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Monoclonal antibodies to the VP6 of porcine subgroup I rotaviruses reactive with subgroup I and non-subgroup I non-subgroup II strains.

A panel of 10 monoclonal antibodies produced after immunization with two porcine subgroup I rotavirus strains (OSU and A46), and directed against the major inner capsid protein (VP6), fell into six patterns of reactivity when tested against a collection of human and animal group A rotavirus strains. Monoclonal antibodies of pattern I recognized all rotavirus strains. Antibodies of patterns 2 and 3 recognized all subgroup II strains and some, but not all, subgroup I strains. Pattern 4 antibodies identified all subgroup I strains and two strains (H2, equine; CC117, porcine) not reactive with reference subgroup monoclonal antibodies (strains non-I non-II). Pattern 5 antibody exhibited the same reactivity as pattern 4 except for not recognizing the non-I non-II equine strain. Pattern 6 antibodies reacted exclusively with subgroup I and non-I non-II rotaviruses of porcine origin. By competitive binding assays, monoclonal antibodies of patterns 4, 5 and 6 appeared to recognize a single antigenic site, which included at least three overlapping epitopes. In immunoblots all monoclonal antibodies, except one, recognized only the trimeric, but not the monomeric form of VP6.

Animals

Sequence of the DNA-binding protein of a human subgroup E adenovirus (type 4): comparisons with subgroup A (type 12), subgroup B (type 7), and subgroup C (type 5).

The nucleotide sequence of the gene for the single-stranded DNA-binding protein of adenovirus type 4 (Ad4) has been determined. The gene codes for a protein of 512 amino acids. Comparison of the amino acid sequence with those previously determined for Ad5, Ad12, and Ad7 allowed identification of regions that are conserved between the four serotypes. These include stretches of 9, 9, and 12 amino acids in the carboxy-terminal domain of the protein; these sequences are similar to those identified in the single-stranded DNA-binding proteins of procaryotes as being important for interaction of the protein with single-stranded DNA. A conserved region of four amino acids in the amino-terminal domain is identical in sequence to a region of the SV40 large T antigen that has recently been implicated in the nuclear localization of the protein. Other conserved amino acids that may be important for the three-dimensional structure of the protein have also been identified. The overall homology between the DBPs of the four serotypes is 17.2% in the amino-terminal domain, 47.8% in the carboxy-terminal domain. Two-way comparisons between the DBPs of the four serotypes indicates that the DBP of Ad4 is most closely related to that of Ad7.

Adenoviruses, Human

An equine rotavirus (FI-14 strain) which bears both subgroup I and subgroup II specificities on its VP6.

An equinine rotavirus FI-14 strain, originally isolated from a diarrheic foal in New York state, was shown to belong to serotype 3 by neutralization assay. In addition, it was found to react with both subgroup I and subgroup II monoclonal antibodies by enzyme-linked immunosorbent assay (ELISA), thus representing the first rotavirus strain to exhibit both subgroup specificities. By using hybridoma technology, we successfully produced monoclonal antibodies directed against the major inner capsid protein VP6 (the sixth gene product) of FI-14 virus. Such monoclonal antibodies reacted specifically with either subgroup I or subgroup II rotaviruses thus demonstrating that the VP6 of FI-14 virus has both subgroup I- and subgroup II-specific epitopes. Four additional monoclones directed to the VP6 of FI-14 demonstrated distinct reactivities by ELISA with a panel of 49 rotavirus strains derived from 11 different animal and avian species. Thus, at least six distinct antigenic sites were shown to exist on VP6 of FI-14 virus. When these 49 rotavirus strains were arranged based on their reactivity patterns with the six representative monoclones, they fell into one of eight reactivity groups. Analysis of the reactivity patterns of rotaviruses derived from various animal species suggested that human rotaviruses may have two ancestral lineages: one (subgroup II, serotype 1, 3, and 4) with pig-human lineage, and the other (subgroup I, serotype 2) with bovine-simian-human lineage. When analyzed by radioimmunoprecipitation, the molecular weight of the FI-14 virus VP6 (subgroups I and II) appeared to be larger (approx 45K) than those (approx 42K) of rhesus monkey MMU18006 virus VP6 (subgroup I) or human Wa virus VP6 (subgroup II). By RNA-RNA hybridization analysis, the FI-14 virus was shown not to share significant homology with viruses belonging to the four known human rotavirus serotypes.

Animals

The respiratory syncytial virus subgroup B attachment glycoprotein: analysis of sequence, expression from a recombinant vector, and evaluation as an immunogen against homologous and heterologous subgroup virus challenge.

