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Biomedical subjects

L Coggins

Publications and source records attributed to L Coggins.

At least 19 recordsLinked to original sources

Production and characterization of a monoclonal antibody recognizing a cytoplasmic antigen of equine mononuclear phagocytes.

An IgG1 mouse monoclonal antibody, designated 1.646, is described which recognizes a cytoplasmic antigen of equine mononuclear phagocytes. Indirect fluorescent antibody staining of peripheral blood leukocytes reveals a granular cytoplasmic staining, predominantly in adherent blood mononuclear cells. Indirect fluorescent antibody staining is positive for alveolar and peritoneal macrophages. In some horses, a few neutrophils are also stained. In equine tissue samples stained by immunohistochemistry, the distribution of positive cells is consistent with the distribution of tissue macrophages. The most intense and reliable staining occurs with splenic and lymph node macrophages. Hepatic Kupffer cells also stain with antibody 1.646, although the intensity of that staining is somewhat variable between horses. A granular pattern of staining typical of lipofuscin deposition is also seen in liver sections. There is also pale staining of some biliary and renal tubular epithelium. Equine erythrocytes, platelets and lymphocytes are not recognized by this antibody, and neither are monocyte/macrophages of human, canine or feline origin. Antibody 1.646 recognizes two proteins (150 and 30 kDa) of equine monocyte-derived macrophages when assayed by Western immunoblot. Because of the distribution of staining (tissue mononuclear phagocytes, lipofuscin-containing storage granules, biliary and renal tubular epithelium, and some neutrophils) we hypothesize that antibody 1.646 recognizes a cytoplasmic antigen that is closely associated with lysosomal membranes.

Animals↗

Wild-type equine infectious anemia virus replicates in vivo predominantly in tissue macrophages, not in peripheral blood monocytes.

In situ hybridization of tissues from two horses infected with the wild-type Wyoming strain of equine infectious anemia virus (EIAV) identified the liver, spleen, lymph nodes, kidney, lung, and adrenal gland as the primary host tissue sites for viral transcription during acute infection. Combined immunohistochemistry, with a monoclonal antibody recognizing a cytoplasmic antigen of equine mononuclear phagocytes, and in situ hybridization for viral RNA identified most infected cells as mature tissue macrophages. In contrast, in situ hybridization of adherent peripheral blood mononuclear cells collected from horses on various days during the first 2 weeks postinfection with the Wyoming strain of EIAV failed to detect any viral RNA in these cells. For the two horses described here, serum reverse transcriptase activity correlated directly with the degree of replication detected in tissue macrophages on the day of sacrifice. These results suggest that unlike other lentivirus infections in which mature tissue macrophages accumulate cytoplasmic viral RNA to a high level but fail to produce infectious virions, mature tissue macrophages are the likely primary source of the high titer of viremia present during acute infection with EIAV. No significant posttranscriptional block of viral replication in tissue macrophages appears to occur with EIAV.

Animals↗

The surface envelope protein gene region of equine infectious anemia virus is not an important determinant of tropism in vitro.

Virulent, wild-type equine infectious anemia virus (EIAV) is restricted in one or more early steps in replication in equine skin fibroblast cells compared with cell culture-adapted virus, which is fully competent for replication in this cell type. We compared the sequences of wild-type EIAV and a full-length infectious proviral clone of the cell culture-adapted EIAV and found that the genomes were relatively well conserved with the exception of the envelope gene region, which showed extensive sequence differences. We therefore constructed several wild-type and cell culture-adapted virus chimeras to examine the role of the envelope gene in replication in different cell types in vitro. Unlike wild-type virus, which is restricted by an early event(s) for replication in equine dermis cells, the wild-type outer envelope gene chimeras are replication competent in this cell type. We conclude that even though there are extensive sequence differences between wild-type and cell culture-adapted viruses in the surface envelope gene region, this domain is not a determinant of the differing in vitro cell tropisms.

Animals↗

Immune-mediated thrombocytopenia in horses infected with equine infectious anemia virus.

An adult horse infected with a virulent, cell culture-adapted strain of equine infectious anemia virus (EIAV) developed cyclical thrombocytopenia in which the nadir of platelet counts coincided with peak febrile responses. In order to investigate the mechanism of thrombocytopenia during acute febrile episodes, four adult horses were experimentally infected with the wild-type Wyoming strain of EIAV. Platelet counts decreased from baseline as rectal temperature increased. Serum reverse transcriptase activity increased above background levels in all horses, coincident with increase in rectal temperature. All horses developed an EIAV-specific immune response detectable by Western immunoblot by postinfection day 10. Increases in platelet-associated immunoglobulins G and M were detectable by direct fluorescent-antibody test and flow cytometric assay. Viral replication in bone marrow megakaryocytes was not detectable by in situ hybridization. Results suggest an immune-mediated mechanism of thrombocytopenia in horses infected with EIAV. Despite an inability to identify virion particles in association with platelet-bound antibody, the cyclical nature of the thrombocytopenia and the occurrence of a marked cell-free viremia concomitant with fever and thrombocytopenia suggest immune complex deposition on platelets. We propose that clearance of virus and antibody-coated platelets from the peripheral circulation by hepatic Kupffer cells and splenic macrophages may target infectious virus particles, in the form of immune complexes, to host cells most permissive for in vivo viral replication.

