PubMed Health⌕ Search

Biomedical subjects

J E Clements

Publications and source records attributed to J E Clements.

At least 127 records · Page 7Linked to original sources

cis- and trans-acting transcriptional regulation of visna virus.

Visna virus is a pathogenic lentivirus of sheep that is related to human T-cell lymphotropic virus type III (HTLV-III), the probable etiologic agent of the acquired immune deficiency syndrome (AIDS). The transcriptional activity of visna virus promoter and enhancer sequences was studied by means of an assay based on the transient expression of the bacterial gene chloramphenicol acetyltransferase (CAT). The results suggest that the high level of expression of visna virus is due in part to cis-acting enhancer sequences that give the viral promoter a high level of transcriptional activity. In addition, the rate of transcription from the visna virus promoter situated in a plasmid expressing the CAT gene was much greater in infected than uninfected cells. This phenomenon of trans-acting transcriptional activation may involve either virally or cellularly encoded factors.

Acetyltransferases↗

Sequence homology and morphologic similarity of HTLV-III and visna virus, a pathogenic lentivirus.

A study was conducted of the genetic relation between human T-cell lymphotropic retroviruses and visna virus. The human T-cell lymphotropic viruses include those associated with T-cell malignancies (HTLV-I and HTLV-II) as well as the etiologic agent of the acquired immune deficiency syndrome (HTLV-III). Visna virus, a slowly replicating and pathogenic but nononcogenic retrovirus of sheep, is a member of the subfamily Lentivirinae. Results obtained by molecular hybridization and heteroduplex analysis indicated that a greater extent of nucleotide sequence homology exists between HTLV-III and visna virus than between HTLV-III and any of the other viruses. The homology observed under conditions of low stringency spanned the entire genome, but was strongest in the gag/pol region. The morphogenesis and fine structure of HTLV-III and visna virus also demonstrated striking similarities. The data provide strong evidence for a close taxonomic and thus evolutionary relation between HTLV-III and the Lentivirinae subfamily.

Base Sequence↗

A double labeling technique for performing immunocytochemistry and in situ hybridization in virus infected cell cultures and tissues.

This report describes a combined immunocytochemical and in situ hybridization procedure which allows visualization of cellular or viral antigens and viral RNA in the same cell. Cultures infected with visna or measles virus were fixed in periodate-lysine-paraformaldehyde-glutaraldehyde, stained by the avidin-biotin-peroxidase technique using antibodies to viral or cellular proteins and then incubated with radiolabeled specific DNA probes (in situ hybridization). The immunoperoxidase stain was preserved through the hybridization procedure. Nonspecific 'sticking' of probes over peroxidase stained cells was prevented by incorporation of 0.1% Triton X-100 into the hybridization solution and the post-hybridization washes. The in situ hybridization signal (silver grains/cell) on peroxidase-stained cells was reduced relative to hybridization with unstained cells. The double labeling technique was also applied to sections of paraffin-embedded tissues from a sheep infected with visna virus and mice infected with the HNT strain of measles virus. Visna virus RNA was detected in immunocytochemically identified macrophages in the synovium. A greater number of these cells had viral RNA than had viral protein. In measles virus-infected brains viral RNA was detected only in cells with viral protein. This technique provides a new approach to the study of viral pathogenesis by: identifying the types of cells which are infected in the host and identifying points of blockade in the virus life cycle during persistent infections.

Animals↗

Efficiency of in situ hybridization as a function of probe size and fixation technique.

In an attempt to improve fixation technique for viral RNA detection by in situ hybridization, we have quantitatively compared the hybridization signal obtained when measles virus or visna virus infected cell cultures were fixed with eight different fixatives and hybridized with 35S-labeled virus-complementary DNA probes of several size ranges. Small probes (mean length, 70 bases) gave higher signals than larger probes (mean lengths 140, 350, and 780 bases) with all fixatives. This increase in signal was minimal with acetic ethanol or formalin, but was dramatic with fixatives containing glutaraldehyde; with these fixatives the signals with small probes were 6.5- to 22-fold greater than with large probes. The highest signals were obtained with periodate-lysine-paraformaldehyde-glutaraldehyde (PLPG) fixed cells hybridized with small probes, and were 1.5- to 6.7-fold greater than those obtained with the commonly used fixative acetic ethanol. PLPG and other glutaraldehyde based fixatives also greatly improved the preservation of cellular morphology compared to acetic ethanol.

