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Human Multi-Compartment Airways-on-Chip Platform for Emulating Respiratory Airborne Transmission: From Nose to Pulmonary Acini

The past decade has witnessed tremendous endeavors to deliver novel preclinical in vitro lung models for pulmonary research endpoints, including foremost with the advent of organ- and lung-on-chips. With growing interest in aerosol transmission and infection of respiratory viruses within a host, mos...

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Autores principales: Nof, Eliram, Zidan, Hikaia, Artzy-Schnirman, Arbel, Mouhadeb, Odelia, Beckerman, Margarita, Bhardwaj, Saurabh, Elias-Kirma, Shani, Gur, Didi, Beth-Din, Adi, Levenberg, Shulamit, Korin, Netanel, Ordentlich, Arie, Sznitman, Josué
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8957966/
https://www.ncbi.nlm.nih.gov/pubmed/35350687
http://dx.doi.org/10.3389/fphys.2022.853317
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author Nof, Eliram
Zidan, Hikaia
Artzy-Schnirman, Arbel
Mouhadeb, Odelia
Beckerman, Margarita
Bhardwaj, Saurabh
Elias-Kirma, Shani
Gur, Didi
Beth-Din, Adi
Levenberg, Shulamit
Korin, Netanel
Ordentlich, Arie
Sznitman, Josué
author_facet Nof, Eliram
Zidan, Hikaia
Artzy-Schnirman, Arbel
Mouhadeb, Odelia
Beckerman, Margarita
Bhardwaj, Saurabh
Elias-Kirma, Shani
Gur, Didi
Beth-Din, Adi
Levenberg, Shulamit
Korin, Netanel
Ordentlich, Arie
Sznitman, Josué
author_sort Nof, Eliram
collection PubMed
description The past decade has witnessed tremendous endeavors to deliver novel preclinical in vitro lung models for pulmonary research endpoints, including foremost with the advent of organ- and lung-on-chips. With growing interest in aerosol transmission and infection of respiratory viruses within a host, most notably the SARS-CoV-2 virus amidst the global COVID-19 pandemic, the importance of crosstalk between the different lung regions (i.e., extra-thoracic, conductive and respiratory), with distinct cellular makeups and physiology, are acknowledged to play an important role in the progression of the disease from the initial onset of infection. In the present Methods article, we designed and fabricated to the best of our knowledge the first multi-compartment human airway-on-chip platform to serve as a preclinical in vitro benchmark underlining regional lung crosstalk for viral infection pathways. Combining microfabrication and 3D printing techniques, our platform mimics key elements of the respiratory system spanning (i) nasal passages that serve as the alleged origin of infections, (ii) the mid-bronchial airway region and (iii) the deep acinar region, distinct with alveolated airways. Crosstalk between the three components was exemplified in various assays. First, viral-load (including SARS-CoV-2) injected into the apical partition of the nasal compartment was detected in distal bronchial and acinar components upon applying physiological airflow across the connected compartment models. Secondly, nebulized viral-like dsRNA, poly I:C aerosols were administered to the nasal apical compartment, transmitted to downstream compartments via respiratory airflows and leading to an elevation in inflammatory cytokine levels secreted by distinct epithelial cells in each respective compartment. Overall, our assays establish an in vitro methodology that supports the hypothesis for viral-laden airflow mediated transmission through the respiratory system cellular landscape. With a keen eye for broader end user applications, we share detailed methodologies for fabricating, assembling, calibrating, and using our multi-compartment platform, including open-source fabrication files. Our platform serves as an early proof-of-concept that can be readily designed and adapted to specific preclinical pulmonary research endpoints.
