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Updated: Jul 15, 2026

Reverse Genetics Mediated Recovery of Infectious Murine Norovirus
Published on: June 24, 2012
Silencing and complementation of reovirus core protein mu2: functional correlations with mu2-microtubule association
John Carvalho1, Michelle M Arnold, Max L Nibert
1Department of Microbiology and Molecular Genetics, Harvard Medical School, Boston, MA 02115, USA.
Abstract:
A low-copy component of mammalian reovirus particles is mu2, an 83-kDa protein encoded by the M1 viral genome segment and packaged within the viral core. Previous studies have identified mu2 as a nucleoside triphosphate phosphohydrolase (NTPase) as well as an RNA 5'-triphosphate phosphohydrolase (RTPase), putatively involved in reovirus RNA synthesis and/or 5'-capping. Other studies have identified mu2 as a microtubule-binding protein, which also associates with the viral factory matrix protein muNS and thereby anchors the factories to cellular microtubules during infections by most reovirus strains. To extend studies of mu2 functions during infection, we tested a small interfering RNA (siRNA) directed against the M1 plus-strand RNAs of reovirus strains Type 1 Lang (T1L) and Type 3 Dearing (T3D). The siRNA strongly suppressed mu2 expression by either strain and reduced infectious yields in a strain-dependent manner. This first strain difference was genetically mapped to the M1 genome segment and tentatively assigned to a single mu2 sequence polymorphism, Pro/Ser208, which also determines a T1L-T3D strain difference in microtubule association. The siRNA-based defect in mu2 expression was rescued by plasmids, containing silent mutations in the siRNA-targeted sequence, which encoded either T1L or T3D mu2, but the growth defect was rescued only by T1L mu2. This second strain difference was also mapped to Pro/Ser208, in that swapping this one residue between T1L and T3D mu2 reversed the rescue phenotypes. Thus, the T1L-T3D strain difference in mu2-microtubule association was correlated not only with the extent of reduction in infectious yields by the siRNA but also with the extent of rescue by plasmid-derived mu2. In addition, the rescue capacity of T1L mu2 was abrogated by nocodazole treatment, providing independent evidence for the importance of mu2-microtubule association in plasmid-based rescue. In two separate cases, the results revealed functional differences between virus- and plasmid-derived mu2. Ala substitutions within the NTP-binding motif of T1L mu2 also abrogated its rescue capacity, suggesting that the NTPase or RTPase activity of mu2 is additionally required for effective viral growth.
Insights
Mammalian reovirus protein mu2
Area of Science:
- Virology
- Molecular Biology
- Cell Biology
Background:
- Mammalian reovirus mu2 protein is a low-copy component involved in viral RNA synthesis and microtubule association.
- Mu2's functions in viral infection and its strain-specific differences are not fully understood.
Purpose of the Study:
- To investigate the functional roles of reovirus mu2 protein during infection.
- To elucidate the molecular basis for strain-specific differences in mu2 function.
Main Methods:
- Utilized small interfering RNA (siRNA) to suppress mu2 expression in reovirus strains Type 1 Lang (T1L) and Type 3 Dearing (T3D).
- Genetically mapped strain differences to the M1 genome segment and a specific mu2 sequence polymorphism (Pro/Ser208).
- Assessed rescue of siRNA-induced defects using plasmids encoding modified mu2 proteins and nocodazole treatment.
Main Results:
- siRNA-mediated suppression of mu2 reduced infectious yields in a strain-dependent manner.
- A single amino acid polymorphism (Pro/Ser208) in mu2 correlated with strain differences in microtubule association and siRNA-induced growth defects.
- T1L mu2 rescued growth defects more effectively than T3D mu2, and this rescue was dependent on microtubule association and NTPase/RTPase activity.
Conclusions:
- Reovirus mu2 protein's microtubule association and NTPase/RTPase activity are crucial for effective viral growth.
- The Pro/Ser208 polymorphism in mu2 contributes to strain-specific differences in viral replication and microtubule interactions.
- Functional differences exist between virus- and plasmid-derived mu2 proteins.
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