Acetates↗

Slow, persistent replication of lentiviruses: role of tissue macrophages and macrophage precursors in bone marrow.

Lentiviruses, as exemplified by visna virus of sheep, are nononcogenic retroviruses that cause slowly progressive diseases after prolonged periods of incubation. Earlier studies on visna have shown that the long incubation period of the disease is associated with constant production of minimal quantities of virus in tissues, whereas virus could be obtained by culturing monocytes and macrophages from explants of lymphatic tissues and inflamed organs. In this study the role of macrophages in lentivirus infection was explored using two sheep that were intrabronchially inoculated with virus. When sections of paraffin-embedded tissue, processed by a recently described technique which combines immunocytochemistry for the identification of macrophages and in situ hybridization for identification of viral nucleic acid, were examined, we found that virus replication is associated almost exclusively with infection in selected populations of macrophages in the interalveolar region of the alveoli, in inflammatory exudate cells in the lung, in lymph nodes, and in the spleen. Although large numbers of alveolar macrophages had viral RNA, few of these cells produced virus. While this minimally productive type of viral replication provides an explanation for the slow pace of the infection, restricted replication in terminally differentiated, short-lived macrophages does not explain persistent virus replication in the animal. With the discovery of clusters of infected macrophage precursors in the bone marrow, a mechanism for persistence was found. The macrophage precursor cells provide an important missing link in the virus-target-cell circuit and may be the reservoir of latently infected cells which perpetuate lentivirus infections in both animals and humans.

Animals↗

Heteroduplex mapping in the molecular analysis of the human T-cell leukemia (lymphotropic) viruses.

The human T-cell lymphotropic virus (HTLV) family includes members associated with T-cell cancers (HTLV-I and HTLV-II) as well as the etiological agent of the acquired immunodeficiency syndrome (HTLV-III). Molecular clones of these viruses were used in heteroduplex mapping experiments to study their structural and evolutionary relationships. The HTLV-I subgroup, despite some restriction enzyme site polymorphism, demonstrated a high degree of sequence conservation. Heteroduplexes of HTLV-I and HTLV-II demonstrated a significant amount of sequence homology, with the strongest region of conservation occurring in the 3'-most coding sequences, designated pX, and to a lesser, although substantial extent in the rest of the genome. Thus, the genomic organization of HTLV-II appears to be very similar to that of HTLV-I. All HTLV-III molecular clones appeared to be identical, with a single exception, which showed heterogeneity in the env gene region. In heteroduplexes between HTLV-I and HTLV-III, very little homology was observed, being confined to the gap/pol region. In contrast to the latter result, a striking amount of homology was detected between HTLV-III and a morphologically similar, pathogenic, nononcogenic lentivirus, visna virus. These data provide strong evidence for a close taxonomic and thus evolutionary relationship between HTLV-III and the lentivirus subfamily of retroviruses. A taxonomic tree, based on the genetic relatedness and biological properties of the HTLV family, is proposed.

Base Sequence↗

Genetic variation among lentiviruses: homology between visna virus and caprine arthritis-encephalitis virus is confined to the 5' gag-pol region and a small portion of the env gene.

Visna virus of sheep and arthritis-encephalitis virus of goats are serologically related but genetically distinct retroviruses which cause slowly progressive diseases in their natural hosts. To localize homologous regions of the DNAs of these two viruses, we constructed a physical map of caprine arthritis-encephalitis virus DNA and aligned it with the viral RNA. Cloned probes of visna virus DNA were then used to localize regions of homology with the caprine arthritis-encephalitis virus DNA. These studies showed homology in the 5' region of the genome encompassing U5 and the gag and pol genes and also in a small region in the env gene. These findings correlate with biological data suggesting that the regions of the DNA which are homologous may be responsible for virus group characteristics such as the closely related virus core antigens. Regions which did not show homology such as large sections in the env gene may represent unique sequences which control highly strain-specific characteristics such as the neutralization antigen and specific cell tropisms.

Animals↗

Slow virus-macrophage interactions. Characterization of a transformed cell line of sheep alveolar macrophages that express a marker for susceptibility to ovine-caprine lentivirus infections.

