Target intelligence / Profile preview

Severe acute respiratory syndrome coronavirus spike glycoprotein (S protein) (Spike (S) glycoprotein)

Target
Spike (S) glycoprotein
Molecular classification
Other, Viral structural protein, Class I viral fusion protein, Type I membrane glycoprotein, Trimeric transmembrane glycoprotein
01

Overview

The spike (S) glycoprotein is the major surface protein of coronaviruses, forming homotrimers that protrude from the virion and mediate attachment to host receptors and fusion of viral and cellular membranes, thereby enabling viral entry into cells[4]. Each protomer of the SARS‑CoV‑2 spike is a single-pass type I transmembrane glycoprotein of 1,273 amino acids with a large N‑terminal ectodomain and a short C‑terminal cytoplasmic tail; the trimer is heavily glycosylated[6][4]. The S protein is a class I viral fusion protein composed of two functional subunits: S1, which contains the receptor-binding domain (RBD) that binds the host receptor angiotensin‑converting enzyme 2 (ACE2), and S2, which contains the fusion peptide, heptad repeats (HR1/HR2), transmembrane domain, and cytoplasmic tail that drive membrane fusion[6][3]. SARS‑CoV‑2 spike binds human ACE2 with affinity comparable to SARS‑CoV and contains a distinctive multibasic furin cleavage site at the S1/S2 boundary that is processed during biogenesis and primes the protein for entry[7][1][9]. Structural studies have resolved prefusion and postfusion conformations and documented RBD “up/down” states and ACE2-bound complexes, providing a blueprint for vaccines and entry inhibitors[1][10][3]. The S glycoprotein is the principal target of neutralizing antibodies after infection or vaccination and is therefore a key therapeutic and vaccine antigen; changes in spike, such as D614G and other variant mutations, modulate infectivity, fusion, and antibody sensitivity[5][8][7].

Other names
Spike proteinS glycoproteinSARS-CoV spike glycoproteinSARS-CoV-2 spike glycoproteinCoronavirus spike proteinS protein trimerPeplomer
02

Mechanism of action

Neutralizing antibodies bind the receptor-binding domain (RBD) in S1 to block ACE2 engagement and prevent attachment/entry Antibodies bind non-RBD epitopes (e.g., NTD “supersite,” S2 epitopes) to neutralize and/or inhibit conformational changes needed for fusion Soluble ACE2 or ACE2-mimetics compete with cellular ACE2 for RBD binding Protease inhibitors targeting host proteases (e.g., TMPRSS2, metalloproteases) reduce S activation and S-mediated cell–cell fusion HR1/HR2 peptide mimetics disrupt six-helix bundle formation in S2, blocking membrane fusion Vaccines induce anti-spike neutralizing antibodies and T-cell responses that block infection or reduce disease severity

03

Biological functions

Virus attachment to host cellReceptor binding (ACE2 for SARS-CoV and SARS-CoV-2)Membrane fusionViral entryDetermination of host range and cell tropismInduction of neutralizing antibody responsesSyncytium formation (cell–cell fusion)
04

Disease associations

InfectionCOVID-19 (SARS-CoV-2)Severe acute respiratory syndrome (SARS-CoV)
05

Safety considerations

Antigenic drift and immune escape reducing effectiveness of spike-directed monoclonal antibodiesVariant-dependent loss of neutralization by vaccine-elicited antibodiesPotential for antibody-dependent enhancement has been a theoretical concern; clinical evidence has not shown a major issue with authorized vaccinesReliance on host protease activation pathways; tissue-specific protease expression may affect efficacy of entry inhibitorsViral evolution at the S1/S2 furin cleavage site can alter transmissibility and pathogenesis
06

Interacting drugs

Spike-directed monoclonal antibodies

10 more in the full profile.

07

Biomarkers

Anti-spike IgG/neutralizing antibody titers (serology) to assess prior exposure or vaccine responseACE2 expression in target tissues as a determinant of susceptibilitySpike sequence variants/mutations (e.g., RBD, NTD, S1/S2 site, D614G) for predicting immune escape and therapeutic antibody susceptibilityViral load with spike gene detection (PCR targets) for diagnosis/monitoring

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