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RNA editing in the phosphoprotein gene of the human parainfluenza virus type 3.

RNA editing of the human parainfluenza virus type 3 (HPIV3) phosphoprotein (P) gene was found to occur for the accession of an alternate discontinuous cistron. Editing occurred within a purine-rich sequence (AAUUAAAAAAGGGGG) found at the mRNA nucleotides 791-805. This sequence resembles an HPIV3 consensus transcription termination sequence and is located at the 5'-end of the putative D protein coding sequences. Editing at an alternate site (AAUUGGAAAGGAAAGG), mRNA nucleotides 1121-1136, for accession of a conserved V cistron, which is present in a number of paramyxovirus P genes, was not found to occur in HPIV3. In contrast with many other paramyxoviruses, editing was indiscriminate with the insertion of 1-12 additional G residues not present in the gene template. RNA editing was found to occur in both in vivo (HPIV3 infected cells) and in vitro (purified nucleocapsid complexes) synthesized mRNAs. Further, the in vitro prepared mRNA was edited regardless of whether the nucleocapsid complexes were transcribed in the presence or absence of uninfected human lung carcinoma (HLC) cell lysates. These results support the notion that RNA editing appears to be exclusively a function of viral proteins.

Amino Acid Sequence↗

Function and immunogenicity of human parainfluenza virus 3 glycoproteins expressed by recombinant adenoviruses.

Human parainfluenza virus type 3 fusion (F) and hemagglutinin-neuraminidase (HN) cDNA sequences were inserted into the E3 region of the adenovirus type 5 genome. Cells infected with recombinant adenoviruses containing HPIV3 F (AdF) and HN (AdHN) sequences were shown to express HPIV3 F and HN proteins that were functional and immunogenic. The HN protein produced following AdHN infection was glycosylated, expressed on the surface of infected cells and exhibited both hemagglutinin and neuraminidase activities. AdF infection led to the synthesis of both the HPIV3 F0 precursor and its proteolytic cleavage product, F1. F proteins produced by AdF were glycosylated and expressed on the infected cell surface. Syncytium formation was observed in HeLa T4 cell monolayers upon coinfection with AdF and AdHN. The F and HN proteins expressed by recombinant adenoviruses were recognized by HPIV3 F- and HN-specific monoclonal antibodies. Mice injected intraperitoneally with AdF or AdHN produced antibodies that immunoprecipitated the appropriate HPIV3 glycoproteins and sera from immunized mice effectively neutralized HPIV3 virions. These results support future work using recombinant adenoviruses to study the immune response to individual HPIV3 glycoproteins as well as in protection studies using animal models.

Adenoviridae↗

Expression and characterization of soluble human parainfluenza virus type 1 hemagglutinin-neuraminidase glycoprotein.

Human parainfluenza virus types 1 (hPIV-1), 2, and 3 represent significant respiratory pathogens for which no antiviral treatment is currently available. To characterize the biochemical functions of the hPIV-1 hemagglutinin-neuraminidase (HN) glycoprotein, a potential target for antiviral therapy, we cloned and expressed a soluble portion of hPIV-1 HN (amino acid residues 137-575), lacking the N-terminal hydrophobic membrane anchorage region, in insect cells using the baculovirus secretion expression system. The expressed HN protein was purified through cation-exchange chromatography followed by metal affinity chromatography, using the 6xHis epitope introduced at the carboxyl terminus of the recombinant protein. N-terminal amino acid sequence analysis of purified HN indicated that the honeybee melittin secretion signal peptide was correctly removed during post-translational processing. Further characterization revealed that the purified HN protein was N-glycosylated and exhibited neuraminidase activity whose characteristics resembled those of the native HN protein of hPIV-1 virions. The establishment of this expression and purification system has allowed us to further explore the biochemical characteristics of paramyxovirus HN and to obtain material that could be suitable for X-ray crystallography studies.

Amino Acid Sequence↗

Parainfluenza virus type 3 infections in a hematology unit.

Parainfluenza virus type 3 (PIV3) is associated with a high mortality rate in BMT recipients with lower respiratory tract infections. We describe nine patients with hematological malignancies (five having undergone either allogeneic or autologous stem cell transplantation) identified as having PIV3 infection during a 2-month period in a Hematology Unit. Four patients with infiltrates on chest radiograph received intravenous ribavirin therapy; all survived. The infection was community-acquired in two patients, while nosocomial origin of the disease was evident, or presumed, in the remaining seven. The policy implemented to control the spread of PIV3 was as follows: (1) nasopharyngeal samples for antigen detection were obtained from all patients presenting with respiratory symptoms; (2) all diagnosed (or suspected) PIV3-positive hematological patients were nursed following contact isolation precautions, preferably in the Infectious Diseases Unit; and (3) staff were given further education on hospital hygiene. Our experience shows that it may be possible to avoid mortality for PIV3 lower respiratory tract infection in immunocompromised patients by early commencement of intravenous ribavirin. It is also possible, even without closing the ward, to contain nosocomial spread of PIV3 by implementing systematic nasopharyngeal sampling for rapid diagnostics, and by strict adherence to cohorting and contact isolation precautions.

