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Biomedical subjects

R M Chanock

Publications and source records attributed to R M Chanock.

At least 127 records · Page 7Linked to original sources

Reassortant virus derived from avian and human influenza A viruses is attenuated and immunogenic in monkeys.

An influenza A reassortant virus that contained the hemagglutinin and neuraminidase genes of a virulent human virus, A/Udorn/72 (H3N2), and the six other influenza A virus genome segments from an avirulent avian virus, A/Mallard/New York/6750/78 (H2N2), was evaluated for its level of replication is squirrel monkeys and hamsters. In monkeys, the reassortant virus was as attenuated and as restricted in its level of replication in the upper and lower respiratory tract as its avian influenza virus parent. Nonetheless, infection with the reassortant induced significant resistant to challenge with virulent human influenza virus. In hamsters, the reassortant virus replicated to a level intermediate between that of its parents. These findings suggest that the nonsurface antigen genes of the avian parental virus are the primary determinants of restriction of replication of the reassortant virus in monkeys. Attenuation of the reassortant virus for primates is achieved by inefficient functioning of the avian influenza genes in primate cells, while antigenic specificity of the human influenza virus is provided by the neuraminidase and hemagglutinin genes derived from the human virus. This approach could lead to the development of a live influenza A virus vaccine that is attenuated for man if the avian influenza genes are similarly restricted in human cells.

Animals↗

Evaluation of a phenotypic revertant of the A/Alaska/77-ts-1A2 reassortant virus in hamsters and in seronegative adult volunteers: further evidence that the temperature-sensitive phenotype is responsible for attenuation of ts-1A2 reassortant viruses.

In a previous study, a seronegative child to whom attenuated A/Alaska/77-ts-1A2 virus was administered (37 degrees C shutoff temperature for plaque formation) shed virus with an altered temperature-sensitive (ts) phenotype (40 degrees C shutoff temperature) (Murphy et al., Ann. N.Y. Acad. Sci. 354:172-182, 1980; Tolpin et al., Virology 112:505-517, 1981). This ts+ virus (FV1319) was evaluated for its level of replication in hamsters and for its virulence for humans. In hamsters, FV1319 ts+ virus replicated to the same level in the nasal turbinates as that of which the A/Alaska/77 wild-type virus replicated, but its replication in the lungs was reduced 40-fold. In contrast, the A/Alaska/77-ts-1A2 reassortant achieved a titer in hamster nasal turbinates that was significantly lower (P less than 0.005) than those achieved by the wild-type and the FV1319 viruses; the A/Alaska/77-ts-1A2 reassortant was not recoverable from the lungs. In seronegative adult volunteers, the pattern of replication of the FV1319 virus was similar to that of the A/Alaska/77 wild-type virus. The illness induced by the FV1319 ts+ virus was also similar to that caused by the wild-type virus. In contrast, the A/Alaska/77-ts-1A2 reassortant was satisfactorily attenuated in adult volunteers. These results suggest that attenuation of the A/Alaska/77-ts-1A2 reassortant virus in humans is a function of the ts phenotype: loss of this phenotype restored virulence. The ability of the A/Alaska/77-ts-1A2 reassortant to lose its ts phenotype and regain virulence during growth in a permissive host limits the usefulness of the ts-1A2 reassortants as vaccine viruses for humans.

Animals↗

Secretory and systemic immunological response in children infected with live attenuated influenza A virus vaccines.

An enzyme-linked immunosorbent assay was used to measure isotype-specific antibody to purified hemagglutinin (HA) of influenza A virus, using serum and nasal-wash specimens from young children undergoing primary infection with live cold-adapted influenza A/Alaska/77 (H3N2) or A/Hong Kong/77 (H1N1) candidate vaccine virus. The serum antibody response followed the pattern expected for a primary viral infection. Each of 17 vaccinated children had a serum immunoglobulin G (IgG) HA antibody response, 16 had an IgM antibody response, and 13 had an IgA antibody response. Nasal-wash HA antibody was detected in the IgA, IgM, and IgG isotypes. Of the 17 vaccinated children, 14 had an IgA response, 13 had an IgM response, and 9 had an IgG response. Most of the IgA and IgM HA antibody was actively secreted locally, whereas only some of the IgG HA antibody could be shown to be actively secreted into the respiratory tract. There was a good correlation between the level of nasal-wash antibodies measured by the HA-specific IgA enzyme-linked immunosorbent assay and by a plaque neutralization assay. These data indicate that intranasal vaccination of susceptible children with live, attenuated, cold-adapted influenza A viruses efficiently stimulates both systemic and local antibody responses.

