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Study of a new strain of paramyxoviruses isolated from wild ducks: antigenic and biological properties.

Among the different strains of avian paramyxoviruses isolated from migrating feral ducks, two were identified as Newcastle disease viruses (NDV) and the five others would correspond to a new serotype for which we suggest the name of Duck/Mississippi/75 virus. The characteristics of this new serotype are as follows: (1) Duck/Mississippi/75 virus is able to grow as well in allantoic as in amniotic cavities of embryonated hen's eggs; (2) the haemagglutinin and haemolytic activities can be detected with hen red blood cells; (3) the neuraminidase hydrolyses the alpha 2 leads to 3 bonds of the fetuin substrate and its pH activity could be species specific. Antigenically, this serotype is different from all human and animal paramyxoviruses, in spite of an antigenic relationship with NDV.

Animals

Isolation of a new avian paramyxovirus from a rock pigeon (Columba livia).

A hemagglutinating agent identified as paramyxovirus was isolated from the respiratory organs of a rock pigeon captured in Hokkaido, Japan. The virus was serologically distinct from the known members of genus Paramyxovirus. Of the 160 pigeons collected in Hokkaido, 6 possessed the antibodies to the virus. The virus was designated as Paramyxovirus/pigeon/Otaru/76.

Animals

Serological relationships between certain avian and animal paramyxoviruses.

An avian paramyxovirus designated Robin/Hiddensee/19/75 proved to be related to the Yucaipa virus group in cross haemagglutination inhibition test (HIT). Whereas the prototype parainfluenza viruses did not react with the antiserum raised against the Robin virus, a newly isolated bovine parainfluenza 3 virus was shown to be inhibited up to half the homologous titre. Possible antigenic relationships between avian, mammalian and human paramyxoviruses are discussed.

Animals

Recovery of Paramyxovirus from the jejunum of patients with multiple sclerosis.

Paramyxovirus, presumably measles, has been recovered by cocultivation or cell-fusion techniques from jejunal biopsy specimens of 6 consecutive patients with multiple sclerosis. Virus has been identified by immunofluorescence of antigen in infected HEp-2 and BSC-1 cells, by electron microscopy, and by haemagglutination of rhesus-monkey erythrocytes.

Animals

Antigenic and structural relationships between avian paramyxoviruses isolated from ducks in Hong Kong and Mississippi, U.S.A.

Representative isolates of the paramyxoviruses duck/Hong Kong/75 and duck/Mississippi/75 were shown to be serologically closely related by haemagglutination and neuraminidase inhibition tests. The structural polypeptides of these viruses were also shown to be similar. For each of the isolates tested, polyacrylamide gel electrophoresis in the presence of SDS revealed a similar polypeptide pattern consisting, under reducing conditions, of seven polypeptides with apparent mol. wt. ranging from 46000 to 190000. Each virus had two glycosylated polypeptides with apparent mol. wt. of 56000 and 71000 to 72000 under reducing conditions and 62000 to 63000 and 135000 to 142000 under non-reducing conditions.

Animals

Biochemical properties of paramyxovirus Duck/Mississippi/75 neuraminidase.

The neuraminidase activity of two strains of Duck/Mississippi/75 virus:DK/Mississippi/320 and DK/Mississippi/334 was studied. These neuraminidases hydrolyse the alpha 2 leads to 3 and alpha 2 leads to 8 ketosidic bonds of different substrates such as fetuin, N-acetyl neuramine lactose and colominic acid, but do not hydrolyse the alpha 2 leads to 6 bonds of mucin type I and type II. The kinetic values of the neuraminidases, Michaelis constant, maximal and initial velocities and the effect of pH, temperature and detergents were also evaluated. The isolates differ mainly in the optimal pH and temperature conditions of activity. As with other paramyxovirus neuraminidases, the enzyme of DK/Mississippi/75 was destroyed by ionic but not non-ionic detergents.

Animals

Infectivity of DNA recovered from cells persistently infected with SV5 paramyxovirus.

Infectivity of DNA isolated from L cells chronically infected with SV5 paramyxovirus was demonstrated by inoculation of continuous RH and HEp-2 cells. Infectivity of the DNA was completely abolished by treatment with deoxyribonuclease or by alkaline hydrolysis but did not change after treatment with ribonuclease and specific anti SV5 serum. The virus obtained as a result of transfection caused haemadsorption in susceptible cells and was neutralized by specific antiserum like the prototype SV5 strain.

Animals

Cellular proteases increased in paramyxovirus (Sendai virus) carrier cells possibly responsible for enhanced formation of cowpox virus-specific cell surface antigen.

Cowpox virus (CPV) growth and its S-ag (cell surface antigen) formation in HVJ (Sendai virus) carrier cells pre-treated with Actinomycin D or Puromycin were not affected as much as those in parent cells. These suggest the different cellular functions of carrier cells. The activity of carrier cell extracts causing a characteristic degradation of CPV reacted with them in vitro disappeared after the pre-incubation of extracts with hemoglobin or casein. Measurements of cellular protease activities including lysosomal enzymes demonstrated significant increases in the carrier cell extracts compared to those in parent cells; The CPV, thus reacted in vitro with the extracts or lysosomal fraction from carrier cells, acquired more rapidly and markedly the enhanced ability of S-ag formation parallel to virus infectivity alteration in the reaction. These results indicate that the enhancement of CPV S-ag formation in the HVJ carrier cells may be due to their increased cellular enzymes, possibly proteolytic ones, capable of promoting the first step of CPV uncoating or degradation in the cells.