Adult↗

Characterization of the oligomerization domain of the phosphoprotein of human parainfluenza virus type 3.

The phosphoprotein (P) of human parainfluenza virus type 3 (HPIV 3) plays a central role in the viral genome RNA transcription and replication. It acts as an essential cofactor of the RNA polymerase (L) by forming a functional L-P complex, binds to the genomic N-RNA template to recruit the L-P complex for RNA synthesis, and interacts with the nucleocapsid protein (N) to form the encapsidation complex (N-P). We have earlier demonstrated that the P protein forms oligomers (B. P. De, M. A. Hoffman, S. Choudhary, C. C. Huntley, and A. K. Banerjee, 2000, J. Virol. 74, 5886-5895) and in this article we identified the putative oligomerization domain of the P protein and studied the role of this domain in transcription. By computer analyses, we have localized a high-score coiled-coil motif characteristic of oligomerization domain residing between the amino acid residues 423 and 457 of the P protein. Deletion of 12 amino acid residues within this coiled-coil motif (P Delta 439-450) completely abrogated oligomerization, whereas deletion in other regions outside the motif had no significant effect. The mutant P Delta 439-450 was both defective in mRNA synthesis in vitro and minigenome transcription in vivo. Interestingly, the mutant interacted with L to form L-P complex, albeit less efficiently, while its interaction with N protein to form N-P complex and with N-RNA template was similar to the wt P protein. Our results indicate that oligomerization provides a key function to the P protein in the transcription of HPIV 3 genome RNA.

Amino Acid Motifs↗

Strain variation in parainfluenza virus type 4.

Variations in epitopes on structural proteins of four isolates of parainfluenza virus type 4 (PIV-4) and the Mr of polypeptides in these isolates were determined by radioimmune precipitation assay with monoclonal antibodies to parainfluenza virus type 4A (PIV-4A) and type 4B (PIV-4B). Three isolates antigenically resembled the prototype PIV-4A and the sizes of their structural proteins were 72K (HN protein), 61K (F0 protein), 61K (NP protein) and 40K (M protein). However, one virus isolate showed marked antigenic differences from both the 4A and 4B prototype viruses, particularly with regard to properties of the HN and F proteins. In addition, both the NP and F0 proteins of this isolate had a slightly increased Mr of 63K.

Animals↗

Human malignant melanoma cell line (HMV-II) for isolation of influenza C and parainfluenza viruses.

HMV-II, a human malignant melanoma cell line, was compared with other cell lines (MDCK, Vero, and LLC-MK2) and primary cultures of monkey kidney (PMK) cells for the isolation and quantification of influenza and parainfluenza viruses. HMV-II cells were superior to MDCK and LLC-MK2 cells in quantification of the influenza C virus and were used successfully in the isolation of the virus from clinical specimens. The HMV-II cell line was also more sensitive for isolating parainfluenza viruses from clinical specimens than were Vero and PMK cells; there was, however, no significant difference in the quantification of the viruses among these cultures. As far as influenza A and B viruses were concerned, the HMV-II cell line was significantly less sensitive than MDCK cells, and no virus was isolated from clinical specimens with HMV-II cells. Thus, HMV-II cells are useful for the isolation of influenza C and parainfluenza viruses as an alternative to embryonated hen's eggs and PMK cells.

Animals↗

Development of a guinea pig colony free of complement-fixing antibodies to parainfluenza virus.

Complement-fixing antibodies to parainfluenza 3 virus were found in Hartley strain [Cds: (HA)] guinea pigs from the authors' production colony. The prevalence and distribution of these antibodies were determined by testing guinea pigs of five age categories: 4 weeks, 8 weeks, 12 weeks, 6 months to 1 year, and over 1 year of age. Forty-seven percent (28 of 60) were positive to parainfluenza 3 antigen. Positive reactors were found in all age groups except those 8 weeks old. The 12-week-old group had the highest titers; the group over 1 year of age had the highest percentage of positives (92%). When 8-week-old guinea pigs were isolated, 55% were positive at some time between 8 and 34 weeks of age. The titers characteristically rose rapidly and then dropped slowly to low or undetectable levels. Four pairs of breeders over 6 months of age (most of whom were positive for parainfluenza 3 virus antibodies and, therefore, presumed to be immune to the virus) were isolated and allowed to breed. Their offspring were found to be free of complement-fixing antibodies to parainfluenza 3 virus.

Age Factors↗

Parainfluenza virus respiratory infection after bone marrow transplantation.

