Luminescent reporter cells enable the identification of broad‐spectrum antivirals against emerging viruses

Author:

Löw Karin12ORCID,Möller Rebecca1ORCID,Stegmann Cora1ORCID,Becker Miriam1ORCID,Rehburg Laura1,Obernolte Helena34567,Schaudien Dirk34567ORCID,Oestereich Lisa89ORCID,Braun Armin34567ORCID,Kunz Stefan2,Gerold Gisa11011ORCID

Affiliation:

1. Department of Biochemistry & Research Center for Emerging Infections and Zoonoses (RIZ) University of Veterinary Medicine Hannover Hannover Germany

2. Institute of Microbiology University Hospital Center and University of Lausanne Lausanne Switzerland

3. Fraunhofer Institute for Toxicology and Experimental Medicine (ITEM) Hannover Germany

4. Fraunhofer International Consortium for Anti‐Infective Research (iCAIR) Hannover Germany

5. Fraunhofer Cluster of Excellence Immune‐Mediated Diseases, (CIMD) Hannover Germany

6. Member of the German Center for Lung Research (DZL) Biomedical Research in Endstage and Obstructive Lung Disease (BREATH) Research Network Hannover Germany

7. Institute of Immunology Hannover Medical School Hannover Germany

8. Department of Virology Bernhard‐Nocht Institute for Tropical Medicine Hamburg Germany

9. German Center for Infectious Research (DZIF) Partner Site Hamburg‐Lübeck‐Borstel‐Riems Hamburg

10. Department of Clinical Microbiology Umeå University Sweden

11. Wallenberg Centre for Molecular Medicine (WCMM) Umeå University Sweden

Abstract

AbstractThe emerging viruses SARS‐CoV‐2 and arenaviruses cause severe respiratory and hemorrhagic diseases, respectively. The production of infectious particles of both viruses and virus spread in tissues requires cleavage of surface glycoproteins (GPs) by host proprotein convertases (PCs). SARS‐CoV‐2 and arenaviruses rely on GP cleavage by PCs furin and subtilisin kexin isozyme‐1/site‐1 protease (SKI‐1/S1P), respectively. We report improved luciferase‐based reporter cell lines, named luminescent inducible proprotein convertase reporter cells that we employ to monitor PC activity in its authentic subcellular compartment. Using these sensor lines we screened a small compound library in high‐throughput manner. We identified 23 FDA‐approved small molecules, among them monensin which displayed broad activity against furin and SKI‐1/S1P. Monensin inhibited arenaviruses and SARS‐CoV‐2 in a dose‐dependent manner. We observed a strong reduction in infectious particle release upon monensin treatment with little effect on released genome copies. This was reflected by inhibition of SARS‐CoV‐2 spike processing suggesting the release of immature particles. In a proof of concept experiment using human precision cut lung slices, monensin potently inhibited SARS‐CoV‐2 infection, evidenced by reduced infectious particle release. We propose that our PC sensor pipeline is a suitable tool to identify broad‐spectrum antivirals with therapeutic potential to combat current and future emerging viruses.

Publisher

Wiley

Subject

Infectious Diseases,Virology

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