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Prevalence of antibodies against canine herpesvirus 1 in dogs in The Netherlands in 1997-1998.

Canine herpesvirus (CHV1) is found in dogs all over the world and may spread by oronasal or sexual contact. We developed an enzyme-linked immunosorbent assay (ELISA) for the detection of antibodies against CHV1 in dogs. The antigen used for this ELISA was prepared by purifying CHV1 virions from the medium of infected A72 cells. To investigate the prevalence of CHV1 in The Netherlands, a panel of 145 sera of dogs boarding at a kennel in Lelystad, The Netherlands, was screened using this ELISA. The dogs originated from all parts of The Netherlands and represented many different breeds. The sera were collected both at the start and at the end of the boarding period. Of the 145 paired sera 61 (42.1%) were positive, 79 (54.5%) were negative and 5 (3.4%) could not be attributed to either group. None of the negative dogs became seropositive during the boarding period, which lasted normally two to three weeks. We also tested 79 individual sera taken from dogs at various other places in The Netherlands and found that 27 (34.2%) were positive. Hence, in total 224 dog sera, collected from April 1997 to March 1998, were tested and 88 (39.3%) were found positive. We conclude that the prevalence of CHV1 seropositive dogs in The Netherlands in this period was about 40%, and that boarding at a dogs kennel did not contribute to the spread of CHV1. In addition, CHV1 has been isolated from two clinical cases of fatal haemorrhagic disease in The Netherlands.

Animals↗

Neural invasion of two virulent suid herpesvirus 1 strains in neonatal pigs with or without maternal immunity.

The neural invasion of two virulent Suid Herpesvirus 1 (SHV1) strains was examined in neonatal pigs with or without maternal immunity. One-week-old pigs with comparable levels of maternal immunity (SN-titer = 12-48) were intranasally inoculated with 10(7.0) TCID50 of either of the Ka or E21 strains. The invasion of the strains was examined in the nasal mucosa and in three neuronal levels of the trigeminal nervous pathway as well as in three levels of the olfactory nervous pathway by virus titration and immunohistochemistry (IHC). In control pigs without specific antibodies, both strains invaded up to the end level of each neural pathway. In pigs with maternal immunity, the Ka strain invaded only up to the 2nd level of each pathway with titers being significantly lower (p<0.05) than in the negative controls. However, the E21 strain invaded up to the end levels in both neural pathways of immune pigs with virus titers being similar to those observed in non-immune pigs (p>0.05). IHC revealed that maternal antibodies can protect against a fibroblast-mediated spread of the Ka strain in the lamina propria of the nasal mucosa, as well as against a local spread of the Ka and E21 strains from neurons to their satellite cells in the trigeminal ganglion. In conclusion, the nature of virus strain determines the invasion of SHV1 within the nervous system of maternally-immune neonatal pigs.

Animals↗

Viruses, virulence and pathogenicity.

Pathogenicity is a complex process with stringent requirements of both the host cell and the infecting virion. Among these requirements are a port of entry into host cells, a means of replication for the virus, and a means by which infection damages host cells. Damage to the host can result from multiple mechanisms including transformation, suppression of cellular metabolism, apoptosis, autoimmune responses directed against infected or uninfected tissues, or by molecular mimicry. In the attempt to identify new associations between viral infection and disease, investigators should be mindful that variable host factors as well as viral infection may be required for pathogenesis. Efforts to associate specific viral infections with specific diseases may be obscured by final common pathways through which multiple agents damage host cells in similar ways.

Animals↗

Pathogenesis of hepatocellular damage in chronic hepatitis C virus infection.

Multiple factors may influence the host-virus interaction in patients infected with hepatitis C virus (HCV), and these may result in diverse disease presentations. In immune competent hosts, there is little evidence that direct cytopathicity plays a significant role in liver cell injury. However, when host conditions are altered to allow for unusually high levels of viral replication and viral protein expression (i.e., immunosuppression), HCV may induce direct hepatocellular damage. In most patients infected with HCV, a wide array of humoral and cell-mediated immune responses are triggered in response to HCV polypeptides; however, despite this host immune response, HCV infections usually persist. Furthermore, the host immune response, in its attempt to clear the virus from the liver, contributes to the hepatocellular damage (chronic hepatitis) seen in the majority of chronically infected patients.

Antibodies, Viral↗

Induction of CD4-dependent cell fusion by the HTLV-III/LAV envelope glycoprotein.