BACKGROUND: Pneumonia complicates about half of all bone marrow transplantations, and in about a third of the cases no specific cause is identified. Although parainfluenza virus is a common cause of respiratory infection in normal children, its role in transplant recipients is unknown. METHODS: We describe the incidence and clinical course of parainfluenza infection among the 1253 recipients of bone marrow transplants at our center from 1974 through 1990. We performed viral cultures on all such recipients who had manifestations of a viral infection or fever without apparent cause. RESULTS: Among the 1253 patients, we found 27 (2.2 percent) who had parainfluenza virus infection as demonstrated by culture (12 of 580 adults and 15 of 673 children). Eight of these patients had only upper respiratory tract involvement, all of whom had positive nasopharyngeal cultures. Of the remaining 19, 8 had symptoms of both upper and lower respiratory tract involvement, and 11 had only lower respiratory involvement, of whom only 6 had positive nasopharyngeal cultures. Four required bronchoalveolar lavage for diagnosis. A median of nine days elapsed from the onset of symptoms until the culture became positive, and overall only 33 of 118 cultures obtained were positive. Respiratory failure developed in 6 of the 19 patients with lower respiratory tract involvement, and all died. CONCLUSIONS: Parainfluenza virus is a cause of serious lower respiratory tract involvement in both adults and children who undergo bone marrow transplantation. Given the insensitivity of current culturing techniques, it may be underdiagnosed.

Adolescent↗

Paramyxovirus fusion: real-time measurement of parainfluenza virus 5 virus-cell fusion.

Although cell-cell fusion assays are useful surrogate methods for studying virus fusion, differences between cell-cell and virus-cell fusion exist. To examine paramyxovirus fusion in real time, we labeled viruses with fluorescent lipid probes and monitored virus-cell fusion by fluorimetry. Two parainfluenza virus 5 (PIV5) isolates (W3A and SER) and PIV5 containing mutations within the fusion protein (F) were studied. Fusion was specific and temperature-dependent. Compared to many low pH-dependent viruses, the kinetics of PIV5 fusion was slow, approaching completion within several minutes. As predicted from cell-cell fusion assays, virus containing an F protein with an extended cytoplasmic tail (rSV5 F551) had reduced fusion compared to wild-type virus (W3A). In contrast, virus-cell fusion for SER occurred at near wild-type levels, despite the fact that this isolate exhibits a severely reduced cell-cell fusion phenotype. These results support the notion that virus-cell and cell-cell fusion have significant differences.

Animals↗

Proteolytic cleavage of wild type and mutants of the F protein of human parainfluenza virus type 3 by two subtilisin-like endoproteases, furin and Kex2.

The fusion (F) protein of human parainfluenza virus type 3 contains the tribasic cleavage site R-T-K-R, which was altered by site-directed mutagenesis. Wild-type F protein and various mutants were expressed by recombinant vaccinia viruses. The endogenous endoprotease present in CV-1 cells cleaves F variants containing the furin recognition motif R-X-K/R-R but not variants containing the dibasic site K-R or a single R at the cleavage site. A similar cleavage pattern was obtained when the subtilisin-like endoproteases Kex2 and furin were coexpressed with the wild type and mutants of the F protein. Peptidylchloromethylketone inhibitors mimicking basic cleavage sites prevent cleavage of the precursor Fo by the endogenous protease only when the furin-specific motif is present in the peptidyl portion. The data support the concept that furin is a cellular protease responsible for the activation of the F protein of human parainfluenza virus type 3.

Amino Acid Sequence↗

Dysfunction of sense of smell caused by canine parainfluenza virus infection in dogs.

Olfactory function of 5 dogs that were naturally infected with canine parainfluenza virus and of 4 dogs that were inoculated with the C958 strain of canine parainfluenza virus was evaluated. Except for one dog that was inoculated, the threshold for detection of benzaldehyde and/or eugenol was found to be excessively high during the course of the disease, as determined by electroencephalographic and behavioral olfactometry. In experimentally infected dogs, an increase in threshold developed in the absence of other clinical signs of disease. Changes were not observed in electro-olfactograms recorded throughout the study. Olfactory thresholds returned to normal after the disappearance of clinical signs of disease in the naturally infected dogs. Necropsies and histologic examinations performed during the course of the disease did not reveal abnormalities of the olfactory mucosa.

Animals↗

An epizootic of parainfluenza virus type 1 in a group of C57B16 mice.

