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Early cell-autonomous and niche-mediated epithelial response to influenza infection in primary alveolar organoids
Amber Elitz, Sharlene Fernandes, Kathleen C.S. Cook, Helen I. Warheit-Niemi, Barbara Zhao, Andrea Toth, Amanda L. Zacharias, William J. Zacharias
Amber Elitz, Sharlene Fernandes, Kathleen C.S. Cook, Helen I. Warheit-Niemi, Barbara Zhao, Andrea Toth, Amanda L. Zacharias, William J. Zacharias
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Research Article Infectious disease Pulmonology

Early cell-autonomous and niche-mediated epithelial response to influenza infection in primary alveolar organoids

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Abstract

Influenza A virus (IAV) infection is a major cause of morbidity and mortality for patients worldwide. Alveolar type 2 (AT2) cells are the preferential target of IAV as part of the pathogenesis of viral pneumonia and acute respiratory distress syndrome (ARDS). Early IAV infection of alveolar cells has been challenging to model both in vitro and in vivo. To address this challenge, we used a combination of murine and human primary alveolar organoids to define methods for robust IAV infection and evaluated cell-autonomous consequences of IAV using a temporal series of multiome paired single-nucleus RNA and ATAC sequencing assays. Infected AT2 cells demonstrated conserved changes defined by early loss of surfactant secretion, decreased lipid biogenesis, a rapid burst of antiviral response, and late virus-mediated suppression. Surprisingly, uninfected AT2 cells underwent substantial transcriptional and epigenomic changes in IAV-treated cultures, leading to transition to damage-associated cell states within hours via a process driven by the inflammatory milieu of murine organoids. Together, these data provide methods for high-fidelity modeling of IAV infection in alveolar cells and defined a conserved AT2 cell response signature to IAV with implications for ARDS pathogenesis.

Authors

Amber Elitz, Sharlene Fernandes, Kathleen C.S. Cook, Helen I. Warheit-Niemi, Barbara Zhao, Andrea Toth, Amanda L. Zacharias, William J. Zacharias

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Figure 1

Optimization of influenza A (IAV) infection conditions for alveolar organoids (AEOs).

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Optimization of influenza A (IAV) infection conditions for alveolar orga...
(A) Treatment of AEOs with IAV in media placed on apical surface of Transwell above Matrigel plug. Minimal NP expression is evident at 24 hpi. (B) Morphology of AEOs in suspension culture after liberation from Matrigel. AT1 and AT2 cell morphology is maintained for 24 hours after suspension but has decreased by 36 hours. (C) Cell number per organoid in suspension culture. We noted a substantial loss of cell number by 36 hours after liberation. (D) Cell state of AEOs with infection of IAV using SAGM base with TPCK-treated trypsin and lacking serum (Inf. media). Suspension in this medium allowed flu infection by 8 hours (NP) but led to loss of AT1 cells (AGER) without loss of AT2 cells (SPC). (E) Impact of different media compositions on cell junctions in AEOs. Infection media (top row) led to loss of AGER and associated loss of ZO-1–marked cell surface tight junctions. Removal of TPCK-treated trypsin or addition of 5% serum prevented these changes. Scale bars: 50 μm. SPC, surfactant protein C (AT2 marker); AGER, advance glycosylation end-product–specific receptor (AT1 marker); NP, IAV nucleoprotein (infected cell marker); ZO-1, zonula occludens-1 (cell surface tight junction marker).

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