Visna-maedi of sheep and arthritis encephalitis of goats are slowly progressive diseases caused by serologically related lentiviruses. Lesions are inflammatory and can occur at one or many sites including the central nervous system, lungs, joints, and mammary glands. The viruses replicate in macrophages, and in the animal large numbers of infected macrophages can be obtained from inflamed tissues. To study virus-macrophage interactions we transformed sheep alveolar macrophages, which are natural virus target cells, with simian virus 40 and produced a macrophage cell line. The transformed cells grew into density-dependent monolayers and were subcultured after trypsin dissociation. They maintained histochemical and physiologic properties of macrophages as well as the ability to support replication of the lentiviruses. Rabbit antisera to these cells reacted with blood monocytes and only selected populations of tissue macrophages, including those in lung, synovium, mammary gland, and spleen. Microglia, Kupffer cells, and connective tissue histiocytes were not recognized by the sera. Since the tissues in which virus localizes in infected animals are the same as those recognized by the sera, the antimacrophage serum may provide an immunologic marker for virus-susceptible macrophages in the animal.

Animals↗

Molecular cloning of unintegrated visna viral DNA and characterization of frequent deletions in the 3' terminus.

Visna viral DNA, like other retroviral DNA, exists in two circular forms in infected cells. The larger probably contains two copies of the LTR, the smaller, one copy. Recombinant DNA techniques were used to clone unintegrated circular visna viral DNA in the lambda WES . lambda B vector. Circular visna viral DNA was digested with the restriction enzyme SstI, which yields a 9.2-kb viral DNA fragment containing 90% of the viral genome colinear with the restriction map of linear viral DNA. This fragment extends from a site about 900 bp from the left (5') end of the viral DNA molecule, through the 3' region, including U3 and R sequences at its right (3') end. The recombinant clones isolated contain visna viral DNA inserts which range in size from 3.1 kb to 9.2 kb. All the clones contain the 5' region intact, but most had sustained deletions of varying lengths in the 3' terminal region of the cloned fragment.

Chromosome Mapping↗

Activation of caprine arthritis-encephalitis virus expression during maturation of monocytes to macrophages.

Lentiviruses, which cause arthritis-encephalitis and maedi-visna in goats and sheep, respectively, cause persistent infections in these animals. The viruses replicate productively at low levels in macrophages in diseased organs such as the "maedi lung" and nonproductively in other cell types such as leukocytes in peripheral blood. Nonproductive infections become productive during in vitro cultivation of the cells. This study showed that monocytes were the only cells in the peripheral blood leukocytes of an infected animal in which virus was detected and that virus activation occurred only when these cells matured into macrophages. Only a minute fraction of cultured monocytes matured into macrophages, and viral infectivity was associated exclusively with this fraction. Antiglobulin-coated glass wool fragments were lethal for monocyte macrophages because of toxic phagocytosis, but had no effect on B or T lymphocytes. The simultaneous addition of the glass fragments and leukocytes to culture dishes resulted in no macrophage maturation and no virus production. The addition of the fragments to virus-producing macrophages caused the death of the cells and a decline in virus production. Virus production in less avidly phagocytic cells was unaffected by the glass. Thus, although macrophages may be permissive for virus replication, one mechanism for restricted virus expression in vivo may be physiological factors controlling the maturation of these cells.

Animals↗

Slow virus replication: the role of macrophages in the persistence and expression of visna viruses of sheep and goats.

Lentiviruses of sheep and goats cause slowly progressive diseases of the central nervous system (visna), lungs (maedi) and joints (arthritis) in their natural hosts. However, the virus target cell(s) in these diseases are still unknown. In this report, using laboratory-adapted Icelandic visna virus and several field strains recently obtained from sheep and goats with natural disease in the U.S.A., we show that macrophages became persistently infected when inoculated in culture. Furthermore, macrophages were an invariable source of virus from experimentally and naturally infected animals. Virus-producing macrophages developed minimal cytopathic changes and virus assembly occurred mainly intracellularly, accumulating in cytoplasmic vacuoles. In contrast to macrophages, sheep choroid plexus fibroblasts developed syncytial cytopathic changes after inoculation and virus maturation occurred at the cell surfaces. Replication of the Icelandic virus was highly productive in this system but that of the field viruses was very inefficient. In some cases these agents failed to replicate in the fibroblasts and no cytopathic effect occurred. This block in the field virus replication was, however, overcome when infected nonproducer fibroblasts were co-cultivated with macrophages. In these cases, virus production with attendant cytopathic effect in the fibroblasts required the continuous presence of macrophages because the cells reverted to a non-productive state when separated from macrophages and became productive again when subcultures were added to new macrophages. The roles of the macrophage as a virus target cell and virus inducer in the virus-macrophage-fibroblast interactions are discussed with inferences to the well-known phenomenon of restricted virus replication in infected animals and the immunopathological aspects of the diseases.

