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Updated: Jul 10, 2026

Experimental Infection with Listeria monocytogenes as a Model for Studying Host Interferon-γ Responses
Published on: November 16, 2016
Listeria monocytogenes as novel carrier system for the development of live vaccines
Christoph Schoen1, Daniela I M Loeffler, Alexa Frentzen
1Department of Microbiology, Biocenter, University of Würzburg, Am Hubland, D-97074 Würzburg, Germany.
Abstract:
Listeria monocytogenes is a facultative intracellular bacterium that enters a variety of non-professional mammalian cells by triggered phagocytosis ("zipper mechanism") and replicates in the cytosol of the infected host cells. Therefore, it is a promising vaccine vector for the presentation of passenger antigens to the MHC class II and especially class I pathways. Here, we review recent progress made in our laboratory on the development of novel attenuated L. monocytogenes carrier strains for the delivery of heterologous antigens or antigen-encoding DNA and RNA to eukaryotic host cells. Based on the deletion of the chromosomal copy of the tryptophanyl-tRNA synthetase gene (trpS) and plasmid-based in trans complementation of the same, we were able to establish a balanced-lethal plasmid system in L. monocytogenes. Safety concerns in the antigen delivery in vivo were addressed by chromosomal deletion of genes in the basic branch of the aromatic amino acid pathway, resulting in safe, attenuated L. monocytogenes carrier strains. Furthermore, plasmid-based expression of a cytosolically expressed phage lysin resulted in a self-destructing carrier strain that has been successfully used for the delivery of antigens as well as antigen-encoding plasmid DNA and particularly mRNA, therefore overcoming bottlenecks that have been shown to exist for bacteria-mediated DNA delivery.
Insights
Researchers developed safe, attenuated Listeria monocytogenes (L. monocytogenes) carrier strains for delivering antigens and genetic material like mRNA to host cells. These novel strains utilize a balanced-lethal plasmid system and self-destruct mechanisms for efficient and safe antigen delivery.
Area of Science:
- Bacteriology
- Vaccinology
- Molecular Biology
Background:
- Listeria monocytogenes is an intracellular bacterium that infects mammalian cells.
- Its ability to replicate in the host cytosol makes it a potential vaccine vector.
- Efficient delivery of antigens to MHC class I and II pathways is crucial for immune response.
Purpose of the Study:
- To develop novel attenuated Listeria monocytogenes carrier strains.
- To enable the delivery of heterologous antigens, DNA, and RNA to eukaryotic host cells.
- To enhance the safety and efficacy of bacterial vaccine vectors.
Main Methods:
- Deletion of the chromosomal tryptophanyl-tRNA synthetase gene (trpS) with plasmid complementation to create a balanced-lethal system.
- Chromosomal deletion of genes in the aromatic amino acid pathway for attenuation and safety.
- Plasmid-based expression of phage lysin for a self-destructing carrier strain.
Main Results:
- Established a safe and attenuated L. monocytogenes carrier strain.
- Successfully delivered antigens, DNA, and mRNA to host cells.
- Overcame limitations associated with bacteria-mediated DNA delivery.
Conclusions:
- Attenuated L. monocytogenes strains are effective and safe vectors for antigen and nucleic acid delivery.
- The balanced-lethal plasmid system and self-destruct mechanism improve vector utility.
- This approach holds promise for developing advanced vaccines and immunotherapies.
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