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An Engineered Mutant of a Host Phospholipid Synthesis Gene Inhibits Viral Replication Without Compromising Host Fitness

Overview
Journal J Biol Chem
Specialty Biochemistry
Date 2019 Aug 1
PMID 31362985
Citations 4
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Abstract

Viral infections universally rely on numerous hijacked host factors to be successful. It is therefore possible to control viral infections by manipulating host factors that are critical for viral replication. Given that host genes may play essential roles in certain cellular processes, any successful manipulations for virus control should cause no or mild effects on host fitness. We previously showed that a group of positive-strand RNA viruses enrich phosphatidylcholine (PC) at the sites of viral replication. Specifically, brome mosaic virus (BMV) replication protein 1a interacts with and recruits a PC synthesis enzyme, phosphatidylethanolamine methyltransferase, Cho2p, to the viral replication sites that are assembled on the perinuclear endoplasmic reticulum (ER) membrane. Deletion of the gene inhibited BMV replication by 5-fold; however, it slowed down host cell growth as well. Here, we show that an engineered Cho2p mutant supports general PC synthesis and normal cell growth but blocks BMV replication. This mutant interacts and colocalizes with BMV 1a but prevents BMV 1a from localizing to the perinuclear ER membrane. The mislocalized BMV 1a fails to induce the formation of viral replication complexes. Our study demonstrates an effective antiviral strategy in which a host lipid synthesis gene is engineered to control viral replication without comprising host growth.

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References
1.
Kong F, Sivakumaran K, Kao C . The N-terminal half of the brome mosaic virus 1a protein has RNA capping-associated activities: specificity for GTP and S-adenosylmethionine. Virology. 1999; 259(1):200-10. DOI: 10.1006/viro.1999.9763. View

2.
Ahlquist P . Brome mosaic virus RNA replication proteins 1a and 2a colocalize and 1a independently localizes on the yeast endoplasmic reticulum. J Virol. 1999; 73(12):10303-9. PMC: 113085. DOI: 10.1128/JVI.73.12.10303-10309.1999. View

3.
Lee W, Ishikawa M, Ahlquist P . Mutation of host delta9 fatty acid desaturase inhibits brome mosaic virus RNA replication between template recognition and RNA synthesis. J Virol. 2001; 75(5):2097-106. PMC: 114794. DOI: 10.1128/JVI.75.5.2097-2106.2001. View

4.
Dangl J, Jones J . Plant pathogens and integrated defence responses to infection. Nature. 2001; 411(6839):826-33. DOI: 10.1038/35081161. View

5.
den Boon J, Chen J, Ahlquist P . Identification of sequences in Brome mosaic virus replicase protein 1a that mediate association with endoplasmic reticulum membranes. J Virol. 2001; 75(24):12370-81. PMC: 116133. DOI: 10.1128/JVI.75.24.12370-12381.2001. View