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In situ Subcellular Fractionation of Adherent and Non-adherent Mammalian Cells
Published on: July 23, 2010
Cooperation between different forms of the human papillomavirus type 1 E4 protein to block cell cycle progression and
Gillian L Knight1, John R Grainger, Phillip H Gallimore
1Cancer Research UK Institute for Cancer Studies, University of Birmingham, Vincent Dr., Edgbaston, Birmingham B15 2TT, United Kingdom.
Abstract:
Posttranslational modification-oligomerization, phosphorylation, and proteolytic cleavage-of the human papillomavirus (HPV) E4 protein occurs as the infected keratinocytes migrate up through the suprabasal wart layers. It has been postulated that these events modify E4 function during the virus life cycle. In HPV type 1 (HPV1)-induced warts, N-terminal sequences are progressively cleaved from the full-length E4 protein (E1(wedge)E4) of 17 kDa to produce a series of polypeptides of 16, 11 and 10 kDa. Here, we have shown that in human keratinocytes, a truncated protein (E4-16K), equivalent to the 16-kDa species, mediated a G(2) arrest in the cell cycle that was dependent on a threonine amino acid in a proline-rich domain of the protein. Reconstitution of cyclin B1 expression in E4-16K cells reversed the G(2) arrest. Expression of E4-16K also induced chromosomal rereplication, and this was associated with aberrant nuclear morphology. Perturbation of the mitotic cell cycle was a biological activity specific to the truncated protein. However, coexpression of the full-length E1(wedge)E4 protein and the truncated E4-16K protein inhibited normal cellular proliferation and cellular DNA rereplication but did not prevent cells from arresting in G(2). Our findings provide the first evidence to support the hypothesis that proteolytic cleavage of the E1(wedge)E4 protein modifies its function. Also, different forms of the HPV1 E4 protein cooperate to negatively influence keratinocyte proliferation. We predict that these distinct biological activities of E4 act to support efficient amplification of the viral genome in suprabasal keratinocytes.
Insights
Proteolytic cleavage of human papillomavirus (HPV) type 1 E4 protein generates truncated forms that alter keratinocyte cell cycle progression and DNA replication, impacting viral genome amplification.
Area of Science:
- Virology
- Cell Biology
- Molecular Biology
Background:
- Posttranslational modifications of human papillomavirus (HPV) E4 protein, including cleavage, are linked to viral lifecycle progression.
- HPV type 1 (HPV1) E4 protein undergoes N-terminal cleavage, producing smaller polypeptides (16, 11, and 10 kDa) from the full-length 17 kDa protein (E1(wedge)E4).
Purpose of the Study:
- To investigate the functional consequences of HPV1 E4 protein cleavage on keratinocyte cell cycle and proliferation.
- To determine if different forms of HPV1 E4 protein cooperate to regulate keratinocyte functions.
Main Methods:
- Expression of truncated E4-16K protein in human keratinocytes.
- Analysis of cell cycle arrest (G2) and chromosomal rereplication.
- Assessment of cyclin B1 expression and nuclear morphology.
- Coexpression studies with full-length E1(wedge)E4 and truncated E4-16K proteins.
Main Results:
- Truncated E4-16K protein induced G2 cell cycle arrest dependent on a specific threonine residue.
- E4-16K expression led to chromosomal rereplication and aberrant nuclear morphology.
- Reconstitution of cyclin B1 reversed the G2 arrest.
- Coexpression of full-length and truncated E4 proteins inhibited proliferation and DNA rereplication but not G2 arrest.
Conclusions:
- Proteolytic cleavage of HPV1 E4 protein significantly modifies its function, specifically inducing cell cycle perturbation.
- Distinct HPV1 E4 protein forms cooperate to inhibit keratinocyte proliferation and DNA rereplication.
- These modified E4 functions likely support efficient viral genome amplification in suprabasal keratinocytes.
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