Acid Phosphatase

Effect of double infection of cowpox virus-infected cells with paramyxovirus (Sendai virus) on formation of cowpox virus-specific cell surface antigen.

The formation of cowpox virus-specific cell surface antigen (CPV S-ag) was significantly enhanced by double infection with HVJ (Sendai virus). Simultaneous double infection, superinfection with HVJ and superinfection with CPV of cells persistently infected with HVJ similarly enhanced the formation of CPV S-ag, while pre-infection with HVJ was ineffective. To be effective, cells must be infected at a m.o.i. of greater than or equal to 1.0 and HVJ gene functions had to be expressed. The HVJ-infected cell extracts had an ability to accelerate uncoating (or degradation) of CPV, causing an early increase and a subsequent decrease in the infectivity of CPV. This activity reached a maximum 4--6 hr after HVJ infection, the increase paralleling enhancement of the total activity of several cellular enzymes. Addition of puromycin abolished the increase of these activities and the formation of CPV S-ag. Thus, the double infection with HVJ of CPV-infected cells induces an enhancement of CPV S-ag formation presumably as a consequence of activation of cellular enzymes which in turn accelerates uncoating of CPV.

Antigens, Surface

Myxoviruses.

Myxoviruses can be divided into 2 groups, orthomyxoviruses and paramyxoviruses. the former comprise the influenza group which is subdivided into types A,B and C. Influenza B and C are purely human pathogens but influenza A, which includes a large number of antigenic subtypes, occurs in nature in pigs, horses, birds and man. All influenza A viruses irrespective of origin are chemically, biologically and genetically related. The epidemics which they cause are curious and puzzling and are an important cause of morbidity. Paramyxoviruses consist of human and animal parainfluenza viruses. The former comprise parainfluenza types 1,2,3 and 4 and mumps viruses, and, rather less certainly, measles and respiratory syncytial virus. The main animal paramyxoviruses are parainfluenza 3 (agent of shipping fever) in cattle; NDV (cause of fowl pest) and Yucaipavirus in birds; Sendai and PVM in mice; Nariva virus in rodents; possibly bovinerespiratory syncytial virus; and SV5 and SV41 in monkeys. The viruses and their place in nature will be reviewed.

Animals

A further member of the Yucaipa group isolated from the common wren (Troglodytes troglodytes).

In 1977, 477 small birds of 52 species were virologically examined. Five cloacal swabs from Troglodytes troglodytes yielded two paramyxovirus strains which were found antigenically related to, but not identical with Ch/Yucaipa/California/56 virus according to three serological tests. The ecological significance of these findings and the possibility of paramyxovirus classification into four types are discussed.

Animals

Distinct Evolutionary Signatures of Human Parainfluenza Viruses 2 and 4 Reveal Host Antagonism Divergence and Phylogenetic Discordance.

Human parainfluenza virus 2 (HPIV-2) and human parainfluenza virus 4 (HPIV-4) are significant but underappreciated respiratory pathogens, particularly among high-risk populations including children, the elderly, and immunocompromised individuals. In this study, we sequenced 101 HPIV-2 and HPIV-4 genomes from respiratory samples collected in western Washington State and performed comprehensive evolutionary analyses using both new and publicly available sequences. Phylogenetic and phylodynamic analyses revealed that both HPIV-2 and HPIV-4 evolve at significantly faster rates compared to the mumps virus, a reference human orthorubulavirus. Notably, while HPIV-2 demonstrated the highest evolutionary rates in the surface glycoprotein HN, consistent with humoral immune-driven selection, the innate immune antagonist V/P gene evolved fastest in HPIV-4. We identified a hypervariable region within the HPIV-4V/P protein (residues 35 to 75), which structural modeling placed in a loop overlapping a known interferon antagonism domain in other paramyxovirus V proteins, though HPIV-4 is functionally incompetent in this activity. Expanded phylogenetic analysis across the Paramyxoviridae family uncovered a striking evolutionary discordance: while the HN glycoprotein and L polymerase of HPIV-4 and its 2 closest bat-derived viruses clustered within the Orthorubulavirus genus, their nucleoprotein (N), phosphoprotein (P), matrix (M), and fusion (F) proteins formed a distinct lineage outside the Rubulavirinae subfamily. Together, these findings highlight the distinct evolutionary trajectories of HPIV-2 and HPIV-4, raise hypotheses around complex Paramyxoviridae zoonotic events including recombination-like patterns, and demonstrate limitations of current L protein-based taxonomic classification schemes.

Humans

Infantile cortical measles inclusion body encephalitis during combined treatment of acute lymphoblastic leukemia.

A case of cortical measles inclusion body encephalitis occuring in a boy aged 6 years 7 months, 4 months after uncomplicated measles is reported. The child was undergoing combined treatment ofr acute lymphoblastic leukemia. He was in primary remission for 2 years. The neuropathological findings are characterized by necrosis, eosinophilic nuclear and cytoplasmic inclusion bodies in the neuronal and glial cells within the cerebral cortex and basal ganglia. Nucleocapsides of paramyxoviruses were detected in the nuclear inclusion bodies of both cell types.

Brain

Glycoproteins of Sendai virus: purification and antigenic analysis.

Solubilized envelope antigens (glycoproteins) of Sendai virus were purified in a DEAE-Bio-Gel A column. Monospecific antisera were prepared against the antigens, designated HN and F glycoproteins. These glycoproteins are antigenically distinct. Immunodiffusion analyses of the envelope antigens of three representative paramyxoviruses (Sendai, Yucaipa, and Newcastle disease virus)did not reveal any cross-reactions among them with antisera specific for Sendai virus glycoproteins.

Antigens, Viral