Animals↗

Neutralizing antibody spectrum determines the antigenic profiles of emerging mutants of visna virus.

The visna viruses are antigenically related nononcogenic retroviruses of sheep. The original strain was isolated from the brain of a paralyzed sheep in Iceland during the 1940s. The prototype strains has been passed serially in sheep and has undergone progressive antigenic change. Previous reports have shown that such antigenic changes in visna virus can be reproduced in infected cell cultures treated with neutralizing antibody. We now show that the antigenic profiles of the emerging mutants directly reflect the nature of the selecting antibody. Mutants with minor antigenic changes were selected by "early" sera which had a limited neutralization range. Mutants with greater antigenic changes were selected by "late" sera with a wide neutralization range. Mutants selected by early sera emerged rapidly and consistently in cultures, and these were antigenically very similar to one another. Mutants rarely emerged in cultures treated with late sera, but these viruses showed major antigenic changes. The data suggest that the evolution of antigenic mutants of visna virus progresses by a series of minor mutations which accumulate under the selective pressure of antibody.

Animals↗

Red-cell metabolism of pyridoxine in controls and beta-Thalassaemia in Ferrara, Northern Italy.

The rate of red-cell metabolism of pyridoxine to pyridoxal phosphate was measured in control subjects and patients with homozygous and heterozygous beta-thalassaemia from Ferrara, Northern Italy, and in British control subjects of Anglo-Saxon origin. A high incidence of a slow rate of B6 metabolism was found in beta-thalassaemia in Ferrara similar to that found previously in Cypriots living in London. Of particular interest was a much slower rate in control subjects from Ferrara than in British control subjects of Anglo-Saxon origin. The suggestion that a high incidence of a slow red-cell metabolism of B6 is the result of selection by malaria, whether associated with thalassaemia or not, is considered.

Cyprus↗

Low red cell activity of pyridoxine (pyridoxamine) phosphate oxidase and glutathione reductase associated with thalassaemia.

It was demonstrated in heterozygous alpha 1- and beta-thalassaemia, that the slow rate of red-cell metabolism of vitamin B6, previously shown to be inherited, is regulated by the FMN-dependent pyridoxine (pyridoxamine) phosphate oxidase, as in control subjects. In this study, 60% of the patients with thalassaemia had a low B6 oxidase activity. An inverse correlation with the stimulation of the FAD-dependent glutathione reductase activity by FAD confirmed that red-cell riboflavin status was responsible. The inherited nature and lack of signs of nutritional riboflavin deficiency led to the conclusion that this was the result of a slow rate of red-cell metabolism of riboflavin. Stimulation of glutathione reductase activity by FAD correlated inversely with its basic activity in thalassaemia and control subjects. There was a high incidence of a low activity of this enzyme per red cell in patients with thalassaemia. The possibility that a low activity of glutathione reductase and a slow metabolism of B6 and riboflavin in the red-cell might play a part in the degree of severity of the thalassaemic disease is discussed.

Erythrocytes↗

Glutathione reductase activity and pyridoxine (pyridoxamine) phosphate oxidase activity in the red cell.

The red-cell enzymes, glutathione reductase (FAD-dependent) and pyridoxine (pyridoxamine) phosphate oxidase (FMN-dependent), were studied in control subjects. The wide range in the glutathione reductase activity correlated inversely with the percentage stimulation by FAD added in vitro, and with pyridoxine (pyridoxamine) phosphate oxidase activity. Both enzymes were stimulated after ingestion of riboflavin. The results support the suggestion that the rate of metabolism of riboflavin in the red cell controls the activity of both enzymes, and the rate of red-cell metabolism of vitamin B-6.

Erythrocytes↗