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Published on: February 21, 2025
Cytopathogenesis of Sendai virus in well-differentiated primary pediatric bronchial epithelial cells
Rémi Villenave1, Olivier Touzelet, Surendran Thavagnanam
1Queen's University Belfast, Medical Biology Centre, Belfast BT9 7BL, Northern Ireland.
Abstract:
Sendai virus (SeV) is a murine respiratory virus of considerable interest as a gene therapy or vaccine vector, as it is considered nonpathogenic in humans. However, little is known about its interaction with the human respiratory tract. To address this, we developed a model of respiratory virus infection based on well-differentiated primary pediatric bronchial epithelial cells (WD-PBECs). These physiologically authentic cultures are comprised of polarized pseudostratified multilayered epithelium containing ciliated, goblet, and basal cells and intact tight junctions. To facilitate our studies, we rescued a replication-competent recombinant SeV expressing enhanced green fluorescent protein (rSeV/eGFP). rSeV/eGFP infected WD-PBECs efficiently and progressively and was restricted to ciliated and nonciliated cells, not goblet cells, on the apical surface. Considerable cytopathology was evident in the rSeV/eGFP-infected cultures postinfection. This manifested itself by ciliostasis, cell sloughing, apoptosis, and extensive degeneration of WD-PBEC cultures. Syncytia were also evident, along with significant basolateral secretion of proinflammatory chemokines, including IP-10, RANTES, tumor necrosis factor (TNF)-related apoptosis-inducing ligand (TRAIL), interleukin 6 (IL-6), and IL-8. Such deleterious responses are difficult to reconcile with a lack of pathogenesis in humans and suggest that caution may be required in exploiting replication-competent SeV as a vaccine vector. Alternatively, such robust responses might constitute appropriate normal host responses to viral infection and be a prerequisite for the induction of efficient immune responses.
Insights
Sendai virus (SeV) causes significant damage in human bronchial cells, including cell death and inflammation. This challenges its use as a gene therapy or vaccine vector in humans.
Area of Science:
- Virology
- Immunology
- Cell Biology
Background:
- Sendai virus (SeV) is a murine respiratory virus explored for gene therapy and vaccine applications.
- Its interaction with the human respiratory tract remains poorly understood, despite its nonpathogenic classification in humans.
Purpose of the Study:
- To investigate the interaction of Sendai virus (SeV) with human respiratory epithelial cells.
- To assess the potential of SeV as a gene therapy or vaccine vector in a human cell model.
Main Methods:
- Developed a model using well-differentiated primary pediatric bronchial epithelial cells (WD-PBECs).
- Utilized a replication-competent recombinant SeV expressing enhanced green fluorescent protein (rSeV/eGFP).
- Analyzed viral infection, cytopathology, and chemokine secretion in WD-PBEC cultures.
Main Results:
- rSeV/eGFP efficiently infected WD-PBECs, primarily affecting ciliated cells.
- Observed significant cytopathology including ciliostasis, apoptosis, cell sloughing, and degeneration.
- Detected basolateral secretion of proinflammatory chemokines (IP-10, RANTES, TRAIL, IL-6, IL-8).
Conclusions:
- The observed deleterious responses in human cells challenge the nonpathogenic status of SeV in humans.
- Caution is advised when using replication-competent SeV as a vaccine vector due to its inflammatory potential.
- These robust responses may represent normal host defenses crucial for effective immune responses.
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