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Engineered ACE2 receptor traps potently neutralize SARS-CoV-2
Author(s) -
Anum Glasgow,
Jeff E. Glasgow,
Daniel Limonta,
Paige Solomon,
Irene Lui,
Sunny Zhang,
Matthew A. Nix,
Nicholas J. Rettko,
Shoshana Zha,
Rachel Yamin,
Kevin S. Kao,
Oren S. Rosenberg,
Jeffrey V. Ravetch,
Arun P. Wiita,
Kevin Leung,
Shion A. Lim,
Xin Zhou,
Tom C. Hobman,
Tanja Kortemme,
James A. Wells
Publication year - 2020
Publication title -
proceedings of the national academy of sciences of the united states of america
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.011
H-Index - 771
eISSN - 1091-6490
pISSN - 0027-8424
DOI - 10.1073/pnas.2016093117
Subject(s) - receptor , coronavirus , avidity , viral entry , virology , virus , antibody , biology , mutant , mutagenesis , neutralization , microbiology and biotechnology , chemistry , covid-19 , biochemistry , gene , viral replication , immunology , medicine , disease , pathology , infectious disease (medical specialty)
An essential mechanism for severe acute respiratory syndrome coronavirus 1 (SARS-CoV-1) and severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) infection begins with the viral spike protein binding to the human receptor protein angiotensin-converting enzyme II (ACE2). Here, we describe a stepwise engineering approach to generate a set of affinity optimized, enzymatically inactivated ACE2 variants that potently block SARS-CoV-2 infection of cells. These optimized receptor traps tightly bind the receptor binding domain (RBD) of the viral spike protein and prevent entry into host cells. We first computationally designed the ACE2-RBD interface using a two-stage flexible protein backbone design process that improved affinity for the RBD by up to 12-fold. These designed receptor variants were affinity matured an additional 14-fold by random mutagenesis and selection using yeast surface display. The highest-affinity variant contained seven amino acid changes and bound to the RBD 170-fold more tightly than wild-type ACE2. With the addition of the natural ACE2 collectrin domain and fusion to a human immunoglobulin crystallizable fragment (Fc) domain for increased stabilization and avidity, the most optimal ACE2 receptor traps neutralized SARS-CoV-2-pseudotyped lentivirus and authentic SARS-CoV-2 virus with half-maximal inhibitory concentrations (IC50s) in the 10- to 100-ng/mL range. Engineered ACE2 receptor traps offer a promising route to fighting infections by SARS-CoV-2 and other ACE2-using coronaviruses, with the key advantage that viral resistance would also likely impair viral entry. Moreover, such traps can be predesigned for viruses with known entry receptors for faster therapeutic response without the need for neutralizing antibodies isolated from convalescent patients.

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