Formation of syncytia, with progression to cell death, is a characteristic feature of in vitro cultures of susceptible cells infected with human T-lymphotropic virus type III/lymphadenopathy-associated virus (HTLV-III/LAV). Viral antigen-positive multinucleated giant cells have also been observed in histological sections from infected individuals. In vitro, formation of these multinucleated giant cells occurs through cell fusion which is dependent on cell-surface expression of the differentiation antigen CD4. Utilizing a recombinant vaccinia virus containing the gene for the envelope glycoprotein of HTLV-III/LAV, we demonstrate that cell-surface expression of this protein, in the absence of other HTLV-III/LAV structural or regulatory proteins, is sufficient to induce CD4-dependent cell fusion, leading to cell death, one of the characteristic manifestations of AIDS (acquired immune deficiency syndrome) virus cytopathology. This process may contribute to the loss of CD4+ T cells seen in AIDS.

Cell Fusion↗

[Accidental rubella vaccination in pregnancy].

In the Federal Republic of Germany, between 1971 and 1983, 365 women were by chance vaccinated against rubella (Cendehill or RA-27/3-HDC rubella live vaccine) between 3 months before and up to 3 months after conception. The data on these women are compared with similar ones from the USA (1096 women vaccinated with Cendehill, HPV77 or RA-27/3 vaccine within the same time-span in relation to pregnancy). The results indicate that the risk for the child from rubella vaccination of the mother before pregnancy and in the first trimester is minimal. Vaccination during early pregnancy is thus no compelling indication for the termination of pregnancy. However, known pregnancy continues to be a contraindication to rubella vaccination.

Antibodies, Viral↗

Immune deviation and ocular infections with varicella zoster virus.

Since experimental, herpes simplex virus-induced acute retinal necrosis (ARN) develops in mice only if the mice fail to acquire virus-specific delayed hypersensitivity (DH) and despite their production of anti-viral antibodies (i.e. ACAID), I investigated whether a similar situation exists for patients with either varicella zoster virus (VZV)-induced ARN or anterior uveitis caused by VZV. Patients with either acute VZV-induced ARN, anterior uveitis with dermatitis (herpes zoster ophthalmicus, ZO-AU), or anterior uveitis without dermatitis (zoster sine herpete, ZSH-AU) were skin-tested with VZV to evaluate DH. The formal diagnoses of ARN associated with VZV, ZO-AU, and ZSH-AU were established by PCR analysis of the ocular samples and/or by the Goldmann-Witmer coefficient to determine levels of local antibody production. ARN, ZO-AU, and ZSH-AU activity were assessed clinically, and DH skin tests were repeated three months after onset when ocular recovery had taken place. All patients with VZV-induced skin disease alone (control group) displayed intense DH when tested with VZV antigen. In contrast, subsets of patients with ARN or ZO-AU displayed loss of VZV-specific DH. Patients with the most severe ARN or ZO-AU had the lowest DH responses to VZV antigens. Serum anti-VZV antibody titers were higher in ARN patients than in normal controls, and the anti-viral titer correlated inversely with the intensity of anti-VZV DH responses. VZV-specific DH responses were restored in patients who recovered from ARN. Patients with ZSH-AU also failed to display VZV-specific DH. The absence of DH reactivity to VZV antigens (i.e. immune deviation) appears to be a concomitant feature of VZV uveitis of high intensity, implying that virus-specific DH may interfere with the emergence of VZV-induced ARN or anterior uveitis.

Antibodies, Viral↗

Virus-triggered immune suppression in mice caused by virus-specific cytotoxic T cells.

Normal mice infected with 10(5) infectious doses of lymphocytic choriomeningitis virus (LCMV, WE isolate) generated a reduced or no T cell-independent IgM and/or T cell-dependent IgG response to a subsequent vesicular stomatitis virus Indiana (VSV-IND) injection; this transient immune suppression lasted for weeks to months. Connatally infected LCMV-carrier mice or acutely infected T cell-deficient nude mice had normal anti-VSV IgM and IgG or IgM responses respectively. LCMV-infected nude mice transfused with helper cell-depleted LCMV-specific immune spleen cells were immunosuppressed. Normal mice infected with LCMV but treated with a rat anti-CD8 mAb (that had been shown previously to eliminate cytotoxic T cells in vivo) and then infected with VSV exhibited a normal anti-VSV IgM and IgG response. Since no IFN-alpha or -beta was detected on, or after, day 6 of LCMV infection, neither LCMV alone, nor IFN induced by it caused the observed immune suppression; the presented evidence suggests that LCMV-immune CD8+ T cells were responsible for it. It is conceivable that a similar pathogenesis where virus-specific cytotoxic T cells may destroy virus-infected cells essentially involved in an immune response (APC, T helper cells, etc.) may be involved in other virally triggered immune suppression or in AIDS.

Animals↗

Herpes simplex virus type 2 infection of unstimulated human T-lymphocytes.

