracellular compartment. Thus, determination of the antibacterial efficacy of a drug against listeriae in cell cultures may be a better approximation of potential therapeutic value. Certain host cells may have acquired the property of excluding certain antibiotics, for example macrolides, from intracellular spaces, which might explain therapeutic failures of antibiotic therapy in spite of low MICs. Animal models do not completely imitate human listeriosis, which is characterized by meningitis, encephalitis, soft tissue and parenchymal infections, and bacteremia. Meningitis produced in rabbits is a hyperacute disease, whereby most listeriae lie extracellularly, fairly accessible to antibiotics that can cross the blood-cerebrospinal fluid barrier. In the murine model of systemic infection, Listeria monocytogenes is located mainly within macrophages and parenchymal cells of the spleen and liver, hardly accessible to certain drugs, such as ampicillin and gentimicin. The therapeutic efficacy of drugs clearly depends on the model used. Thus, for example, the combination of ampicillin with gentamicin acts synergistically in the rabbit meningitis model but not in the mouse model. Since conventional antimicrobial therapy with antibiotics is not satisfactory, particularly in the immunocompromised host (about 30% of patients with listeriosis die in spite of a rational choice of antibiotics), other possibilities must be considered for therapy as well as prevention. Indeed, listeriae are highly susceptible to several endogenous antibiotics, such as defensins. Bacteriocins produced by related bacterial species, e.g., lactobacilli and enterococci, are rapidly bactericidal. However, unfortunately, the use of such alternative measures along with immunization and immunmodulation is not yet feasible.
Insights
Antibiotic treatment for Listeria infections often fails due to intracellular bacteria and poor drug penetration. Novel therapeutic strategies are needed, as current antibiotics show limited efficacy, especially in immunocompromised patients.
Area of Science:
- Microbiology
- Infectious Diseases
- Pharmacology
Background:
- In vitro minimum inhibitory concentration (MIC) determination is standard for predicting antibiotic efficacy against Listeria.
- Listeria exhibits in vitro susceptibility to many antibiotics, yet clinical outcomes are often poor.
- Listeria's intracellular lifestyle within host cells (macrophages, neurons) and resistance to bactericidal mechanisms complicate treatment.
Purpose of the Study:
- To evaluate the limitations of current antibiotic efficacy prediction methods for Listeria infections.
- To explore alternative models for assessing antibacterial efficacy against intracellular Listeria.
- To identify potential new therapeutic avenues beyond conventional antibiotics.
Main Methods:
- Comparison of in vitro MIC data with clinical outcomes for Listeria infections.
- Assessment of antibiotic penetration and efficacy within host cell cultures.
- Evaluation of different animal models (rabbit meningitis, murine systemic infection) for Listeria efficacy.
- Investigation of host cell interactions and antibiotic exclusion mechanisms.
Main Results:
- In vitro susceptibility does not correlate with clinical success, particularly for ampicillin-amoxicillin.
- Intracellular Listeria are protected from extracellular antibiotics; cell culture models may better predict efficacy.
- Animal models show variable results depending on Listeria location (extracellular vs. intracellular) and model type.
- Ampicillin-gentamicin synergy observed in rabbit meningitis but not in murine models.
Conclusions:
- Conventional antibiotic therapy for Listeria is often unsatisfactory, especially in immunocompromised individuals.
- Intracellular bacterial reservoirs and host cell interactions are critical factors limiting antibiotic effectiveness.
- Alternative therapeutic strategies, including endogenous antibiotics and immunomodulation, warrant further investigation for Listeria infections.