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Spike glycoprotein (S) of Severe acute respiratory syndrome coronavirus (SARS-CoV) (Spike protein (S))

Target
Spike protein (S)
Molecular classification
Viral fusion protein (class I), Viral attachment protein, Other
01

Overview

The spike glycoprotein is a trimeric class I viral fusion protein on the coronavirus envelope that mediates host cell entry by binding a host receptor via its S1 subunit and driving membrane fusion via its S2 subunit[1][2][9]. Each protomer is a type I membrane protein of approximately 1273 amino acids in SARS-CoV/SARS‑CoV‑2, with an N-terminal signal peptide, an S1 region containing the N-terminal domain and receptor-binding domain (RBD), and an S2 region containing the fusion peptide, heptad repeats HR1 and HR2, transmembrane segment, and cytoplasmic tail[2][5][9]. The spike is heavily N‑glycosylated and undergoes proteolytic cleavage at the S1/S2 boundary (often by furin if a site is present) and at the S2′ site to activate fusion[1][2][3]. In SARS-related coronaviruses, the RBD engages the host receptor angiotensin‑converting enzyme 2 (ACE2), with the RBD toggling between “down” (receptor-inaccessible) and “up” (receptor-accessible) conformations prior to binding[2][4][8]. Receptor engagement and proteolytic activation trigger large conformational changes in S2, including HR1–HR2 assembly into a six-helix bundle that drives apposition and fusion of viral and cellular membranes[1][4][5]. Because spike governs attachment, fusion, and is the principal target of neutralizing antibodies, it is a key therapeutic and vaccine target; interventions include RBD‑blocking antibodies, S2 fusion inhibitors targeting HR1/HR2, and strategies that modulate or inhibit host proteases required for spike activation[3][4][5][7][9].

Other names
Spike proteinS glycoproteinSpike (S)Coronavirus spike proteinSARS coronavirus spike proteinSARS-CoV spike protein
02

Mechanism of action

Block receptor binding by targeting the receptor-binding domain (RBD) to prevent spike interaction with ACE2 Neutralize virions by binding epitopes on S1/RBD or N-terminal domain (NTD) Inhibit membrane fusion by targeting S2 heptad repeats (HR1/HR2) to prevent six-helix bundle formation Block proteolytic activation at S1/S2 or S2′ sites indirectly via host protease inhibition (e.g., TMPRSS2) Stabilize prefusion conformations that are non-fusogenic

03

Biological functions

Viral entry (attachment to host receptor)Membrane fusionImmune evasionAntigenicity/neutralizing antibody targetOther
04

Disease associations

Infection
05

Safety considerations

Antigenic drift/escape mutations in spike reducing efficacy of monoclonal antibodiesDependence on host proteases and tissue expression patterns affecting efficacy of entry inhibitorsPotential enhancement of cell–cell fusion (syncytium formation) impacting pathogenesis and complicating intervention strategiesNeed for continuous surveillance to maintain activity of spike-targeting therapeutics across variants
06

Interacting drugs

Nirmatrelvir/ritonavir (Paxlovid) [note: targets viral protease, not spike; listed here only to avoid confusion; does not interact with spike]

10 more in the full profile.

07

Biomarkers

Viral genomic detection of spike mutations/variants (e.g., changes in RBD, furin site) for predicting susceptibility to spike-directed antibodiesAnti-spike antibody titers (neutralizing titers) for immune monitoringACE2 expression (contextual, host factor)Spike protein antigen levels (in research assays)

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