Unstimulated human leukemia T-cell lines (MOLT-4, MT-4) were tested for their susceptibility to herpes simplex virus type 2 (HSV-2) infection. Permissive infection of MT-4 cells was demonstrated by growth curve and infectious center assays. In growth curve experiments new progeny virus replication was detected by 24 hrs and maximum titers of HSV-2 replication were measured by 72 hrs after infection of MT-4 cells, whereas, MOLT-4 cells did not produce detectable infectious HSV-2 in growth curve experiments. It may be that a T-cell subset is involved with infectious HSV-2 production, since 5.7% of MT-4 cells were scored as infectious centers after HSV-2 infection compared to only 0.06% of MOLT-4 cells. Furthermore, HSV-2 infected MT-4 (45% of cells) and MOLT-4 cells (30% of cells) expressed viral induced antigen(s) detected by immunofluorescence assays. These data provide the first evidence of infectious HSV-2 replication in T-cells not prestimulated in vitro with mitogens, pharmacologic agents or growth factors. The establishment of T-cell systems that permit rapid and efficient replication of HSV-2 could greatly facilitate studies on interactions between human herpesviruses and AIDS retroviruses since recent published evidence indicates possible synergistic interactions between these virus groups.

Antigens, Viral↗

Modulation of herpes simplex virus (HSV) infection of cultured neuronal cells by nerve growth factor and antibody to HSV.

Cultures of neonatal rat dorsal root ganglia (DRG) and the rat phaeochromocytoma line PC12 were used to study herpes simplex virus type 1 (HSV)-neuronal cell interactions. Cultures were used for HSV infection either without additional treatment, or with pretreatment with nerve growth factor (NGF), or with subsequent exposure to medium containing neutralizing antibody to HSV or with a combination of NGF and antibody. The appearance of morphological changes in the cultured cells following HSV infection was delayed by treatment with NGF or neutralizing antibody alone. Both treatments given concurrently resulted in maximal delay; similar results were obtained for both PC12 and DRG cultures. The appearance of a variety of HSV-specified polypeptides identified by a polyspecific rabbit anti-HSV antibody and monoclonal antibodies to the product of immediate early (IE) gene 3, Vmw175 (1098 and 58S), to the major DNA binding protein (1147), to glycoprotein C, gC (1001), and of a minor heat shock protein (identified by monoclonal antibody T156), was followed after HSV infection by indirect immunofluorescence. Staining with polyspecific rabbit anti-HSV increased with time after infection both in intensity and extent and correlated well with the degree of the morphological changes. This staining was delayed by NGF treatment, by exposure to neutralizing antibody, and maximally by both treatments combined, the DRG and PC12 behaving very similarly. Labelling with monoclonal antibodies 1098, 58S and 1147 was increased and that with antibody 1001 decreased in PC12 cells by NGF treatment. No such increased labelling with 1098 was observed in DRG cultures after NGF treatment. It is proposed that NGF treatment leads to increased expression of Vmw175 and to a delay in the transition from early to late HSV polypeptide synthesis in PC12 cells. The expression of the cellular stress protein defined by T156 was upregulated after HSV infection. This upregulation was most marked in cultures treated with NGF.

Animals↗

Sensitization of human keratinocytes to killing by parvovirus H-1 takes place during their malignant transformation but does not require them to be tumorigenic.

To investigate the antineoplastic activity of parvoviruses, proliferating normal human epidermal cells and a series of established keratinocyte cell lines derived from squamous cell carcinomas or transformed in vitro, were compared for the outcome of H-1 virus infection. All established keratinocyte cell lines were more sensitive to killing by H-1 virus than normal epidermal cells, although to varying extents. Using a step-wise procedure for malignant transformation in vitro, we found that sensitization of transformed epidermal cells to H-1 virus can be dissociated from the acquisition of a tumorigenic phenotype. Thus, spontaneously- or SV40-immortalized human keratinocytes were moderately and highly sensitive to H-1 virus, respectively, and could be made tumorigenic by Harvey-ras oncogene transfection without a major change in their susceptibility to the virus. The capacity of human keratinocytes for replicating and expressing H-1 virus DNA appears to be a revealer of cellular alterations that take place in at least some pathways to malignant transformation but that may be insufficient to confer a tumorigenic potential.

Cell Survival↗

Biological and antigenic characteristics of HEL-12 virus.

