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1.
Clinics ; 73(supl.1): e558s, 2018. tab, graf
Article in English | LILACS | ID: biblio-974945

ABSTRACT

The name of the family Polyomaviridae, derives from the early observation that cells infected with murine polyomavirus induced multiple (poly) tumors (omas) in immunocompromised mice. Subsequent studies showed that many members of this family exhibit the capacity of mediating cell transformation and tumorigenesis in different experimental models. The transformation process mediated by these viruses is driven by viral pleiotropic regulatory proteins called T (tumor) antigens. Similar to other viral oncoproteins T antigens target cellular regulatory factors to favor cell proliferation, immune evasion and downregulation of apoptosis. The first two human polyomaviruses were isolated over 45 years ago. However, recent advances in the DNA sequencing technologies led to the rapid identification of additional twelve new polyomaviruses in different human samples. Many of these viruses establish chronic infections and have been associated with conditions in immunosuppressed individuals, particularly in organ transplant recipients. This has been associated to viral reactivation due to the immunosuppressant therapy applied to these patients. Four polyomaviruses namely, Merkel cell polyomavirus (MCPyV), Trichodysplasia spinulosa polyomavirus (TSPyV), John Cunningham Polyomavirus (JCPyV) and BK polyomavirus (BKPyV) have been associated with the development of specific malignant tumors. However, present evidence only supports the role of MCPyV as a carcinogen to humans. In the present review we present a summarized discussion on the current knowledge concerning the role of MCPyV, TSPyV, JCPyV and BKPyV in human cancers.


Subject(s)
Humans , Tumor Virus Infections/virology , Polyomavirus/pathogenicity , Polyomavirus Infections/virology , Neoplasms/virology , Virus Activation , Cell Transformation, Viral , Polyomavirus/classification , Polyomavirus/physiology
2.
Biol. Res ; 47: 1-9, 2014. ilus, graf
Article in English | LILACS | ID: biblio-950734

ABSTRACT

BACKGROUND: Bacterial pathogens have many strategies for infecting and persisting in host cells. Adhesion, invasion and intracellular life are important features in the biology of mollicutes. The intracellular location ofUreaplasma diversum may trigger disturbances in the host cell. This includes activation or inhibition of pro and anti-apoptotic factors, which facilitate the development of host damage. The aim of the present study was to associate U. diversum infection in HEp-2 cells and apoptosis induction. Cells were infected for 72hs with four U. diversum clinical isolates and an ATCC strain. The U. diversuminvasion was analyzed by Confocal Laser Scanning Microscopy and gentamicin invasion assay. The apoptosis was evaluated using pro-apoptotic and anti-apoptotic gene expression, and FITC Annexin V/Dead Cell Apoptosis Kit. RESULTS: The number of internalized ureaplasma in HEp-2 cells increased significantly throughout the infection. The flow cytometry analysis with fluorochromes to detect membrane depolarization and gene expression for caspase 2, 3 and 9 increased in infected cells after 24 hours. However, after 72 hours a considerable decrease of apoptotic cells was observed. CONCLUSIONS: The data suggests that apoptosis may be initially induced by some isolates in association with HEp-2 cells, but over time, there was no evidence of apoptosis in the presence of ureaplasma and HEp-2 cells. The initial increase and then decrease in apoptosis could be related to bacterial pathogen-associated molecular pattern (PAMPS). Moreover, the isolates of U. diversum presented differences in the studied parameters for apoptosis. It was also observed that the amount of microorganisms was not proportional to the induction of apoptosis in HEp-2 cells.


Subject(s)
Humans , Female , Ureaplasma/pathogenicity , Ureaplasma Infections/physiopathology , Apoptosis/physiology , Time Factors , Ureaplasma/drug effects , Bacterial Adhesion , Actin Cytoskeleton/ultrastructure , Gentamicins/pharmacology , HeLa Cells/microbiology , Gene Expression , Cell Survival , Tumor Necrosis Factor-alpha/metabolism , Statistics, Nonparametric , Microscopy, Confocal , Caspase 3/metabolism , Caspase 2/metabolism , Caspase 9/metabolism , Real-Time Polymerase Chain Reaction , Flow Cytometry , Pathogen-Associated Molecular Pattern Molecules/metabolism
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