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Vaccination of cattle with attenuated rinderpest virus stimulates CD4(+) T cell responses with broad viral antigen specificity.

The immune responses of cattle inoculated with either a virulent or an attenuated vaccine strain of rinderpest virus (RPV) were examined by measuring the proliferation of peripheral blood mononuclear cells (PBMC) to whole RPV antigen preparations and to individual RPV major structural proteins expressed using recombinant adenoviruses. Responses to the T cell mitogen concanavalin A (ConA) were also measured as a control to monitor non-specific effects of infection with RPV on T cell responses. Infection with the vaccine strain of RPV was found to induce a strong CD4(+) T cell response. A specific response was detected to all RPV proteins tested, namely the haemagglutinin (H), fusion (F), nucleocapsid (N) and matrix (M) proteins, in animals vaccinated with the attenuated strain of the virus. No one protein was found to be dominant with respect to the induction of T cell proliferative responses. As expected, vaccination of cattle with an unrelated virus vaccine, a capripox vaccine, failed to produce a response to RPV antigens. While profound suppression of T cell responses was observed following infection with the virulent strain of RPV, no evidence of impairment of T cell responsiveness was observed following RPV vaccination, or on subsequent challenge of vaccinated animals with virulent virus.

Adenoviridae↗

Rinderpest virus H protein: role in determining host range in rabbits.

A major molecular determinant of virus host-range is thought to be the viral protein required for cell attachment. We used a recombinant strain of Rinderpest virus (RPV) to examine the role of this protein in determining the ability of RPV to replicate in rabbits. The recombinant was based on the RBOK vaccine strain, which is avirulent in rabbits, carrying the haemagglutinin (H) protein gene from the lapinized RPV (RPV-L) strain, which is pathogenic in rabbits. The recombinant virus (rRPV-lapH) was rescued from a cDNA of the RBOK strain in which the H gene was replaced with that from the RPV-L strain. The recombinant grew at a rate equivalent to the RPV-RBOK parental virus in B95a cells but at a lower rate than RPV-L. The H gene swap did not affect the ability of the RBOK virus to act as a vaccine to protect cattle against virulent RPV challenge. Rabbits inoculated with RPV-L became feverish, showed a decrease in body weight gain and leukopenia. High virus titres and histopathological lesions in the lymphoid tissues were also observed. Clinical signs of infection were never observed in rabbits inoculated with either RPV-RBOK or with rRPV-lapH; however, unlike RPV-RBOK, both RPV-L and rRPV-lapH induced a marked antibody response in rabbits. Therefore, the H protein plays an important role in allowing infection to occur in rabbits but other viral proteins are clearly required for full RPV pathogenicity to be manifest in this species.

Animals↗

The Plowright vaccine strain of Rinderpest virus has attenuating mutations in most genes.

The currently used vaccine strain of Rinderpest virus was derived by serial passage of the highly virulent Kabete 'O' strain (KO). A full-length cDNA copy of the KO strain was made from which a virus identical in pathogenicity to the wild-type virus was rescued. A series of chimeric viruses was prepared in which the coding sequences for the N, P, F, H or L proteins were replaced with the corresponding sequences from the vaccine strain. The KO-based virus with the vaccine strain H gene and that with the carboxy-terminal half of the L gene replaced with the corresponding sequence from the vaccine strain retained all or almost all of the virulence of the original KO virus. Animals infected with the KO-based virus containing the vaccine strain N, P or F gene, or the amino-terminal half of the L gene, developed high and prolonged pyrexia and leukopenia, but with reduced or absent lesions and other clinical signs; although partially attenuated, none was nearly as attenuated as the vaccine strain itself. These data indicate that the high attenuation and stability of the current vaccine are due to the accumulation of a number of separate mutations, none of which is itself so sufficiently debilitating that there is strong selective pressure in favour of the revertant.

Animals↗

A role for virus promoters in determining the pathogenesis of Rinderpest virus in cattle.

