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A model of chronic, transmissible Otitis Media in mice
Kalyan K Dewan1, Dawn L Taylor-Mulneix2, Laura L Campos3
1Department of Infectious Diseases, College of Veterinary Medicine, University of Georgia, Athens, Georgia, United States of America.
Abstract:
Infection and inflammation of the middle ears that characterizes acute and chronic otitis media (OM), is a major reason for doctor visits and antibiotic prescription, particularly among children. Nasopharyngeal pathogens that are commonly associated with OM in humans do not naturally colonize the middle ears of rodents, and experimental models in most cases involve directly injecting large numbers of human pathogens into the middle ear bullae of rodents, where they induce a short-lived acute inflammation but fail to persist. Here we report that Bordetella pseudohinzii, a respiratory pathogen of mice, naturally, efficiently and rapidly ascends the eustachian tubes to colonize the middle ears, causing acute and chronic histopathological changes with progressive decrease in hearing acuity that closely mimics otitis media in humans. Laboratory mice experimentally inoculated intranasally with very low numbers of bacteria consistently have their middle ears colonized and subsequently transmit the bacterium to cage mates. Taking advantage of the specifically engineered and well characterized immune deficiencies available in mice we conducted experiments to uncover different roles of T and B cells in controlling bacterial numbers in the middle ear during chronic OM. The iconic mouse model provides significant advantages for elucidating aspects of host-pathogen interactions in otitis media that are currently not possible using other animal models. This natural model of otitis media permits the study of transmission between hosts, efficient early colonization of the respiratory tract, ascension of the eustachian tube, as well as colonization, pathogenesis and persistence in the middle ear. It also allows the combination of the powerful tools of mouse molecular immunology and bacterial genetics to determine the mechanistic basis for these important processes.
Insights
A novel mouse model using Bordetella pseudohinzii effectively mimics human otitis media (OM), enabling studies on bacterial colonization, transmission, and host immune responses in the middle ear. This research advances understanding of OM pathogenesis and potential treatments.
Area of Science:
- Microbiology
- Immunology
- Otolaryngology
Background:
- Otitis media (OM) is a common middle ear infection causing significant healthcare visits and antibiotic use, especially in children.
- Existing rodent models of OM often involve artificial pathogen introduction and fail to replicate chronic infection or natural transmission.
- Nasopharyngeal pathogens typically do not colonize the rodent middle ear, limiting effective experimental modeling.
Purpose of the Study:
- To establish a natural and efficient mouse model for studying acute and chronic otitis media (OM).
- To investigate the pathogenesis, transmission, and host-pathogen interactions of middle ear infections.
- To explore the roles of T and B cells in controlling bacterial infections within the middle ear.
Main Methods:
- Intranasal inoculation of mice with low doses of Bordetella pseudohinzii, a known respiratory pathogen.
- Observation of natural bacterial ascent through the eustachian tube to colonize the middle ear.
- Utilizing genetically engineered immunodeficient mouse strains to study immune cell roles in chronic OM.
Main Results:
- Bordetella pseudohinzii efficiently colonizes the middle ear, causing histopathological changes and hearing loss mimicking human OM.
- The bacterium transmits naturally between cage mates, demonstrating host-to-host spread.
- The model allows for the study of chronic infection, bacterial persistence, and immune responses in the middle ear.
Conclusions:
- This mouse model offers a significant advancement for studying otitis media, allowing for investigation of natural infection dynamics, transmission, and host immunity.
- It provides a platform to explore the mechanistic basis of OM pathogenesis using established immunological and genetic tools.
- The model facilitates research into host-pathogen interactions crucial for developing new therapeutic strategies for OM.
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