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In situ Subcellular Fractionation of Adherent and Non-adherent Mammalian Cells
Published on: July 23, 2010
Cell polarity proteins: common targets for tumorigenic human viruses
1Department of Molecular Virology and Microbiology, Baylor College of Medicine, Houston, TX 77030, USA. rjavier@bcm.edu
Abstract:
Loss of polarity and disruption of cell junctions are common features of epithelial-derived cancer cells, and mounting evidence indicates that such defects have a direct function in the pathology of cancer. Supporting this idea, results with several different human tumor viruses indicate that their oncogenic potential depends in part on a common ability to inactivate key cell polarity proteins. For example, adenovirus (Ad) type 9 is unique among human Ads by causing exclusively estrogen-dependent mammary tumors in experimental animals and in having E4 region-encoded open reading frame 1 (E4-ORF1) as its primary oncogenic determinant. The 125-residue E4-ORF1 protein consists of two separate protein-interaction elements, one of which defines a PDZ domain-binding motif (PBM) required for E4-ORF1 to induce both cellular transformation in vitro and tumorigenesis in vivo. Most notably, the E4-ORF1 PBM mediates interactions with a selected group of cellular PDZ proteins, three of which include the cell polarity proteins Dlg1, PATJ and ZO-2. Data further indicate that these interactions promote disruption of cell junctions and a loss of cell polarity. In addition, one or more of the E4-ORF1-interacting cell polarity proteins, as well as the cell polarity protein Scribble, are common targets for the high-risk human papillomavirus (HPV) E6 or human T-cell leukemia virus type 1 (HTLV-1) Tax oncoproteins. Underscoring the significance of these observations, in humans, high-risk HPV and HTLV-1 are causative agents for cervical cancer and adult T-cell leukemia, respectively. Consequently, human tumor viruses should serve as powerful tools for deciphering mechanisms whereby disruption of cell junctions and loss of cell polarity contribute to the development of many human cancers. This review article discusses evidence supporting this hypothesis, with an emphasis on the human Ad E4-ORF1 oncoprotein.
Insights
Human tumor viruses, like adenovirus E4-ORF1, inactivate cell polarity proteins, disrupting cell junctions and promoting cancer. Studying these viruses reveals cancer development mechanisms.
Area of Science:
- Oncology
- Virology
- Cell Biology
Background:
- Loss of cell polarity and disrupted cell junctions are hallmarks of epithelial cancers.
- Human tumor viruses often possess oncogenic potential by targeting key cell polarity proteins.
Purpose of the Study:
- To review evidence on how human tumor viruses contribute to cancer by disrupting cell polarity and junctions.
- To highlight the role of adenovirus (Ad) type 9's E4-ORF1 oncoprotein in this process.
Main Methods:
- Analysis of existing research on human tumor viruses and their interaction with cell polarity proteins.
- Focus on adenovirus E4-ORF1's mechanism of action via PDZ domain-binding motif (PBM).
Main Results:
- Adenovirus E4-ORF1 interacts with PDZ proteins (Dlg1, PATJ, ZO-2), disrupting cell junctions and polarity.
- Oncoproteins from high-risk human papillomavirus (HPV) and human T-cell leukemia virus type 1 (HTLV-1) also target cell polarity proteins.
Conclusions:
- Human tumor viruses are valuable tools for understanding cancer pathogenesis related to cell polarity loss.
- Disruption of cell junctions and polarity by viral oncoproteins is a significant factor in human cancer development.
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