Development of an in vitro homeostasis model between airway epithelial cells, bacteria and bacteriophages: a time-lapsed observation of cell viability and inflammatory response

Author:

Tzani-Tzanopoulou Panagiota1ORCID,Rozumbetov Ramazan2,Taka Styliani1,Doudoulakakis Anastassios3,Lebessi Evangelia3,Chanishvili Nina4,Kakabadze Elene4,Bakuradze Nata4,Grdzelishvili Nino54,Goderdzishvili Marina6,Legaki Evangelia1,Andreakos Evangelos7,Papadaki Maria7,Megremis Spyridon8,Xepapadaki Paraskevi1,Kaltsas Grigoris9,Akdis Cezmi A.2,Papadopoulos Nikolaos G.81ORCID

Affiliation:

1. Allergy and Clinical Immunology Unit, 2nd Paediatric Clinic, National and Kapodistrian University of Athens, Athens, Greece

2. Swiss Institute of Allergy and Asthma Research (SIAF), University of Zurich, Davos, Switzerland

3. Department of Microbiology, Panagiotis & Aglaia Kyriakou Children’s Hospital, Athens, Greece

4. Laboratory for Genetics of Microorganisms and Bacteriophages, Eliava Institute of Bacteriophages, Microbiology & Virology, Tbilisi, Georgia

5. Ilia State University, Tbilisi, Georgia

6. Eliava BioPreparations Ltd, Tbilisi, Georgia

7. Centre for Clinical, Experimental Surgery and Translational Research, Biomedical Research Foundation of the Academy of Athens, Athens, Greece

8. Division of Evolution and Genomic Sciences, University of Manchester, Manchester, UK

9. Department of Electrical and Electronic Engineering, University of West Attica, Athens, Greece

Abstract

Bacteriophages represent the most extensive group of viruses within the human virome and have a significant impact on general health and well-being by regulating bacterial population dynamics. Staphylococcus aureus , found in the anterior nostrils, throat and skin, is an opportunistic pathobiont that can cause a wide range of diseases, from chronic inflammation to severe and acute infections. In this study, we developed a human cell-based homeostasis model between a clinically isolated strain of S. aureus 141 and active phages for this strain (PYOSa141) isolated from the commercial Pyophage cocktail (PYO). The cocktail is produced by Eliava BioPreparations Ltd. (Tbilisi, Georgia) and is used as an add-on therapy for bacterial infections, mainly in Georgia. The triptych interaction model was evaluated by time-dependent analysis of cell death and inflammatory response of the nasal and bronchial epithelial cells. Inflammatory mediators (IL-8, CCL5/RANTES, IL-6 and IL-1β) in the culture supernatants were measured by enzyme-linked immunosorbent assay and cell viability was determined by crystal violet staining. By measuring trans-epithelial electrical resistance, we assessed the epithelial integrity of nasal cells that had differentiated under air-liquid interface conditions. PYOSa141 was found to have a prophylactic effect on airway epithelial cells exposed to S. aureus 141 by effectively down-regulating bacterial-induced inflammation, cell death and epithelial barrier disruption in a time-dependent manner. Overall, the proposed model represents an advance in the way multi-component biological systems can be simulated in vitro.

Funder

HORIZON EUROPE Framework Programme

Publisher

Microbiology Society

Subject

Virology

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