Aprotinin Inhibits SARS-CoV-2 Replication
CELLS
Authors: Bojkova, Denisa; Bechtel, Marco; McLaughlin, Katie-May; McGreig, Jake E.; Klann, Kevin; Bellinghausen, Carla; Rohde, Gernot; Jonigk, Danny; Braubach, Peter; Ciesek, Sandra; Muench, Christian; Wass, Mark N.; Michaelis, Martin; Cinatl, Jindrich
Abstract
Severe acute respiratory syndrome virus 2 (SARS-CoV-2) is the cause of the current coronavirus disease 19 (COVID-19) pandemic. Protease inhibitors are under consideration as virus entry inhibitors that prevent the cleavage of the coronavirus spike (S) protein by cellular proteases. Herein, we showed that the protease inhibitor aprotinin (but not the protease inhibitor SERPINA1/alpha-1 antitrypsin) inhibited SARS-CoV-2 replication in therapeutically achievable concentrations. An analysis of proteomics and translatome data indicated that SARS-CoV-2 replication is associated with a downregulation of host cell protease inhibitors. Hence, aprotinin may compensate for downregulated host cell proteases during later virus replication cycles. Aprotinin displayed anti-SARS-CoV-2 activity in different cell types (Caco2, Calu-3, and primary bronchial epithelial cell air-liquid interface cultures) and against four virus isolates. In conclusion, therapeutic aprotinin concentrations exert anti-SARS-CoV-2 activity. An approved aprotinin aerosol may have potential for the early local control of SARS-CoV-2 replication and the prevention of COVID-19 progression to a severe, systemic disease.
A transgenic zebrafish model of hepatocyte function in human Z alpha 1-antitrypsin deficiency
BIOLOGICAL CHEMISTRY
Authors: Yip, Evelyn; Giousoh, Aminah; Fung, Connie; Wilding, Brendan; Prakash, Monica D.; Williams, Caitlin; Verkade, Heather; Bryson-Richardson, Robert J.; Bird, Phillip I.
Abstract
In human alpha 1-antitrypsin deficiency, homozygous carriers of the Z (E324K) mutation in the gene SERPINA1 have insufficient circulating alpha 1-antitrypsin and are predisposed to emphysema. Misfolding and accumulation of the mutant protein in hepatocytes also causes endoplasmic reticulum stress and underpins long-term liver damage. Here, we describe transgenic zebrafish (Danio rerio) expressing the wildtype or the Z mutant form of human alpha 1-antitrypsin in hepatocytes. As observed in afflicted humans, and in rodent models, about 80% less alpha 1-antitrypsin is evident in the circulation of zebrafish expressing the Z mutant. Although these zebrafish also show signs of liver stress, they do not accumulate alpha 1-antitrypsin in hepatocytes. This new zebrafish model will provide useful insights into understanding and treatment of alpha 1-antitrypsin deficiency.