The attachment glycoprotein G of respiratory syncytial (RS) virus is important in both the antigenic and molecular diversity of the RS viruses. Previous work has shown that the glycoprotein G of a subgroup A RS virus expressed from a recombinant vaccinia virus provides significant protection against homologous but not heterologous subgroup virus challenge. We undertook the cDNA cloning and nucleotide sequencing of the G mRNA of a subgroup B RS virus (8/60) to extend molecular comparisons of the G protein both within and between subgroups. We also tested the ability of a subgroup B G protein to provide protection against challenge by A or B subgroup viruses. Sequence analysis showed a deduced amino acid sequence having a single major open reading frame encoding a protein of 292 amino acids with an elevated serine and threonine (30%) and proline (9%) content. The 8/60 G differed from a subgroup A virus (A2) G protein with only a 56% amino acid identity while the 8/60 G shared a 98% amino acid identity with the G protein of another subgroup B virus (18537). The 8/60 G cDNA was placed in a vaccinia virus vector (vvGB) which was shown to express the 8/60 G protein. Cotton rats immunized intradermally with vvGB and later challenged intranasally with 8/60 RS virus had a significant reduction in viral titers in the lungs relative to control animals whereas similarly immunized animals were not protected against heterologous subgroup challenge. Our results indicate that a RS virus subunit vaccine containing the G protein would require both A and B subgroup G proteins to afford protection against viruses of both subgroups.

Amino Acid Sequence

Genotypic selection following coinfection of cultured cells with subgroup 1 and subgroup 2 human rotaviruses.

The purpose of this study was to determine why identifiable reassortants between subgroup 1 and subgroup 2 rotaviruses have been so rarely isolated from human specimens. Cultured cells were coinfected with pairs of subgroup 1 and 2 human rotaviruses and passaged multiple times to simulate natural reassortant formation and selection in vivo. After coinfection of MA-104 cells with subgroup 1 (DS-1) and subgroup 2 (either Wa or P) strains, approximately 14% of the plaque-picked progeny were shown to be reassortants. During multiple passages of these coinfected cultures, however, complete (Wa virus coinfection) or nearly complete (P virus coinfection) loss of detectable DS-1 segments from progeny was observed. Thus, when all segments of the subgroup 2 viruses were present in coinfected cultures, these segments dominated in the selected progeny. Coinfection with subgroup 1-subgroup 2 rotavirus reassortants and the DS-1 strain followed by multiple passages, however, resulted in complete loss of some segments from the subgroup 2 strains originally present in the reassortants. Therefore, segments from the parental subgroup 2 viruses appeared to be selected in toto during multiple passages because they were dominant as a group, not because individual segments of these viruses were consistently favoured over their subgroup 1 virus counterparts.

Cell Line

Hematopoietic target cells of anemogenic subgroup C versus nonanemogenic subgroup A feline leukemia virus.

Feline leukemia viruses (FeLVs) belonging to interference subgroup C induce fatal anemia resembling human pure red cell aplasia (PRCA). Subgroup A FeLVs, although closely related genetically to FeLVs of subgroup C, do not induce PRCA. The determinants for PRCA induction by a molecularly cloned prototype subgroup C virus (FeLV-Sarma-C [FSC]) have been localized to the N-terminal 241 amino acids of the surface glycoprotein (SU) gp70. To investigate whether the anemogenic activity of FSC reflects a unique capacity to infect erythroid progenitor cells, we used correlative immunogold, immunofluorescence, and cytological staining to study prospectively the hemopoietic cell populations infected by either FSC or FeLV-FAIDS-61E-A (F6A), a prototype of subgroup A virus. The results demonstrated that although only FSC-infected animals developed erythrocyte aplasia, the env SU and the major core protein (p27) were expressed in a surprisingly large fraction of the lymphoid, erythroid, and myeloid lineage marrow cells in both FSC- and F6A-infected cats. Between days 8 and 17 postinoculation, gp70 and p27 were detected in 43 to 73% of erythroid, 25 to 75% of lymphoid, and 35 to 50% of myeloid lineage cells, regardless of whether the cats were infected with FSC or F6A. Thus, anemogenic subgroup C and nonanemogenic subgroup A FeLVs have similar hemopoietic cell tropism and infection kinetics, despite their divergent effects on erythroid progenitor cell function. Acute anemia induction by subgroup C FeLV, therefore, does not reflect a unique tropism for marrow erythroid cells but rather indicates a unique cytopathic effect of the SU on erythroid progenitor cells.

Animals

Expression of the chloramphenicol acetyl transferase gene in human cells under the control of early adenovirus subgroup C promoters: effect of E1A gene products from other subgroups on gene expression.