Rinderpest virus (RPV) is a morbillivirus that causes cattle plague, a disease of large ruminants. The viral genome is flanked at the 3' and 5' genome termini by the genome promoter (GP) and antigenome promoter (AGP), respectively. These promoters play essential roles in directing replication and transcription as well as RNA encapsidation and packaging. It has previously been shown that individual changes to the GP of RPV greatly affect promoter activity in a minigenome assay and it was therefore proposed that individual nucleotide changes in the GP and AGP might also have significant effects on the ability of the virus to replicate and cause disease in cattle. The Plowright vaccine strain of RPV has been derived by tissue-culture passage from the virulent Kabete 'O' isolate (KO) and is highly attenuated for all ruminant species in which it has been used. Here, it was shown that swapping the GP and the first 76 nt of the AGP between virulent and avirulent strains affected disease progression. In particular, it was shown that flanking the virulent strain with the vaccine GP and AGP sequences, while not appreciably affecting virus growth in vitro, led to attenuation in vivo. The reverse was not true, since the KO promoters did not alter the vaccine's attenuated nature. The GP/AGP therefore play a role in attenuation, but are not the only determinants of attenuation in this vaccine.

Animals↗

Immunohistological localisation of rinderpest virus in formalin-fixed, paraffin-embedded tissues from experimentally infected cattle.

Six Freesian steers were subcutaneously inoculated with the virulent rinderpest virus strain Kabete "0" and sacrificed at the height of fever. Sections of formalin-fixed, paraffin-embedded tissues were stained according to the peroxidase anti-peroxidase (PAP) technique. Labelling of viral antigen, both in the cytoplasm and in the nuclei of infected cells, was observed in the epithelial cells of the upper and lower alimentary tract and in lymphoid organs, i.e. spleen, lymph nodes, pharyngeal tonsils, Peyer's patches and thymus. Electron microscopy studies confirmed the results.

Animals↗

Pathogenesis of rinderpest virus infection in rabbits. I. Clinical signs, immune response, histological changes, and virus growth patterns.

Rabbits were intravenously inoculated with an attenuated rinderpest virus (L strain), and general patterns of the disease were investigated. The rabbits developed fever with concomitant occurrence of diarrhea and lymphopenia. Early production of interferon was followed by a rise of neutralizing antibody. Histological examinations revealed an involvement of all of the lymphoid tissues, with primary lesions consisting of necrosis of the lymphoid follicles and formation of giant cells. Immunofluorescent examinations suggested that the virus growth was present in almost all of the lymphoid tissues. The possibility of application of this experimental system for the study of systemic infection by measles virus was discussed.

Animals↗

Effect of gamma irradiation on reactivity of rinderpest virus antigen with bovine immune serum in enzyme-linked immunosorbent assays and virus neutralization and indirect fluorescent-antibody tests.

Gamma irradiation effectively inactivated gradient-purified rinderpest virus. Irradiated antigen and sera remained functional in enzyme-linked immunosorbent assays, virus neutralization tests, and indirect fluorescent-antibody tests. Irradiation, however, led to a dose-dependent decrease in reactivity, particularly significant (P < 0.05) when both reagents were irradiated. To avoid false-positive reactions, only one reagent (serum or antigen) may be irradiated.

Animals↗

Identification of immunodominant neutralizing epitopes on the hemagglutinin protein of rinderpest virus.

