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Culturing of Human Nasal Epithelial Cells at the Air Liquid Interface
Published on: October 8, 2013
Human Nasal Turbinate Tissues in Organ Culture as a Model for Human Cytomegalovirus Infection at the Mucosal Entry
Or Alfi1,2,3, Ido From1,2,3, Arkadi Yakirevitch4,5
1Clinical Virology Unit, Hadassah Hebrew University Medical Center, Jerusalem, Israel.
Abstract:
The initial events of viral infection at the primary mucosal entry site following horizontal person-to-person transmission have remained ill defined. Our limited understanding is further underscored by the absence of animal models in the case of human-restricted viruses, such as human cytomegalovirus (HCMV), a leading cause of congenital infection and a major pathogen in immunocompromised individuals. Here, we established a novel ex vivo model of HCMV infection in native human nasal turbinate tissues. Nasal turbinate tissue viability and physiological functionality were preserved for at least 7 days in culture. We found that nasal mucosal tissues were susceptible to HCMV infection, with predominant infection of ciliated respiratory epithelial cells. A limited viral spread was demonstrated, involving mainly stromal and vascular endothelial cells within the tissue. Importantly, functional antiviral and proleukocyte chemotactic signaling pathways were significantly upregulated in the nasal mucosa in response to infection. Conversely, HCMV downregulated the expression of nasal epithelial cell-related genes. We further revealed tissue-specific innate immune response patterns to HCMV, comparing infected human nasal mucosal and placental tissues, representing the viral entry and the maternal-to-fetal transmission sites, respectively. Taken together, our studies provide insights into the earliest stages of HCMV infection. Studies in this model could help evaluate new interventions against the horizontal transmission of HCMV.IMPORTANCE HCMV is a ubiquitous human pathogen causing neurodevelopmental disabilities in congenitally infected children and severe disease in immunocompromised patients. The earliest stages of HCMV infection in the human host have remained elusive in the absence of a model for the viral entry site. Here, we describe the establishment and use of a novel nasal turbinate organ culture to study the initial steps of viral infection and the consequent innate immune responses within the natural complexity and the full cellular repertoire of human nasal mucosal tissues. This model can be applied to examine new antiviral interventions against the horizontal transmission of HCMV and potentially that of other viruses.
Insights
This study introduces a new nasal tissue model to investigate early human cytomegalovirus (HCMV) infection. The model reveals how HCMV infects nasal cells and triggers immune responses, aiding antiviral development.
Area of Science:
- Virology
- Immunology
- Respiratory Medicine
Background:
- Human cytomegalovirus (HCMV) is a significant pathogen, causing congenital infections and disease in immunocompromised individuals.
- Understanding the initial events of HCMV transmission and infection at mucosal entry sites is crucial but limited by a lack of appropriate models for human-restricted viruses.
Purpose of the Study:
- To establish and characterize a novel ex vivo human nasal turbinate tissue model for studying early HCMV infection.
- To investigate the susceptibility of nasal mucosal tissues to HCMV and the subsequent innate immune responses.
Main Methods:
- Cultured native human nasal turbinate tissues ex vivo for up to 7 days.
- Inoculated tissues with HCMV and analyzed viral infection patterns and host cellular responses using molecular and histological techniques.
- Compared immune responses in nasal mucosa with those in placental tissues.
Main Results:
- Nasal turbinate tissues maintained viability and physiological function in culture.
- HCMV successfully infected ciliated respiratory epithelial cells, with limited spread to stromal and vascular endothelial cells.
- Infection significantly upregulated antiviral and pro-leukocyte signaling pathways but downregulated nasal epithelial cell-related genes.
- Distinct tissue-specific innate immune responses were observed between nasal and placental tissues.
Conclusions:
- The ex vivo nasal turbinate model effectively recapitulates early stages of HCMV infection and host immune responses.
- This model provides insights into HCMV's initial interaction with the human respiratory mucosa.
- The model holds potential for evaluating novel interventions against horizontal HCMV transmission and other viral infections.

