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Using Click Chemistry to Measure the Effect of Viral Infection on Host-Cell RNA Synthesis
Published on: August 9, 2013
trans-acting inhibition of genomic RNA dimerization by Rous sarcoma virus matrix mutants
R A Garbitt1, J A Albert, M D Kessler
1Department of Microbiology and Immunology, The Pennsylvania State University College of Medicine, Milton S. Hershey Medical Center, Hershey, Pennsylvania 17033, USA.
Abstract:
The genomic RNA of retroviruses exists within the virion as a noncovalently linked dimer. Previously, we identified a mutant of the viral matrix (MA) protein of Rous sarcoma virus that disrupts viral RNA dimerization. This mutant, Myr1E, is modified at the N terminus of MA by the addition of 10 amino acids from the Src protein, resulting in the production of particles containing monomeric RNA. Dimerization is reestablished by a single amino acid substitution that abolishes myristylation (Myr1E-). To distinguish between cis and trans effects involving Myr1E, additional mutations were generated. In Myr1E.cc and Myr1E-.cc, different nucleotides were utilized to encode the same protein as Myr1E and Myr1E-, respectively. The alterations in RNA sequence did not change the properties of the viral mutants. Myr1E.ATG- was constructed so that translation began at the gag AUG, resulting in synthesis of the wild-type Gag protein but maintenance of the src RNA sequence. This mutant had normal infectivity and dimeric RNA, indicating that the src sequence did not prevent dimer formation. All of the src-containing RNA sequences formed dimers in vitro. Examination of MA-green fluorescent protein fusion proteins revealed that the wild-type and mutant MA proteins Myr1E.ATG-, Myr1E-, and Myr1E-.cc had distinctly different patterns of subcellular localization compared with Myr1E and Myr1E.cc MA proteins. This finding suggests that proper localization of the MA protein may be required for RNA dimer formation and infectivity. Taken together, these results provide compelling evidence that the genomic RNA dimerization defect is due to a trans-acting effect of the mutant MA proteins.
Insights
Rous sarcoma virus matrix (MA) protein mutants disrupt genomic RNA dimerization via a trans-acting effect. Proper MA protein localization is crucial for RNA dimerization and viral infectivity.
Area of Science:
- Virology
- Molecular Biology
- Genetics
Background:
- Retroviral genomic RNA exists as a noncovalently linked dimer within the virion.
- A previously identified Rous sarcoma virus matrix (MA) protein mutant, Myr1E, disrupts this viral RNA dimerization.
- Myr1E is N-terminally modified with Src protein amino acids, leading to monomeric RNA production.
Purpose of the Study:
- To distinguish between cis and trans effects of the Myr1E mutant on viral RNA dimerization.
- To investigate the role of MA protein localization in RNA dimerization and viral infectivity.
Main Methods:
- Generated additional mutations (Myr1E.cc, Myr1E-.cc, Myr1E.ATG-) to analyze cis vs. trans effects.
- Assessed viral RNA dimerization and infectivity of mutant viruses.
- Examined subcellular localization of MA-green fluorescent protein fusion proteins.
Main Results:
- Mutations altering RNA sequence (Myr1E.cc, Myr1E-.cc) did not affect viral properties, indicating RNA sequence was not responsible for dimerization defects.
- Myr1E.ATG- mutant showed normal infectivity and dimeric RNA, suggesting the Src sequence itself doesn't prevent dimer formation.
- Wild-type and specific MA mutants displayed distinct subcellular localization patterns compared to Myr1E and Myr1E.cc, implying localization is key.
Conclusions:
- The genomic RNA dimerization defect observed in Myr1E mutants is caused by a trans-acting effect of the mutant MA proteins.
- Proper subcellular localization of the MA protein is essential for both viral RNA dimerization and infectivity.
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