Mechanical activation of spike fosters SARS-CoV-2 viral infection
Механическая активация спайкового белка способствует заражению вирусом SARS-CoV-2
2021-08-31
SCID: 54.1/2spjg6pf
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ACE2 bindingD614G mutantS1/S2 detachmentSARS-CoV-2 spike proteinmechanical activation
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Abstract (AI)
Abstract The outbreak of SARS-CoV-2 (SARS2) has caused a global COVID-19 pandemic. The spike protein of SARS2 (SARS2-S) recognizes host receptors, including ACE2, to initiate viral entry in a complex biomechanical environment. Here, we reveal that tensile force, generated by bending of the host cell membrane, strengthens spike recognition of ACE2 and accelerates the detachment of spike’s S1 subunit from the S2 subunit to rapidly prime the viral fusion machinery. Mechanistically, such mechano-activation is fulfilled by force-induced opening and rotation of spike’s receptor-binding domain to prolong the bond lifetime of spike/ACE2 binding, up to 4 times longer than that of SARS-S binding with ACE2 under 10 pN force application, and subsequently by force-accelerated S1/S2 detachment which is up to ~103 times faster than that in the no-force condition. Interestingly, the SARS2-S D614G mutant, a more infectious variant, shows 3-time stronger force-dependent ACE2 binding and 35-time faster force-induced S1/S2 detachment. We also reveal that an anti-S1/S2 non-RBD-blocking antibody that was derived from convalescent COVID-19 patients with potent neutralizing capability can reduce S1/S2 detachment by 3 × 106 times under force. Our study sheds light on the mechano-chemistry of spike activation and on developing a non-RBD-blocking but S1/S2-locking therapeutic strategy to prevent SARS2 invasion.
Key Findings
1
A non-RBD-blocking anti-S1/S2 antibody reduces force-induced S1/S2 detachment by 3 × 10^6-fold, supporting an S1/S2-locking therapeutic strategy.
2
Force accelerates spike S1/S2 subunit detachment by approximately 10^3-fold relative to the no-force condition, rapidly priming viral fusion.
3
Tensile force from host-cell membrane bending strengthens SARS-CoV-2 spike recognition of ACE2 through force-induced receptor-binding-domain opening and rotation.
4
The D614G spike mutant exhibits threefold stronger force-dependent ACE2 binding and 35-fold faster force-induced S1/S2 detachment.
5
Under 10 pN force, SARS-CoV-2 spike–ACE2 bonds last up to four times longer than SARS spike–ACE2 bonds.
Research Object
SARS-CoV-2 spike protein (including the D614G mutant) interacting with the ACE2 host receptor under tensile force
Research Subject
Force-dependent mechano-activation of spike–ACE2 recognition and S1/S2 subunit detachment that primes viral membrane fusion, including modulation by the D614G mutation and an anti-S1/S2 antibody
Publication Details
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2021-08-31
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