Animals↗

Distribution of equine infectious anemia in equids in southeastern United States.

State veterinarians in 11 southeastern states completed a questionnaire designed to determine the proportion of equids in the region that were seropositive for equine infectious anemia (EIA). Cases of EIA were diagnosed in each of the states surveyed. Distinct geographic clusters of cases were apparent in Tennessee and Kentucky adjacent to the Mississippi River, in the Piedmont of North Carolina at the Virginia border, in north central Georgia, and throughout the Florida peninsula. It is suggested that the national EIA program could be improved by standardization and wider application of uniform active surveillance measures, and improved documentation of EIA status of horses on acquisition and transfer records.

Animals↗

Characterisation of an extrachromosomal DNA element from Theileria annulata.

Extrachromosomal nucleic acid elements are found in all organisms, commonly as organelle, viral or plasmid genomes. In this paper we describe the initial characterisation of a novel 6.5-kb linear, double-stranded extrachromosomal element from Theileria annulata, and a 2.6-kb RNA species. The DNA element is present in different stages of the life cycle and in different stocks of the parasite. Northern blots of total RNA isolated from different stages of the parasite, probed with the purified element, detect three major transcripts, of 1.45, 1.05 and 0.24 kb, present in all life-cycle stages examined. The possible origin and function of this element is discussed, together with its possible use as a transfection vector for the introduction of genes into protozoan cells.

Animals↗

Equine infectious anemia virus derived from a molecular clone persistently infects horses.

A full-length molecular clone of equine infectious anemia virus (EIAV) was isolated from a persistently infected canine fetal thymus cell line (Cf2Th). Upon transfection of equine dermis cells, the clone, designated CL22, yielded infectious EIAV particles (CL22-V) that replicated in vitro in both Cf2Th cells and an equine dermis cell strain. Horses infected with CL22-V developed an antibody response to viral proteins and possessed viral DNA in peripheral blood mononuclear cells, as determined by polymerase chain reaction assays. In addition, horses infected with CL22-V became persistently infected and were capable of transmitting the infection by transfer of whole blood to uninfected horses. However, CL22-V, like the parental canine cell-adapted virus, did not cause clinical signs in infected horses. Reverse transcriptase assays of CL22-V- and virulent EIAV-infected equine mononuclear cell cultures indicated that the lack of virulence of CL22-V was not due to an inability to infect and replicate in equine mononuclear cells in vitro.

Animals↗

Gene amplification: the Chinese hamster glutamine synthetase gene.

The glutamine analogue, methionine sulphoximine, has been used to develop Chinese hamster ovary cell lines which overproduce the enzyme glutamine synthetase. Southern and Northern blot hybridization studies showed that this overproduction is due to gene amplification of a region of DNA containing the glutamine synthesis gene coding sequences, with a corresponding increase in glutamine synthetase mRNA and protein. This amplification has increased the glutamine synthetase gene copy number to approximately 1000 copies per cell. Genomic DNA sequences from the amplified region have been cloned and the structure of the glutamine synthetase gene within this region is being analysed.

Animals↗

Rectal transmission of bovine leukemia virus in cattle and sheep.

Bovine leukemia virus (BLV) was transmitted by rectal inoculation of BLV-infective whole blood into cattle and sheep. Two cows and 2 sheep each were given 500 ml and 50 ml of blood, respectively, by rectal infusion. Two sheep which served as positive controls each were given 1 ml of the same blood, IV. All animals became seropositive to BLV by postinoculation week 5. Although relatively large volumes of blood were used for rectal inoculation, a base line for infectivity was established for the rectal route.

Animals↗

Equine herpesvirus type 2: cell-virus relationship during persistent cell-associated viremia.

Some aspects of the biology of equine herpesvirus type 2 (EHV-2) were investigated by examination of the persistent cell-associated viremia stage of the infection. The EHV-2 infection of leukocytes was latent, because free virus was not retrieved without first cultivating harvested leukocytes in vitro. A virus infective center (IC) assay was developed to enumerate latently infected cells in the leukocyte population. This assay proved to be simple and reproducible and revealed a linear relationship between IC plaques formed and the number of cells inoculated, except where large numbers of cells (greater than 4 X 10(6)) were inoculated per 10 cm2 dish. This reduction at high cell densities of IC/10(6) cells inoculated was dependent on cells obtained from an EHV-2-infected horse. There was considerable variation in the numbers of IC/10(6) leukocytes harvested from different horses, but little variation in the harvests from the same horse at different times. There seemed to be a direct relationship between serum-neutralization titers and IC numbers. Transfer of viable infected leukocytes to 2 fetuses failed to establish EHV-2 infection. Infection of equine fetal kidney cells with EHV-2 virus failed to produce detectable Fc receptors on the cell surface.

Animals↗

Carriers of equine infectious anemia virus.

