Journal of Molecular Biology
Volume 383, Issue 5, 28 November 2008, Pages 1081-1096
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Variable Oligomerization Modes in Coronavirus Non-structural Protein 9

https://doi.org/10.1016/j.jmb.2008.07.071Get rights and content

Abstract

Non-structural protein 9 (Nsp9) of coronaviruses is believed to bind single-stranded RNA in the viral replication complex. The crystal structure of Nsp9 of human coronavirus (HCoV) 229E reveals a novel disulfide-linked homodimer, which is very different from the previously reported Nsp9 dimer of SARS coronavirus. In contrast, the structure of the Cys69Ala mutant of HCoV-229E Nsp9 shows the same dimer organization as the SARS-CoV protein. In the crystal, the wild-type HCoV-229E protein forms a trimer of dimers, whereas the mutant and SARS-CoV Nsp9 are organized in rod-like polymers. Chemical cross-linking suggests similar modes of aggregation in solution. In zone-interference gel electrophoresis assays and surface plasmon resonance experiments, the HCoV-229E wild-type protein is found to bind oligonucleotides with relatively high affinity, whereas binding by the Cys69Ala and Cys69Ser mutants is observed only for the longest oligonucleotides. The corresponding mutations in SARS-CoV Nsp9 do not hamper nucleic acid binding. From the crystal structures, a model for single-stranded RNA binding by Nsp9 is deduced. We propose that both forms of the Nsp9 dimer are biologically relevant; the occurrence of the disulfide-bonded form may be correlated with oxidative stress induced in the host cell by the viral infection.

Abbreviations

SARS-CoV
severe acute respiratory syndrome coronavirus
HCoV-229E
human coronavirus 229E
Nsp
non-structural protein
MPD
2-methyl-2,4-pentanediol
DLS
dynamic light-scattering
Mpro
main proteinase
r.m.s.
root-mean-square
SSB
single-stranded DNA-binding protein
SPR
surface plasmon resonance
ssDNA
single-stranded DNA
ssRNA
single-stranded RNA
OB
oligonucleotide/oligosaccharide-binding
pp1a
polyprotein 1a
RU
resonance units

Keywords

Nsp9
dimerization
nucleic-acid binding
disulfide bond
oxidative stress

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