Antibody Formation↗

Definition of human rotavirus serotypes by plaque reduction assay.

Twenty different human rotavirus reassortants were characterized serologically by a plaque reduction assay as belonging to one of three distinct serotypes. Fourteen were similar if not identical to our prototype Wa strain; two were like the prototype DS-1 strain, and four belonged to a third serotype for which a prototype has not yet been selected. Hyperimmune sera raised against the three serotypes were required to distinguish among them, since postinfection sera had lower titers and were more cross-reactive than hyperimmune sera. These results confirmed the ability of a qualitative cytopathic neutralization test to predict correctly the Wa or DS-1 serotype. A strain of rhesus rotavirus (MMU 18006) was identified as belonging to the newly defined third serotype. Finally, an attempt was made to correlate previously published serotype analysis by neutralization of fluorescent cell-forming units with the results determined by the plaque reduction neutralization assay.

Cross Reactions↗

Production and level of genetic stability of an influenza A virus temperature-sensitive mutant containing two genes with ts mutations.

Temperature-sensitive (ts) reassortant vaccine strains derived from the A/Udorn/72 ts-1A2 donor virus were not sufficiently stable genetically in humans. We therefore sought to produce a new, more stable donor virus. We had previously identified a stable ts virus with a ts P3 gene and in the current study identified another relatively stable single-lesion ts virus with a ts mutation in the NP gene. A new ts reassortant virus was constructed by mating these two single mutants and by isolating three reassortant progeny, clones 20, 53, and 55, that contained both a ts P3 and a ts NP gene. These reassortant progeny possessed a 37 to 38 degrees C shutoff temperature and were as restricted in their replication in hamster lungs as the A/Udorn/72 ts-1A2 virus. All isolates from the lungs and nasal turbinates of hamsters were temperature sensitive. An in vitro stress test was used to determine whether the new ts P3 ts NP reassortant virus would undergo loss of its ts phenotype after replication at semipermissive temperature. Clone 20 and 55 reassortants underwent progressive loss of their ts phenotype in vitro, although at a rate slightly less than that of the A/Udorn/72 ts-1A2 virus. The level of genetic stability after replication in vivo was assessed in cyclophosphamide-treated hamsters in which virus replication continued for up to 15 days. Again, both the A/Udorn/72 ts-1A2 and the new ts P3 ts NP reassortant clone 55 manifested a progressive loss of temperature sensitivity after 7 days of replication. Clone 55 virus lost temperature sensitivity significantly less rapidly than the A/Udorn/72 ts-1A2 virus. These results indicated that, although the new ts P3 ts NP reassortant virus was more stable than the A/Udorn/72 ts-1A2 virus, it nevertheless underwent progressive loss of temperature sensitivity after replication in vitro and in vivo. Therefore, it does not appear to be a satisfactory donor virus. This experience plus that gained earlier with other ts mutants of influenza A virus suggest that influenza A virus mutants that rely solely upon their ts phenotype for attenuation are unlikely to exhibit the phenotypic stability required of a vaccine virus. Other genetic techniques are needed to produce more stable influenza A virus strains.

Animals↗

Respiratory syncytial virus infection in cyclophosphamide-treated cotton rats.

Cotton rats infected intranasally with respiratory syncytial virus and immunosuppressed with cyclophosphamide shed virus for at least 7 weeks. Dissemination of virus beyond the respiratory tract was observed. In contrast, virus was recovered from infected, non-immunosuppressed rats for only 1 week, and only from the respiratory tract.

Animals↗

Administration of a highly attenuated, live respiratory syncytial virus vaccine to adults and children.

A highly attenuated respiratory syncytial virus (RSV) experimental vaccine, RSV ts-2, was sequentially evaluated in adults, seropositive children, and finally, fully susceptible seronegative children. The vaccine was administered intranasally in doses ranging from 10(5.2) to 10(6.3) PFU/ml. In both adults and children, the vaccine proved to be poorly infectious. Although poor infectivity would not have been predicted from tissue culture studies of RSV ts-2 growth, the human experience closely parallels the experience in a series of animal models, including the chimpanzee. The poor infectivity of this RSV vaccine virus preparation suggests that the postulated defect in the RSV ts-2 fusion protein may be important in determining in vivo infectivity of RSV.