The immunodominant epitopes on the hemagglutinin protein of rinderpest virus (RPV-H) were determined by analyzing selected monoclonal antibody (MAb)-resistant mutants and estimating the level of antibody against each epitope in five RPV-infected rabbits with the competitive enzyme-linked immunosorbent assay (c-ELISA). Six neutralizing epitopes were identified, at residues 474 (epitope A), 243 (B), 548 to 551 (D), 587 to 592 (E), 310 to 313 (G), and 383 to 387 (H), from the data on the amino acid substitutions of hemagglutinin protein of MAb-resistant mutants and the reactivities of MAbs against RPV-H to the other morbilliviruses. The epitopes identified in this study are all positioned on the loop of the propeller-like structure in a hypothetical three-dimensional model of RPV-H (J. P. M. Langedijk et al., J. Virol. 71:6155-6167, 1997). Polyclonal sera obtained from five rabbits infected experimentally with RPV were examined by c-ELISA using a biotinylated MAb against each epitope as a competitor. Although these rabbit sera hardly blocked binding of each MAb to epitopes A and B, they moderately blocked binding of each MAb to epitopes G and D and strongly blocked binding of each MAb to epitopes E and H. These results suggest that epitopes at residues 383 to 387 and 587 to 592 may be immunodominant in humoral immunity to RPV infection.

Amino Acid Sequence↗

Rinderpest virus phosphoprotein gene is a major determinant of species-specific pathogenicity.

We previously demonstrated that the rinderpest virus (RPV) hemagglutinin (H) protein plays an important role in determining host range but that other viral proteins are clearly required for full RPV pathogenicity to be manifest in different species. To examine the effects of the RPV nucleocapsid (N) protein and phosphoprotein (P) genes on RPV cross-species pathogenicity, we constructed two new recombinant viruses in which the H and P or the H, N, and P genes of the cattle-derived RPV RBOK vaccine were replaced with those from the rabbit-adapted RPV-Lv strain, which is highly pathogenic in rabbits. The viruses rescued were designated recombinant RPV-lapPH (rRPV-lapPH) and rRPV-lapNPH, respectively. Rabbits inoculated with RPV-Lv become feverish and show leukopenia and a decrease in body weight gain, while clinical signs of infection are never observed in rabbits inoculated with RPV-RBOK or with rRPV-lapH. However, rabbits inoculated with either rRPV-lapPH or rRPV-lapNPH became pyrexic and showed leukopenia. Further, histopathological lesions and high virus titers were clearly observed in the lymphoid tissues from animals infected with rRPV-lapPH or rRPV-lapNPH, although they were not observed in rabbits infected with RPV-RBOK or rRPV-lapH. The clinical, virological, and histopathological signs in rabbits infected with the two new recombinant viruses did not differ significantly; therefore, the RPV P gene was considered to be a key determinant of cross-species pathogenicity.

Animals↗

Comparison of the pathogenicity of rinderpest virus in different strains of rabbits.

Pathogenicity of the lapinized Nakamura-III (L) strain of rinderpest virus (RPV) was examined in four strains of rabbits consisting of two inbred strains (NW-NIBS and DUY-NIBS) and two outbred strains maintained in closed colony (NW-NIBS and JW-NIBS) using a marmoset lymphoblastoid cell line, B95a cell-passaged virus and tissue homogenates of virus-infected rabbits. The cell culture virus was found to maintain virulence for rabbits of both closed colony and inbred NW-NIBS strain similar to the homogenate virus. Among the strains investigated, inbred NW-NIBS strain showed the highest susceptibility to RPV. Thus experimental model in an inbred rabbit using cell culture virus became useful.

Animals↗

The nucleotide sequence of the hemagglutinin gene of the LA strain of rinderpest virus, a seed virus strain used for vaccine production in Japan.

The sequence of the hemagglutinin (HA) gene of the LA strain of rinderpest virus (RPV) has been determined by the direct sequencing method. The amino acid sequence of the protein which it encodes displays conservation of its structural determinants with the HA proteins of the other RPV strains. The LA-HA protein was shown to have three conserved potential N-linked glycosylation sites, compared with four such sites in the HA protein of L strain. The glycosylation site at position 200 on the L-HA molecule is absent from its LA-HA counterpart, due to a lysine for an asparagine substitution. The HA proteins of L and LA strains were the same molecular weight as judged by mobility on SDS-PAGE, suggesting that the site at position 200 is not used for glycosylation.

Amino Acid Sequence↗

Molecular properties of the matrixprotein(M) gene of the lapinized rinderpest virus.

