Adaptation of SARS-CoV-2 to ACE2 H353K mice reveals new spike residues that drive mouse infection

Author:

Li Kun1ORCID,Verma Abhishek2,Li Pengfei2,Ortiz Miguel E.1,Hawkins Grant M.3,Schnicker Nicholas J.4,Szachowicz Peter J.5,Pezzulo Alejandro A.5,Wohlford-Lenane Christine L.1,Kicmal Tom3,Meyerholz David K.6,Gallagher Tom3ORCID,Perlman Stanley12ORCID,McCray Paul B.12ORCID

Affiliation:

1. Department of Pediatrics, The University of Iowa, Iowa City, Iowa, USA

2. Department of Microbiology and Immunology, The University of Iowa, Iowa City, Iowa, USA

3. Department of Microbiology and Immunology, Loyola University Chicago, Maywood, Illinois, USA

4. Protein and Crystallography Facility, The University of Iowa, Iowa City, Iowa, USA

5. Department of Internal Medicine, The University of Iowa, Iowa City, Iowa, USA

6. Department of Pathology, The University of Iowa, Iowa City, Iowa, USA

Abstract

ABSTRACT The Coronavirus Disease 2019 (COVID-19) pandemic continues to cause extraordinary loss of life and economic damage. Animal models of severe acute respiratory syndrome-coronavirus-2 (SARS-CoV-2) infection are needed to better understand disease pathogenesis and evaluate preventive measures and therapies. While mice are widely used to model human disease, mouse angiotensin converting enzyme 2 (ACE2) does not bind the ancestral SARS-CoV-2 spike protein to mediate viral entry. To overcome this limitation, we “humanized” mouse Ace2 using CRISPR gene editing to introduce a single amino acid substitution, H353K, predicted to facilitate S protein binding. While H353K knockin Ace2 (mACE2 H353K ) mice supported SARS-CoV-2 infection and replication, they exhibited minimal disease manifestations. Following 30 serial passages of ancestral SARS-CoV-2 in mACE2 H353K mice, we generated and cloned a more virulent virus. A single isolate (SARS2 MA-H353K ) was prepared for detailed studies. In 7–11-month-old mACE2 H353K mice, a 10 4 PFU inocula resulted in diffuse alveolar disease manifested as edema, hyaline membrane formation, and interstitial cellular infiltration/thickening. Unexpectedly, the mouse-adapted virus also infected standard BALB/c and C57BL/6 mice and caused severe disease. The mouse-adapted virus acquired five new missense mutations including two in spike (K417E, Q493K), one each in nsp4, nsp9, and M and a single nucleotide change in the 5′ untranslated region. The Q493K spike mutation arose early in serial passage and is predicted to provide affinity-enhancing molecular interactions with mACE2 and further increase the stability and affinity to the receptor. This new model and mouse-adapted virus will be useful to evaluate COVID-19 disease and prophylactic and therapeutic interventions. IMPORTANCE We developed a new mouse model with a humanized angiotensin converting enzyme 2 (ACE2) locus that preserves native regulatory elements. A single point mutation in mouse ACE2 (H353K) was sufficient to confer in vivo infection with ancestral severe acute respiratory syndrome-coronavirus-2 virus. Through in vivo serial passage, a virulent mouse-adapted strain was obtained. In aged mACE2H353K mice, the mouse-adapted strain caused diffuse alveolar disease. The mouse-adapted virus also infected standard BALB/c and C57BL/6 mice, causing severe disease. The mouse-adapted virus acquired five new missense mutations including two in spike (K417E, Q493K), one each in nsp4, nsp9, and M and a single nucleotide change in the 5′ untranslated region. The Q493K spike mutation arose early in serial passage and is predicted to provide affinity-enhancing molecular interactions with mACE2 and further increase the stability and affinity to the receptor. This new model and mouse-adapted virus will be useful to evaluate COVID-19 disease and prophylactic and therapeutic interventions.

Funder

HHS | National Institutes of Health

Publisher

American Society for Microbiology

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