Adult↗

Genetic relatedness among human rotaviruses as determined by RNA hybridization.

Viral RNAs from human rotaviruses were compared by gel electrophoresis and by hybridization to probes prepared by in vitro transcription of two well-characterized laboratory strains (Wa and DS-1). Also, the viral RNAs were compared by hybridization to probes prepared from three of the test viruses. Thirteen specimens (diarrheal stools) were obtained from infants and children 5 to 21 months old on a single day at the emergency ward of the Caracas Children's Hospital, and an additional specimen was obtained from the same hospital 6 months before. When the electrophoresed viral RNAs were stained with ethidium bromide and examined by UV light, five different migration patterns (electropherotypes) were distinguished on the basis of differences in mobility of the RNA segments. The hybridization technique that was employed permitted only qualitative comparisons of corresponding genes of different human rotaviruses. Ten of the specimens contained enough virus to yield sufficient RNA for hybridization studies. Eight of the viruses studied by hybridization contained 4 to 11 genes that reacted specifically with the Wa probe to yield double-stranded RNA segments with a mobility similar to that of Wa viral RNA or test virus RNA. The other two viruses contained 11 genes that reacted specifically with the DS-1 hybridization probe to yield double-stranded RNA segments with a mobility similar to DS-1 viral RNA or test virus RNA. A more complex picture emerged when hybridization probes were prepared from three of the test viruses and used to compare the different electropherotypes. Corresponding genes that exhibited similar migration did not necessarily exhibit homology when studied by hybridization. Also, some corresponding genes that exhibited homology did not have the same mobility by gel electrophoresis.

Child, Preschool↗

Virulence of avian influenza A viruses for squirrel monkeys.

Ten serologically distinct avian influenza A viruses were administered to squirrel monkeys and hamsters to compare their replication and virulence with those of human influenza A virus, A/Udorn/307/72 (H3N2). In squirrel monkeys, the 10 avian influenza A viruses exhibited a spectrum of replication and virulence. The levels of virus replication and clinical response were closely correlated. Two viruses, A/Mallard/NY/6874/78 (H3N2) and A/Pintail/Alb/121/79 (H7N8), resembled the human virus in their level and duration of replication and in their virulence. At the other end of the spectrum, five avian viruses were restricted by 100- to 10,000-fold in replication in the upper and lower respiratory tract and were clearly attenuated compared with the human influenza virus. In hamsters, the 10 viruses exhibited a spectrum of replication in the nasal turbinates, ranging from viruses that replicated as efficiently as the human virus to those that were 8,000- fold restricted. Since several avian viruses were closely related serologically to human influenza viruses, studies were done to confirm the avian nature of these isolates. Each of the avian viruses plaqued efficiently at 42 degrees C, a restrictive temperature for replication of human influenza A viruses. Avian strains that had replicated either very efficiently or very poorly in squirrel monkeys still grew to high titer in the intestinal tracts of ducks, a tropism characteristic of avian, but not mammalian, influenza viruses. These observations indicate that some avian influenza A viruses grow well and cause disease in a primate host, whereas other avian viruses are very restricted in this host. These findings also provide a basis for determining the gene or genes involved in the restriction of replication that is observed with the attenuated avian viruses. Application of such information may allow the preparation of reassortant viruses derived from a virulent human influenza virus and an attenuated avian virus for possible use in a live attenuated vaccine for prevention of influenza in humans.

Animals↗

In vitro transcription of two human rotaviruses.

The RNA polymerase activities of a cultivatable (Wa) and a noncultivatable (DS-1) strain of human rotavirus were studied. Under optimal conditions, transcription of all of their RNA segments occurred, as evidenced by the hybridization of labeled transcripts to genomic RNA. Cross-hybridization between the two viruses showed that none of their 11 genes were completely homologous. The transcription products could be translated in vitro, yielding proteins with an electrophoretic pattern resembling that obtained with proteins labeled in vivo during infection with the Wa virus.

Cell-Free System↗