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Purification of Viral DNA for the Identification of Associated Viral and Cellular Proteins
Published on: August 31, 2017
Analysis of phosphorylation sites of herpes simplex virus type 1 ICP4
1Department of Microbiology and Molecular Genetics, Harvard Medical School, Boston, Massachusetts 02115, USA.
Insights
Herpes simplex virus ICP4 protein phosphorylation is complex, with multiple sites identified. Phosphorylation of the serine-rich region appears to regulate other phosphorylation events.
Area of Science:
- Virology
- Molecular Biology
- Protein Biochemistry
Background:
- The herpes simplex virus ICP4 protein is crucial for viral gene regulation.
- Phosphorylation of ICP4 is suspected to influence its diverse functions and heterogeneity.
- Understanding ICP4 phosphorylation is key to deciphering its role in viral replication.
Purpose of the Study:
- To investigate the complexity and sites of ICP4 phosphorylation.
- To map the phosphorylation sites within the ICP4 protein.
- To elucidate the role of specific regions, like the serine-rich region, in ICP4 phosphorylation.
Main Methods:
- Two-dimensional phosphopeptide mapping of wild-type and mutant ICP4.
- Labeling of ICP4 in infected cells and in vitro.
- In vitro phosphorylation assays using protein kinase A and protein kinase C.
Main Results:
- Wild-type ICP4 exhibits a complex phosphopeptide pattern, indicating multiple phosphorylation sites.
- The serine-rich region (residues 175-198) is a confirmed phosphorylation site.
- Phosphorylation of the serine-rich region enhances overall ICP4 phosphorylation; its absence reduces kinase activity.
- ICP4 possesses intrinsic kinase or autophosphorylation activity distinct from known kinases.
Conclusions:
- ICP4 phosphorylation is a multi-site process, potentially sequential, with the serine-rich region playing a regulatory role.
- The serine-rich region's phosphorylation may act as a trigger for subsequent phosphorylation events on ICP4.
- ICP4 may possess autophosphorylation capabilities, contributing to its functional complexity.
Abstract:
The herpes simplex virus ICP4 protein is required for induction of early and late viral gene transcription as well as for repression of expression of its own gene and several other viral genes. Several electrophoretic forms of ICP4 have been observed, and phosphorylation is thought to contribute to this heterogeneity and possibly to the multiple functions of ICP4. To define the complexity of the site(s) of phosphorylation of ICP4 and to initiate mapping of this site(s), we have performed two-dimensional phosphopeptide mapping of wild-type and mutant forms of ICP4 labeled in infected cells or in vitro. Wild-type ICP4 labeled in infected cells shows a complex pattern of phosphopeptides, and smaller mutant forms of ICP4 show progressively fewer phosphopeptides, arguing that multiple sites on ICP4 are phosphorylated. The serine-rich region of ICP4, residues 175 to 198, was shown to be a site for phosphorylation. Furthermore, the serine-rich region itself or the phosphorylation of this region increases phosphorylation of all phosphopeptides. A mutant ICP4 molecule lacking the serine-rich region showed low levels of phosphorylation by protein kinase A or protein kinase C in vitro. These results suggest that there may be a sequential phosphorylation of ICP4, with phosphorylation of the serine-rich region stimulating phosphorylation of the rest of the molecule. In addition, purified ICP4 showed an associated kinase activity or an autophosphorylation activity with properties different from those of protein kinase A or protein kinase C.
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