A hierarchy of dominance has been observed in HeLa cells co-infected with two serotypes of adenovirus belonging to different subgroups. DNA replication and late protein synthesis of one serotype are inhibited by those of the other. The degree of inhibitory effect has the following decreasing order: adenovirus type 3 (Ad3) and Ad7 (subgroup B), Ad9 (D), Ad4 (E), Ad12 (A), Ad2 and Ad5 (C) [Delsert and D'Halluin, Virus Res. 1 (1984) 365-380]. HeLa cells were first transfected with recombinant plasmids carrying Ad5 E2A or E3 promoters fused to the chloramphenicol acetyl transferase gene (cat), and then infected with human Ad belonging to different subgroups. All the serotypes tested were found to be able to stimulate both E2A and E3 promoters. When HeLa cells were co-transfected with either of the previous plasmids, plus a second plasmid carrying the Ad3 E1A region, the same stimulatory effect was observed. However, an inhibitory effect on Ad5 E2A and E3 promoters seemed to occur when both Ad2 E1A (subgroup C) and Ad3 E1A (subgroup B) genes were present together. To determine which one of the early products was responsible for the observed repression effect, and to assign the target on the genome of subgroup C Ad, a plasmid was constructed in which the sequences at the 5' end of the Ad2 E1A region were fused to the structural sequences of the cat gene. In HeLa cells transfected with this plasmid, CAT activity was significantly increased after co-transfection with a plasmid carrying the Ad2 E1A region, but decreased with a plasmid carrying the Ad3 E1A region.(ABSTRACT TRUNCATED AT 250 WORDS)

Acetyltransferases

Enterotoxigenic strains of Escherichia coli O128 are not restricted to subgroup ac but also belong to subgroups ab and abc.

Ninety strains of Escherichia coli O128 isolated in many different countries were examined. The majority (77 strains) belonged to the antigenic subgroup O128ab, and 41 of these strains produced heat-stable enterotoxin (ST), heat-labile enterotoxin (LT), or both. Eight strains were of the antigenic subgroup O128ac; six produced ST only, and two were nontoxigenic. Five strains were of the antigenic subgroup O128abc; two produced ST and LT, and three were nontoxigenic. Ten of the strains studied produced Vero cytotoxin, and all belonged to the antigenic subgroup O128ab. It was concluded that, contrary to the report of Guth et al. (B. E. C. Guth, M. L. M. Silva, I. C. A. Scaletsky, M. R. F. Toledo, and L. R. Trabulsi, Infect. Immun. 47:338-340, 1985), enterotoxigenic strains of E. coli O128 are not restricted to subgroup ac but also belong to the most common subgroup, ab.

Antigens, Bacterial

Characterization of rotavirus subgroup-specific monoclonal antibodies and use in single-sandwich ELISA systems for rapid subgrouping of human strains.

Two subgroup-specific monoclonal antibodies (MAb) raised in mice against group A human rotavirus were shown to react by immunoblotting with the trimeric form of VP6 of the homologous subgroup and successfully applied to development of new single-sandwich ELISA systems for rapid subgrouping of human strains. All of the 344 strains tested could be subgrouped, but for two of them prior propagation in cell cultures was required.

Antibodies, Monoclonal

Production of subgroup-specific monoclonal antibodies against human rotaviruses and their application to an enzyme-linked immunosorbent assay for subgroup determination.

Nonneutralizing monoclonal antibodies were prepared against two strains, S2 and YO, of human rotaviruses isolated in cell culture. S2-37 and YO-5 antibodies had subgroup I and subgroup II specificities, respectively. The remaining antibodies (S2-65, YO-71, YO-89, and YO-156) reacted commonly with all the rotaviruses examined. All of the monoclonal antibodies agglutinated exclusively single-shelled particles and immunoprecipitated 42,000-dalton protein, a major component of inner capsid. Using the three monoclonal antibodies (S2-37, YO-5, and YO-156), an enzyme-linked immunosorbent assay was developed for detecting and subgrouping human rotavirus isolates.

Antibodies, Monoclonal

Pear blister canker viroid is a member of the apple scar skin subgroup (apscaviroids) and also has sequence homology with viroids from other subgroups.

The sequence of pear blister canker viroid (PBCVd), the putative causal agent of pear blister canker (PBC) disease, has been determined. PBCVd consists of a single-stranded circular RNA of 315 nucleotide residues which assumes a branched conformation when it is folded in the model of lowest free energy. PBCVd has highest sequence similarity with grapevine 1B viroid (52.4%), but also contains sequences related to regions present in viroids that belong to different subgroups, suggesting that PBCVd could have developed from RNA recombination between viroids replicating in a common host plant. PBCVd contains almost the entire central sequence which is conserved in the members of the apple scar skin subgroup (apscaviroids) as well as a conserved sequence located in the left-terminal region of apscaviroids and pospiviroids (whose type member is potato spindle tuber viroid). A consensus phylogenetic tree has been obtained in which PBCVd and other viroids previously classified as apscaviroids appear closely related, allowing consideration of PBCVd as a new member of this subgroup.

Base Sequence

Genetic analysis of a human rotavirus that belongs to subgroup I but has an RNA pattern typical of subgroup II human rotaviruses.

