RSV Infects the Human Nasal Epithelium via the Basolateral Route with Distinct Subgroup Infectivity and Basal Cell Tropism
Murray, A.; Nagaraj, D.; Schultz, E. M.; Aloisio, G. M.; Nicholson, E.; Blutt, S.; Avadhanula, V.; Piedra, P. A.
Show abstract
Respiratory syncytial virus (RSV) causes millions of lower respiratory tract infections (LRTIs) in young children, older adults, and immunocompromised populations every year. RSV infection initiates in the upper respiratory tract and can progress to the lower airways resulting in bronchiolitis, pneumonia, and even death. RSV primarily infects epithelial cells apically, but we hypothesized that basolateral exposure of the respiratory epithelium could provide an alternative mechanism of infection that contributes to LRTI development. Using a human nose organoid-air liquid interface (HNO-ALI) model, we performed apical and basolateral inoculations with contemporaneous RSV strains (RSV/A/ON and RSV/B/BA) representing the two RSV subgroups (A and B) in both adult and infant derived HNO-ALIs. Basolateral RSV exposure resulted in delayed viral replication and apical release compared to apical infection. A statistically significant difference in basolateral infection frequency was observed between RSV/B/BA and RSV/A/ON (81.3% versus 25%). Basolateral infection selectively targeted a rare basal cell population, while preserving epithelial integrity. Using undifferentiated HNO-ALIs, we determined for the first time that Krt23+ activated basal cells (ABCs) are uniquely susceptible to RSV infection, a finding we confirmed in fully differentiated HNO-ALIs. Together, our findings show that RSV can infect the respiratory epithelium from the basolateral side by initially targeting a rare subset of basal cells before spreading apically to ciliated cells. Moreover, RSV/B/BA may have an advantage over RSV/A/ON in utilizing the basolateral infection route. These findings highlight an alternative RSV infection pathway and could be a potential mechanism for RSV spread to the lower airways. ImportanceUnderstanding the pathogenesis of RSV is essential to understanding and preventing acute and long-term sequelae from infection. The canonical understanding of RSV infection is that the virus infects and is restricted to the apical ciliated cells upon inhalation or fomite exposure. We demonstrate that an alternative route of infection - the basolateral route, can be utilized by RSV to infect the apical ciliated cells of the respiratory epithelium. We also show for the first time a novel difference in infectivity between the two contemporaneous RSV strains (RSV/A/ON and RSV/B/BA). In addition, we describe a rare basal subset-the Krt23+ activated basal cells that are uniquely susceptible to RSV thus expanding the known cellular tropism of RSV. Infection of basal cells can impact airway differentiation, homeostasis, and remodeling. Overall, our findings expand on the pathogenesis of RSV and indicate there are alternative mechanisms of infection and cell populations that are susceptible to RSV.
Matching journals
The top 2 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Interferon-induced Protein-44 and Interferon-induced Protein 44-like restrict replication of Respiratory Syncytial Virus 95%
- Stealth replication of SARS-CoV-2 Omicron in the nasal epithelium at physiological temperature 95%
- The SARS-CoV-2 Spike is a virulence determinant and plays a major role on the attenuated phenotype of Omicron virus in a feline model of infection 95%
Similar papers in this journal
- The human nose organoid respiratory virus model: an ex-vivo human challenge model to study RSV and SARS-CoV-2 pathogenesis and evaluate therapeutics 96%
- Comparison of SARS-CoV-2 variants of concern in primary human nasal cultures demonstrates Delta as most cytopathic and Omicron as fastest replicating 96%
- Long Period Modeling SARS-CoV-2 Infection of in Vitro Cultured Polarized Human Airway Epithelium 96%
Similar papers in this journal
- Rhinovirus C replication is associated with the endoplasmic reticulum and triggers cytopathic effects in an in vitro model of human airway epithelium 95%
- SARS-CoV-2 ORF8 modulates lung inflammation and clinical disease progression 95%
- A three-dimensional Air-Liquid Interface Culture Model for the Study of Epstein-Barr virus Infection in the Nasopharynx 94%
Similar papers in this journal
- Rhinovirus reduces the severity of subsequent respiratory viral infections by interferon-dependent and -independent mechanisms 95%
- Dysregulation of lung epithelial cell homeostasis and immunity contributes to Middle East Respiratory Syndrome coronavirus disease severity 94%
- New Insights and Enhanced Human Norovirus Cultivation in Human Intestinal Enteroids 94%
Similar papers in this journal
- An engineered A549 cell line expressing CD13 and TMPRSS2 is permissive to clinical isolate of human coronavirus 229E 94%
- TF protein of Sindbis virus antagonizes host type I interferon responses in a palmitoylation-dependent manner 92%
- SPINT2 inhibits proteases involved in activation of both influenza viruses and metapneumoviruses 92%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.