Literature DB >> 15078936

Amino acids 270 to 510 of the severe acute respiratory syndrome coronavirus spike protein are required for interaction with receptor.

Gregory J Babcock1, Diana J Esshaki, William D Thomas, Donna M Ambrosino.   

Abstract

A novel coronavirus, severe acute respiratory syndrome coronavirus (SARS-CoV), has recently been identified as the causative agent of severe acute respiratory syndrome (SARS). SARS-CoV appears similar to other coronaviruses in both virion structure and genome organization. It is known for other coronaviruses that the spike (S) glycoprotein is required for both viral attachment to permissive cells and for fusion of the viral envelope with the host cell membrane. Here we describe the construction and expression of a soluble codon-optimized SARS-CoV S glycoprotein comprising the first 1,190 amino acids of the native S glycoprotein (S(1190)). The codon-optimized and native S glycoproteins exhibit similar molecular weight as determined by Western blot analysis, indicating that synthetic S glycoprotein is modified correctly in a mammalian expression system. S(1190) binds to the surface of Vero E6 cells, a cell permissive to infection, as demonstrated by fluorescence-activated cell sorter analysis, suggesting that S(1190) maintains the biologic activity present in native S glycoprotein. This interaction is blocked with serum obtained from recovering SARS patients, indicating that the binding is specific. In an effort to map the ligand-binding domain of the SARS-CoV S glycoprotein, carboxy- and amino-terminal truncations of the S(1190) glycoprotein were constructed. Amino acids 270 to 510 were the minimal receptor-binding region of the SARS-CoV S glycoprotein as determined by flow cytometry. We speculate that amino acids 1 to 510 of the SARS-CoV S glycoprotein represent a unique domain containing the receptor-binding site (amino acids 270 to 510), analogous to the S1 subunit of other coronavirus S glycoproteins.

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Year:  2004        PMID: 15078936      PMCID: PMC387703          DOI: 10.1128/jvi.78.9.4552-4560.2004

Source DB:  PubMed          Journal:  J Virol        ISSN: 0022-538X            Impact factor:   5.103


  27 in total

Review 1.  Membrane fusion.

Authors:  J M White
Journal:  Science       Date:  1992-11-06       Impact factor: 47.728

2.  Isolation of a porcine respiratory, non-enteric coronavirus related to transmissible gastroenteritis.

Authors:  M Pensaert; P Callebaut; J Vergote
Journal:  Vet Q       Date:  1986-07       Impact factor: 3.320

3.  Coronavirus proteins: biogenesis of avian infectious bronchitis virus virion proteins.

Authors:  D F Stern; B M Sefton
Journal:  J Virol       Date:  1982-12       Impact factor: 5.103

4.  Localization of neutralizing epitopes and the receptor-binding site within the amino-terminal 330 amino acids of the murine coronavirus spike protein.

Authors:  H Kubo; Y K Yamada; F Taguchi
Journal:  J Virol       Date:  1994-09       Impact factor: 5.103

5.  Major receptor-binding and neutralization determinants are located within the same domain of the transmissible gastroenteritis virus (coronavirus) spike protein.

Authors:  M Godet; J Grosclaude; B Delmas; H Laude
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Review 6.  The molecular biology of coronaviruses.

Authors:  L S Sturman; K V Holmes
Journal:  Adv Virus Res       Date:  1983       Impact factor: 9.937

7.  Protection from lethal coronavirus infection by affinity-purified spike glycoprotein of murine hepatitis virus, strain A59.

Authors:  C Daniel; P J Talbot
Journal:  Virology       Date:  1990-01       Impact factor: 3.616

8.  Primary structure of the glycoprotein E2 of coronavirus MHV-A59 and identification of the trypsin cleavage site.

Authors:  W Luytjes; L S Sturman; P J Bredenbeek; J Charite; B A van der Zeijst; M C Horzinek; W J Spaan
Journal:  Virology       Date:  1987-12       Impact factor: 3.616

9.  Mechanisms of transmissible gastroenteritis coronavirus neutralization.

Authors:  C Suñé; G Jiménez; I Correa; M J Bullido; F Gebauer; C Smerdou; L Enjuanes
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10.  Evidence for a coiled-coil structure in the spike proteins of coronaviruses.

Authors:  R J de Groot; W Luytjes; M C Horzinek; B A van der Zeijst; W J Spaan; J A Lenstra
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  128 in total

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