An epizootic of respiratory troubles was noticed in a group of C57B16 mice used to study their response following inoculations of different thymic extracts. The infection was characterized by a high level of mortalities. Macroscopically, the lungs of affected animals showed red consolidated areas on the lobes. Microscopically, an acute bronchopneumonia with eosinophilic intracytoplasmic inclusion bodies in the epithelial cells of the bronchi were seen. Those lesions suggest a parainfluenza virus type 1 infection. The presence of viral particles, morphologically similar to members of the Paramyxoviridae family in lung homogenates observed under electron microscopy and the elevated serum complement fixation and hemagglutination inhibition antibody titers to parainfluenza virus type 1 confirm the diagnosis. The source of the infection is unknown but four hypothesis are proposed. Healthy animals free of demonstrable antibodies specific to parainfluenza virus type 1 were obtained and the experiment was repeated. No mortalities were observed and the animals remained free of demonstrable complement fixation and hemagglutination inhibition antibodies throughout the experiment.

Animals↗

Functional interactions between the fusion protein and hemagglutinin-neuraminidase of human parainfluenza viruses.

The fusion glycoprotein (F) and hemagglutinin-neuraminidase (HN) genes of human parainfluenza virus type 2 (PI2) were molecularly cloned and expressed in HeLa-T4 cells by using the vaccinia virus-T7 transient expression system. Expression of the F and HN proteins was detected by using immunoprecipitation and surface immunofluorescence staining. Although the F protein was found to be cleaved into F1 and F2 and expressed on cell surfaces, no cell fusion was observed. However, cotransfection of the F-protein gene together with the P12 HN gene resulted in significant levels of cell fusion. Cell fusion was also observed when separate cell cultures were transfected with the HN and F genes and the F-expressing cells were mixed with the HN-expressing cells. Surprisingly, when the PI2 F protein was expressed together with the parainfluenza virus type 3 (PI3) HN protein, no fusion was detectable in the transfected cells. Similarly, no fusion was found upon coexpression of the PI2 HN and PI3 F proteins. However, coexpression of the PI3 F and HN proteins resulted in extensive cell fusion, which resembled the PI2 coexpression result. These results indicate that under the conditions used, the F protein is unable to cause fusion by itself and the HN protein provides a specific function in cell fusion which cannot be provided by another paramyxovirus attachment protein. Further, the results suggest that a type-specific functional interaction between the F and HN proteins is involved in mediating cell fusion.

Animals↗

Evaluation of attenuation, immunogenicity and efficacy of a bovine parainfluenza virus type 3 (PIV-3) vaccine and a recombinant chimeric bovine/human PIV-3 vaccine vector in rhesus monkeys.

Restricted replication in the respiratory tract of rhesus monkeys is an intrinsic property of bovine parainfluenza virus type 3 (bPIV-3) strains. This host range phenotype of bPIV-3 has been utilized as a marker to evaluate the attenuation of bPIV-3 vaccines for human use. Two safety, immunogenicity and efficacy studies in primates evaluated and compared three human parainfluenza virus type 3 (hPIV-3) vaccine candidates: biologically derived bPIV-3, a plasmid-derived bPIV-3 (r-bPIV-3) and a chimeric bovine/human PIV-3 (b/hPIV-3). These studies also examined the feasibility of substituting Vero cells, cultured in the presence or absence of foetal bovine serum, for foetal rhesus lung-2 (FRhL-2) cells as the tissue culture substrate for the production of bPIV-3 vaccine. The results demonstrated that (i) Vero cell-produced bPIV-3 was as attenuated, immunogenic and efficacious as bPIV-3 vaccine grown in FRhL-2 cells, (ii) plasmid-derived bPIV-3 was as attenuated, immunogenic and efficacious as the biologically derived bPIV-3 and (iii) the b/hPIV-3 chimera displayed an intermediate attenuation phenotype and protected animals completely from hPIV-3 challenge. These results support the use of bPIV-3 vaccines propagated in Vero cells in human clinical trials and the use of b/hPIV-3 as a virus vaccine vector to express foreign viral antigens.

Animals↗

Parainfluenza virus infection among adults hospitalized for lower respiratory tract infection.

To better define the contribution of human parainfluenza viruses (HPIVs) to lower respiratory tract infection in adults, we tested acute- and convalescent-phase serum specimens from hospitalized adults participating in a population-based prospective study of lower respiratory tract infection during 1991-1992. We tested all available specimens from the epidemic seasons for each virus and approximately 300 randomly selected specimens from the corresponding off-seasons for antibodies to HPIV-1, HPIV-2, or HPIV-3. During the respective epidemic season, HPIV-1 infection was detected in 18 (2.5%) of 721 and HPIV-3 infection in 22 (3.1%) of 705 patients with lower respiratory tract infection. Only 2 (0.2%) of 1,057 patients tested positive for HPIV-2 infection. No HPIV-1 infections and only 2 (0.7% of 281 patients tested) HPIV-3 infections were detected during the off-seasons. HPIV-1 and HPIV-3 were among the four most frequently identified infections associated with lower respiratory tract infection during their respective outbreak seasons.

Adult↗