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spelling pubmed-89579662022-03-28 Human Multi-Compartment Airways-on-Chip Platform for Emulating Respiratory Airborne Transmission: From Nose to Pulmonary Acini Nof, Eliram Zidan, Hikaia Artzy-Schnirman, Arbel Mouhadeb, Odelia Beckerman, Margarita Bhardwaj, Saurabh Elias-Kirma, Shani Gur, Didi Beth-Din, Adi Levenberg, Shulamit Korin, Netanel Ordentlich, Arie Sznitman, Josué Front Physiol Physiology The past decade has witnessed tremendous endeavors to deliver novel preclinical in vitro lung models for pulmonary research endpoints, including foremost with the advent of organ- and lung-on-chips. With growing interest in aerosol transmission and infection of respiratory viruses within a host, most notably the SARS-CoV-2 virus amidst the global COVID-19 pandemic, the importance of crosstalk between the different lung regions (i.e., extra-thoracic, conductive and respiratory), with distinct cellular makeups and physiology, are acknowledged to play an important role in the progression of the disease from the initial onset of infection. In the present Methods article, we designed and fabricated to the best of our knowledge the first multi-compartment human airway-on-chip platform to serve as a preclinical in vitro benchmark underlining regional lung crosstalk for viral infection pathways. Combining microfabrication and 3D printing techniques, our platform mimics key elements of the respiratory system spanning (i) nasal passages that serve as the alleged origin of infections, (ii) the mid-bronchial airway region and (iii) the deep acinar region, distinct with alveolated airways. Crosstalk between the three components was exemplified in various assays. First, viral-load (including SARS-CoV-2) injected into the apical partition of the nasal compartment was detected in distal bronchial and acinar components upon applying physiological airflow across the connected compartment models. Secondly, nebulized viral-like dsRNA, poly I:C aerosols were administered to the nasal apical compartment, transmitted to downstream compartments via respiratory airflows and leading to an elevation in inflammatory cytokine levels secreted by distinct epithelial cells in each respective compartment. Overall, our assays establish an in vitro methodology that supports the hypothesis for viral-laden airflow mediated transmission through the respiratory system cellular landscape. With a keen eye for broader end user applications, we share detailed methodologies for fabricating, assembling, calibrating, and using our multi-compartment platform, including open-source fabrication files. Our platform serves as an early proof-of-concept that can be readily designed and adapted to specific preclinical pulmonary research endpoints. Frontiers Media S.A. 2022-03-08 /pmc/articles/PMC8957966/ /pubmed/35350687 http://dx.doi.org/10.3389/fphys.2022.853317 Text en Copyright © 2022 Nof, Zidan, Artzy-Schnirman, Mouhadeb, Beckerman, Bhardwaj, Elias-Kirma, Gur, Beth-Din, Levenberg, Korin, Ordentlich and Sznitman. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Physiology
Nof, Eliram
Zidan, Hikaia
Artzy-Schnirman, Arbel
Mouhadeb, Odelia
Beckerman, Margarita
Bhardwaj, Saurabh
Elias-Kirma, Shani
Gur, Didi
Beth-Din, Adi
Levenberg, Shulamit
Korin, Netanel
Ordentlich, Arie
Sznitman, Josué
Human Multi-Compartment Airways-on-Chip Platform for Emulating Respiratory Airborne Transmission: From Nose to Pulmonary Acini
title Human Multi-Compartment Airways-on-Chip Platform for Emulating Respiratory Airborne Transmission: From Nose to Pulmonary Acini
title_full Human Multi-Compartment Airways-on-Chip Platform for Emulating Respiratory Airborne Transmission: From Nose to Pulmonary Acini
title_fullStr Human Multi-Compartment Airways-on-Chip Platform for Emulating Respiratory Airborne Transmission: From Nose to Pulmonary Acini
title_full_unstemmed Human Multi-Compartment Airways-on-Chip Platform for Emulating Respiratory Airborne Transmission: From Nose to Pulmonary Acini
title_short Human Multi-Compartment Airways-on-Chip Platform for Emulating Respiratory Airborne Transmission: From Nose to Pulmonary Acini
title_sort human multi-compartment airways-on-chip platform for emulating respiratory airborne transmission: from nose to pulmonary acini
topic Physiology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8957966/
https://www.ncbi.nlm.nih.gov/pubmed/35350687
http://dx.doi.org/10.3389/fphys.2022.853317
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