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Dissecting Host-virus Interaction in Lytic Replication of a Model Herpesvirus
Published on: October 7, 2011
Replicase complex genes of Semliki Forest virus confer lethal neurovirulence
M T Tuittila1, M G Santagati, M Röyttä
1Department of Biochemistry and Pharmacy, Abo Akademi University, University of Turku, Turku, Finland. minna.tuittila@ra.abo.fi
Abstract:
Semliki Forest virus (SFV) is a mosquito-transmitted pathogen of small rodents, and infection of adult mice with SFV4, a neurovirulent strain of SFV, leads to lethal encephalitis in a few days, whereas mice infected with the avirulent A7(74) strain remain asymptomatic. In adult neurons, A7(74) is unable to form virions and hence does not reach a critical threshold of neuronal damage. To elucidate the molecular mechanisms of neurovirulence, we have cloned and sequenced the entire 11,758-nucleotide genome of A7(74) and compared it to the highly neurovirulent SFV4 virus. We found several sequence differences and sought to localize determinants conferring the neuropathogenicity by using a panel of chimeras between SFV4 and a cloned recombinant, rA774. We first localized virulence determinants in the nonstructural region by showing that rA774 structural genes combined with the SFV4 nonstructural genome produced a highly virulent virus, while a reciprocal recombinant was asymptomatic. In addition to several amino acid mutations in the nonstructural region, the nsp3 gene of rA774 displayed an opal termination codon and an in-frame 21-nucleotide deletion close to the nsp4 junction. Replacement in rA774 of the entire nsp3 gene with that of SFV4 reconstituted the virulent phenotype, whereas an arginine at the opal position significantly increased virulence, leading to clinical symptoms in mice. Completion of the nsp3 deletion in rA774 did not increase virulence. We conclude that the opal codon and amino acid mutations other than the deleted residues are mainly responsible for the attenuation of A7(74) and that the attenuating determinants reside entirely in the nonstructural region.
Insights
Semliki Forest virus (SFV) neurovirulence is determined by nonstructural genes. Specific mutations in the nsp3 gene, including an opal codon, significantly attenuate SFV A7(74) neuropathogenicity in mice.
Area of Science:
- Virology
- Molecular Biology
- Neuroscience
Background:
- Semliki Forest virus (SFV) causes lethal encephalitis in mice, with strains varying in neurovirulence.
- The avirulent SFV A7(74) strain does not cause disease in adult neurons due to an inability to form virions.
Purpose of the Study:
- To elucidate the molecular mechanisms underlying SFV neurovirulence.
- To identify genetic determinants responsible for the neuropathogenicity of SFV4 compared to the avirulent A7(74) strain.
Main Methods:
- Sequencing of the A7(74) genome and comparison with SFV4.
- Construction and analysis of chimeric viruses between SFV4 and a recombinant A7(74) (rA774).
- Site-directed mutagenesis of the nsp3 gene in rA774.
Main Results:
- Virulence determinants were localized to the nonstructural region of the SFV genome.
- The nsp3 gene of A7(74) contains an opal termination codon and a 21-nucleotide deletion, contributing to attenuation.
- Replacing the A7(74) nsp3 gene with that of SFV4 restored virulence; an arginine substitution at the opal codon increased virulence.
Conclusions:
- The opal codon and specific amino acid mutations in nsp3 are primarily responsible for the attenuation of SFV A7(74).
- Attenuating determinants of SFV reside exclusively within the nonstructural region of the viral genome.
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