Investigation of ACE2 N-terminal fragments binding to SARS-CoV-2 Spike RBD

Исследование связывания N-концевых фрагментов ACE2 с RBD шипового белка SARS-CoV-2
Genwei Zhang, Sebastian Pomplun, Alexander R. Loftis, Xuyu Tan, Andrei Loas, Bradley L. Pentelute
2020-03-20

ACE2 N-terminal fragmentsSARS-CoV-2 Spike RBDSBP1 peptidebio-layer interferometrymolecular dynamics simulations
Abstract Coronavirus disease 19 (COVID-19) is an emerging global health crisis. With over 7 million confirmed cases to date, this pandemic continues to expand, spurring research to discover vaccines and therapies. SARS-CoV-2 is the novel coronavirus responsible for this disease. It initiates entry into human cells by binding to angiotensin-converting enzyme 2 (ACE2) via the receptor binding domain (RBD) of its spike protein (S). Disrupting the SARS-CoV-2-RBD binding to ACE2 with designer drugs has the potential to inhibit the virus from entering human cells, presenting a new modality for therapeutic intervention. Peptide-based binders are an attractive solution to inhibit the RBD-ACE2 interaction by adequately covering the extended protein contact interface. Using molecular dynamics simulations based on the recently solved cryo-EM structure of ACE2 in complex with SARS-CoV-2-RBD, we observed that the ACE2 peptidase domain (PD) α1 helix is important for binding SARS-CoV-2-RBD. Using automated fast-flow peptide synthesis, we chemically synthesized a 23-mer peptide fragment of the ACE2 PD α1 helix (SBP1) composed entirely of proteinogenic amino acids. Chemical synthesis of SBP1 was complete in 1.5 hours, and after work up and isolation >20 milligrams of pure material was obtained. Bio-layer interferometry (BLI) revealed that SBP1 associates with micromolar affinity to insect-derived SARS-CoV-2-RBD protein obtained from Sino Biological. Association of SBP1 was not observed to an appreciable extent to HEK cell-expressed SARS-CoV-2-RBD proteins and insect-derived variants acquired from other vendors. Moreover, competitive BLI assays showed SBP1 does not outcompete ACE2 binding to Sino Biological insect-derived SARS-CoV-2-RBD. Further investigations are ongoing to gain insight into the molecular and structural determinants of the variable binding behavior to different SARS-CoV-2-RBD protein variants.
1
A 23-residue ACE2 α1-helix peptide, SBP1, was synthesized from proteinogenic amino acids in 1.5 hours, yielding over 20 milligrams of purified material.
2
Bio-layer interferometry showed that SBP1 binds insect-derived SARS-CoV-2 RBD from Sino Biological with micromolar affinity.
3
Molecular dynamics simulations identified the ACE2 peptidase-domain α1 helix as important for binding the SARS-CoV-2 spike receptor-binding domain.
4
SBP1 did not competitively inhibit ACE2 binding to Sino Biological insect-derived RBD, and the cause of variant-dependent binding remains unresolved.
5
SBP1 showed little appreciable binding to HEK-cell-expressed RBD or insect-derived RBD variants from other vendors.

ACE2 N-terminal peptide fragments, particularly the 23-mer ACE2 peptidase-domain α1 helix peptide SBP1, interacting with SARS-CoV-2 Spike receptor-binding domain (RBD) protein variants

The binding affinity, specificity, and competitive inhibition of ACE2-derived peptide SBP1 toward different SARS-CoV-2-RBD protein variants

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2020-03-20
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Genwei Zhang
Sebastian Pomplun
Alexander R. Loftis
Xuyu Tan
Andrei Loas
Bradley L. Pentelute
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