We have previously found (O. Nakagomi, T. Nakagomi, H. Oyamada, and T. Suto, J. Med. Virol. 17:29-34, 1985), during an epidemiological study in Japan, a novel human rotavirus that belongs to subgroup I but has a long RNA pattern typical of subgroup II human rotaviruses. From the stool specimen containing this virus, we successfully isolated in MA104 cells a rotavirus, designated AU-1, which possesses these novel characteristics. The possibility that strain AU-1 was a laboratory contaminant of an animal rotavirus previously adapted to tissue culture cells was ruled out, and the identity of the AU-1 strain was established. Genetic analysis by RNA-RNA hybridization revealed that the AU-1 strain is not a simple reassortant between subgroup I and II human rotaviruses but that it shares a high level of sequence homology only with the gene encoding VP7 (the major neutralization protein) of serotype 3 human rotaviruses. Weak homology of the genomic RNA segments was also observed between the AU-1 strain and animal rotavirus strains, including rhesus rotavirus strain RRV and bovine rotavirus strain NCDV. These results suggest that the AU-1 strain may be an animal rotavirus that infected a human.

Animals

Genetic control of resistance to subgroup A and subgroup C tumour viruses in Rhode Island Red fowl: evidence for linkage between the tumour virus a (tva) and tumour virus c (tvc) loci.

A study, using the Rhode Island Red (RIR) strain of fowl maintained at Houghton Poultry Research Station, was made to investigate the genetic control of cellular response to infection with viruses of subgroups A and C. Family matings within the RIR strain and test-crosses between the RIR parents and White Leghorn (WL) parents of known ararcrcr genotype were set up to ascertain linkage between the tumour virus a (tva) and tumour virus c (tvc) loci. The results confirmed that in this RIR strain, the two loci, tva and tvc, control the cellular response to viruses of subgroups A and C, respectively, as reported in other breeds of fowl (WL and New Hampshire). As in WL fowl, the two loci are linked. The linkage value of 0-22 in the male sex agreed well with that reported in the WL male sex, indicating that the two loci are located in the same sites in homologous chromosomes in the two breeds. However, in the RIR strain, no sex difference in crossing over between the two linked loci was found, contrary to that reported in WL fowl where the absence of crossing over between the two loci was observed in the heterogametic female sex.

Animals

Nucleotide sequences of a feline leukemia virus subgroup A envelope gene and long terminal repeat and evidence for the recombinational origin of subgroup B viruses.

Molecular clones of the subgroup A feline leukemia virus FeLV-A/Glasgow-1 have been obtained. Nucleotide sequence analysis of the 3' end of the proviral genome and comparison with the published sequence of FeLV-B/Gardner-Arnstein showed that the most extensive differences are located within the 5' domain of the env gene. Within this domain, several divergent regions of env are separated by more conserved segments. The 3' end of env is highly conserved, with only a single amino acid coding difference in p15env. The proviral long terminal repeats are also highly conserved, differing by only eight base substitutions and one base insertion. Specific probes constructed from the FeLV-A or FeLV-B env genes were used to compare the env genes of various exogenous FeLV isolates and the endogenous FeLV-related proviruses of normal cat DNA. An FeLV-A-derived env probe showed no hybridization to normal cat DNA but detected all FeLV-A and FeLV-C isolates tested. In contrast, an FeLV-B env probe detected independent FeLV-B isolates and a family of endogenous FeLV-related proviruses. Our observations provide strong evidence to support the hypothesis that FeLV-B viruses have arisen by recombination between FeLV-A and endogenous proviral elements in cat DNA.

Antigens, Viral

The role of the two E1a mRNA products of subgroup B adenoviruses in the regulation of early promoters of subgroup C adenoviruses.

HeLa cells were co-transfected with recombinant plasmids carrying adenovirus (Ad)2 or Ad3 E1a promoters fused to the chloramphenicol acetyl transferase gene (cat), and a plasmid encoding the Ad3 E1a promoter. Whereas no stimulating effect was observed on the Ad3 E1a promoter, the Ad2 promoter was inhibited. To determine which of the E1a gene products of Ad3 was responsible for the repressive effect, plasmids were constructed in which only the 13S or 12S mRNA product of Ad3 was expressed. Both the 12S and 13S mRNA products of Ad3 E1a were found to depress the transcription from the Ad2 E1a promoter. Each Ad3 E1a gene product was able to stimulate transcription from the Ad5 E2a early promoter in a manner similar to that of the Ad2 E1a gene products. In the case of the Ad5 E3 promoter, neither of the Ad3 E1a gene products stimulated transcription, but an inhibition was observed. These results suggest that both mRNA products of the Ad3 E1a region inhibit transcription at the TATA box transcription complex.

Adenovirus Early Proteins