An engineered decoy receptor for SARS-CoV-2 broadly binds protein S sequence variants.

Kui K Chan1 Timothy J C Tan2 Krishna K Narayanan2 Erik Procko3
Affiliations 3 institutions
  1. Orthogonal Biologics, Champaign, IL 61821, USA.
  2. Department of Biochemistry and Cancer Center at Illinois, University of Illinois, Urbana, IL 61801, USA.
  3. Department of Biochemistry and Cancer Center at Illinois, University of Illinois, Urbana, IL 61801, USA. [email protected].

Abstract

The spike S of SARS-CoV-2 recognizes ACE2 on the host cell membrane to initiate entry. Soluble decoy receptors, in which the ACE2 ectodomain is engineered to block S with high affinity, potently neutralize infection and, because of close similarity with the natural receptor, hold out the promise of being broadly active against virus variants without opportunity for escape. Here, we directly test this hypothesis. We find that an engineered decoy receptor, sACE22v2.4, tightly binds S of SARS-associated viruses from humans and bats, despite the ACE2-binding surface being a region of high diversity. Saturation mutagenesis of the receptor-binding domain followed by in vitro selection, with wild-type ACE2 and the engineered decoy competing for binding sites, failed to find S mutants that discriminate in favor of the wild-type receptor. We conclude that resistance to engineered decoys will be rare and that decoys may be active against future outbreaks of SARS-associated betacoronaviruses.

Supporting text Virus Host Location
COVID-19 Drug Treatment 2 Protein Engineering 2 Angiotensin-Converting Enzyme 2 177 Animals 1949 Cell Line 159 Chiroptera 372 Humans 1441 Mutagenesis 7 Protein Domains 45 SARS-CoV-2 453 ACE2 protein, human 87

Evidence records

1 total
Functional Mechanism
1 records · 1 evidence types
Evidence type
1 records
OVE4536
Key finding

Saturation mutagenesis of the SARS-CoV-2 spike receptor-binding domain failed to identify mutations that enhance binding to wild-type ACE2 compared to the engineered decoy, indicating limited potential for adaptive escape.

Virus
Host
Not specified
Location
Not specified
Supporting text

The spike S of SARS-CoV-2 recognizes ACE2 on the host cell membrane to initiate entry. Saturation mutagenesis of the receptor-binding domain followed by in vitro selection, with wild-type ACE2 and the engineered decoy competing for binding sites, failed to find S mutants that discriminate in favor of the wild-type receptor.

Genes or proteins
spike protein | receptor-binding domain | ACE2
Receptors
ACE2
Mechanism types
receptor binding | receptor usage | immune escape