The biological and antigenic properties of HEL-12 virus have been compared with gibbon ape lymphosarcoma virus (GALV) and simian sarcoma and simian sarcoma-associated viruses, SiSV and SSAV, respectively, HEL-12 virus did not transform human or marmoset fibroblasts but rescued SiSV focus-forming activity from non-productively transformed marmoset cells (HF/SiSV-NP). Like SSAV and GALV, HEL-12 virus induced syncytia with XC cells. In addition, HEL-12 cells which did not produce virus but which contained HEL-12 proviral DNA, rescued SiSV from HF/SiSV-NP cells in co-cultivation experiments. Results of neutralization and serum cytotoxicity tests utilizing SiSV rescued by HEL-12 [SiSV-(HEL-12)] indicated that HEL-12 virus envelope proteins are very closely related to those of SSAV but readily distinguished from those of GALV. Antigenic diversity of SiSV(SSAV), SiSV(GALV) and SiSV(HEL-12) envelope glycoproteins (gp70) was shown in competition radioimmunoassays (RIA) designed to detect minor antigenic differences using antiserum monospecific for SiSV(SSAV) gp70 or Friend murine leukaemia virus gp70. Antigenic differences between these gp70s were demonstrated in RIA using purified SSAV gp70 or HEL-12 gp70. These data indicate that HEL-12 virus has biological properties similar to those of SSAV and GALV, is distinguished from GALV in neutralization tests and has both distinct and SSAV-related gp70 antigenic determinants.

Animals↗

Transformation of human embryonic fibroblasts by BK virus, BK virus DNA and a subgenomic BK virus DNA fragment.

Human embryonic fibroblasts (HEF) have been transformed by BK virus (BKV) DNA and by u.v.-inactivated or live BKV alone or in association with methyl-cholanthrene (MTC). The transformed cells produced BKV large T and small t antigens as well as the cellular 53 kdal protein, detected by immunofluorescence and immunoprecipitation. After an initial phase of lysis and virus shedding, virus or its coat protein antigen could not be detected in transformed cells. All human transformed cell lines could be superinfected by BKV or BKV DNA, but their susceptibility to superinfection was 20- to 500-fold lower than normal HEF. BKV could be rescued by fusion of transformed cells with normal HEF or Vero cells and by transfection of normal HEF with total DNA and DNA extracted from the Hirt supernatant of transformed cells. Blot hybridization analysis of DNA from transformed cells showed a considerable amount of free BKV DNA in monomeric and polymeric forms. Integrated BKV DNA was absent in most cell lines but present in only small amounts in BKV-transformed cells treated with MTC. Analysis of free BKV DNA with various restriction endonucleases and by blot hybridization showed that monomeric forms were complete BKV genomes, whereas polymers contained both complete and defective or rearranged BKV DNA. Transformation of HEF was also obtained with a 3.7 kilobase (kb) fragment of the BKV genome, produced by sequential digestion of BKV with the restriction endonucleases HhaI and EcoRI. This fragment extends clockwise on the virus genome from 0 to 72.2 map units and contains the entire early region. Blot hybridization analysis of cells transformed by the HhaI/EcoRI 3.7 kb fragment showed two separate integrations of BKV sequences without free virus DNA.

Antigens, Viral↗

Isolation of virus-producing transformants from human gastric cancer cell line, HGC-27, infected with human T-cell leukemia virus type I.

A human anaplastic gastric cancer cell line, HGC-27, showed marked degeneration with formation of multinucleated syncytia and cell detachment of nearly all cells which began 24 hr after and reached a maximum 2 to 3 days after co-cultivation with X-irradiated MT-2 cells, HTLV-I producing human cord leukocytes. Less severe degeneration without formation of syncytia was also observed in the cultures inoculated with cell-free MT-2 culture media. Morphologically altered cells began to proliferate and formed piled up colonies in some of the cultures co-cultivated with X-irradiated MT-2 cells after a long culture period. The two clones designated HGC/MT2 (Cl-1) and HGC/MT2 (Cl-2) were separated by cell cloning. HGC/MT2 (Cl-1) and HGC/MT2 (Cl-2) cells were positive for HTLV-I gag proteins (p19 and p24) and pX gene products, p40x, as demonstrated by immunohistochemistry and immunoblotting analysis, contained HTLV-I provirus DNA, and consistently produced type C virus particles.

Cell Transformation, Viral↗

Viruses and apoptosis.

Apoptosis, or programmed cell death, is essential in development and homeostasis in multi-cellular organisms. It is also an important component of the cellular response to injury. Many cells undergo apoptosis in response to viral infection, with a consequent reduction in the release of progeny virus. Viruses have therefore evolved multiple distinct mechanisms for modulating host cell apoptosis. Viruses may interfere with either the highly conserved 'effector' mechanisms of programmed cell death or regulatory mechanisms specific to mammalian cells. In addition to conferring a selective advantage to the virus, the capacity to prevent apoptosis has an essential role in the transformation of the host cell by oncogenic viruses. This article provides a focussed review of apoptosis and illustrates how the study of viruses has informed our understanding of this process. Selected mechanisms by which viral gene products interfere with cell death are discussed in detail and used to illustrate the general principles of the interactions between viruses and apoptosis.

Animals↗