Presently available data continue to support the idea that once a horse is infected with equine infectious anemia virus it remains infected indefinitely. Infection may not always be demonstrated by inoculation of plasma, serum, or whole blood transfusions into susceptible recipients, but transfusions of fresh whole blood will be infective in at least 95% of the horses testing positive in the agar gel immunodiffusion test. For detection of infectivity in a small percentage of inapparent carriers, it appears necessary to inoculate washed leukocytes collected over a period of time.

Animals↗

Comparison of myeloproliferative sarcoma virus with Moloney murine sarcoma virus variants by nucleotide sequencing and heteroduplex analysis.

The myeloproliferative sarcoma virus (MPSV) was derived by passage of Moloney sarcoma virus (Mo-MuSV) in adult mice. Mo-MuSV variants transform fibroblasts. However, MPSV also affects erythroid, myeloid, and hematopoietic stem cells. The MPSV proviral genome, two temperature-sensitive mutants derived from it, Mo-MuSV variant M1, and Moloney murine leukemia virus (Mo-MuLV) were compared by heteroduplex mapping. MPSV wild type was found to have 1 kilobase pair deleted from the pol gene and to contain v-mos-related sequences. The 3' end of MPSV, including the oncogene-helper junctions, the v-mos gene, and the 3' long terminal repeat, was sequenced and compared with sequences of Mo-MuLV, MSV-124, and the mouse oncogene c-mos. From these data, MPSV appears to be either closely related to the original Mo-MuSV or an independent recombinant of Mo-MuLV and c-mos. Five possible explanations of the altered specificity of MPSV are considered. (i) The MPSV mos protein has properties inherent in c-mos but lost by other Mo-MuSV mos proteins. (ii) The MPSV mos protein has altered characteristics due to amino acid changes. (iii) Due to a frameshift, MPSV codes for a mos protein truncated at the amino terminal and also a novel peptide. (iv) A second novel peptide may be encoded from the 3' env region. (v) MPSV has long terminal repeats and an enhancer sequence more like Mo-MuLV than Mo-MuSV, with a consequently altered target cell specificity.

Animals↗

Live temperature-sensitive equine influenza virus vaccine: generation of the virus and efficacy in hamsters.

Temperature-sensitive (ts) reassortants of an equine influenza virus, subtype A-1, were produced by mating a human influenza ts donor virus with an equine influenza A/Cornell/16/74 wild-type virus and by isolating a ts reassortant virus possessing the equine hemagglutinin and neuraminidase surface antigens. Two equine its reassortant clones, 8B1 and 71A1, were produced which had an in vitro shutoff temperature for plaque formation of 38 and 37 C, respectively. The human ts donor virus had ts mutation(s) on the polymerase 3 (P3) and nucleoprotein genes so that a ts equine reassortant virus could have either or both of these ts genes. It was found by complementation analysis that reassortant clone 8B1 had a ts lesion on the P3 gene and clone 71A1 had ts lesions on the nucleoprotein and P3 genes. An analysis of the parental origin of the genes in each ts equine reassortant virus indicated that clone 8B1 received 6 of its 8 genes and clone 71A1, 3 of its 8 from the equine parent virus, the remainder genes being from the human ts donor virus. The growth of both clones was restricted in the lungs of hamsters, but similar to that of the equine wild-type virus in the nasal turbinates. Each virus isolate obtained from the hamster's lungs or nasal turbinates retained the ts phenotype. These findings form the basis for further evaluation of the equine ts reassortant viruses for their level of attenuation and immunogenicity in horses.

Animals↗

Response of pregnant mares to equine herpesvirus 1 (EHV1).

Twenty-one pregnant mares were inoculated with EHV1. Nineteen became infected as evidenced by clinical signs and/or viremia but only one mare aborted a virus-infected fetus. The viremias were leukocyte-associated and appeared to be non-productive, latent infections of these cells. Infectivity, detectable by cocultivation, persisted in the circulating leukocytes for as long as 9 days without resulting in abortion. The data suggest that it is extremely difficult to evaluate the efficacy of vaccines in preventing EHV1 (Rhinopneumonitis) abortion due to the paucity of non-exposed mares, lack of tests which measure residual protection, and an incomplete understanding of the pathogenic mechanisms involved in abortion due to this virus.

Abortion, Veterinary↗

Specificity of response to viral proteins in horses infected with equine infectious anemia virus.

Three structural proteins of equine infectious anemia virus were purified, labeled with 125I, and utilized in radioimmunoassays with horse sera and antisera to heterologous retroviruses. Whereas radioimmunoassay titers for the major protein, p25, were 500- to 1,000-fold higher than titers in immunodiffusion, for clinical purposes these two procedures were equivalent. Antibodies to two low-molecular-weight proteins, p12 and p10, were also found in infected horses, but with a lower frequency and lower titers. As a rule, only sera positive for p25 also contained antibody to p12 and p10. Antisera to the major structural protein of other retroviruses did not precipitate equine infectious anemia virus p25. These sera include antibody to mammalian type C viruses, bovine leukemia virus, visna virus, mouse mammary tumor virus, squirrel monkey retrovirus, and Mason-Pfizer monkey virus.

Animals↗