The nucleotide sequence of the matrixprotein (M) gene of the lapinized rinderpest virus (RPV-L) was determined. The full-length cDNA of the RPV-L M gene is composed of 1460 base pairs and is supposed to contain an open reading frame of 1005 nucleotides encoding on M protein of 335 amino acids. The homology of the predicted amino acid among congeneric morbilliviruses such as RPV Kabete 'O' strain (wild strain of RPV), RPV RBOK strain (vaccine strain of RPV for cattle), measles virus (MV), and canine distemper virus (CDV), is approximately 94%, 93%, 87% and 77%, respectively. In the present study, all coding regions of the RPV-L strain have been determined.

Amino Acid Sequence↗

Experimental infection of white-tailed deer with rinderpest virus.

White-tailed deer (Odocoileus virginianus) succumbed to experimental infection with virulent rinderpest (RP) virus that was also lethal to cattle and goats. The deer developed clinical signs typical of RP and died 5 and 6 days post-inoculation. Infection was confirmed by recovery of virus from blood before death, from lymph node tissue after necropsy, and demonstration of specific complement fixing antigen in those tissues. Electron micrographs of infected Vero cell cultures revealed extracellular virions and intracytoplasmic and intranuclear inclusions made of randomly distributed fibrillar strands.

Animals↗

Comparison of autoimmunity induction with virulent and attenuated rinderpest virus in rabbits.

Two strains of rinderpest virus which differ each other in virulence to rabbits were compared in their capacity to produce autoantibodies and their effects on the function of the lymphoid system. The virulent L strain induced two autoantibodies, i.e., antinuclear antibody (ANA) and cold hemagglutinating antibody (HA), and suppressed lymphocyte response to phytohemagglutinin and to concanavalin A for at least 4 weeks after infection. The attenuated LA strain, on the other hand, failed to induce the autoantibodies except transient production of cold HA in few animals, although persistent production of virus-neutralizing antibody like that in L strain infection was observed. The suppression of lymphocyte responses to mitogens was limited to a period of 3--7 days after infection. Possible mechanism of the virus-induced autoimmunity was discussed in relation to the immunosuppressive effect of virus infection.

Animals↗

The production and use of rinderpest cell culture vaccine.

Description of preparation, safety and efficacy testing of a rinderpest cell culture vaccine which is observed in lyophilized form and should be used within two hours following its reconstitution. Excellent results have been obtained with this vaccine in Kenya, Uganda and Tanzania.

Animals↗

Use of an enzyme-linked immunosorbent assay for the detection of IgG antibodies to rinderpest virus in epidemiological surveys.

A comparison was made between an indirect enzyme-linked immunosorbent assay (ELISA) and the virus neutralisation test (VNT) for the detection of antibodies to rinderpest virus in field sera. The results did not agree for 6 per cent of the sera tested where 3 per cent of the samples gave ELISA positive/VNT negative and 3 per cent gave ELISA negative/VNT positive. The latter sera all had high levels of IgM antibody, which may indicate animals being at an early stage of infection or detection of a non-specific reaction. The ELISA results give a representative picture of the immune status for field surveys and a greater number of sera can be assayed with relative ease, compared to the traditional serum neutralisation test.

Animals↗

Circulating immune complexes in rabbits surviving rinderpest virus infection.

Circulating immune complexes (CICs) precipitated from the sera of rabbits recovered from infection with rabbit virulent (lapinized) rinderpest virus (RPV) were found to contain RPV antigen and rabbit IgG. The CICs persisted for at least 77 days post infection. The CICs and the antigen isolated from them by chromatography on Sepharose-6B were found to be non-infectious. RPV-specific antibodies could be detected in the antisera raised in rabbits against the CICs and the isolated antigen. Furthermore, the antigenic content of CICs competed with the attenuated strain and the virulent isolate Hisar of RPV in competition ELISA. Identical CICs were not detected in the sera of calves vaccinated with RBOK strain.

Animals↗