PubMed Health⌕ Search

Biomedical subjects

R Brack-Werner

Publications and source records attributed to R Brack-Werner.

36 records · Page 2Linked to original sources

Restriction of human immunodeficiency virus type 1 production in a human astrocytoma cell line is associated with a cellular block in Rev function.

Chronically human immunodeficiency virus type 1 (HIV-1) strain IIIB-infected human TH4-7-5 astrocytoma cells show low-level virus production. Cocultivation of TH4-7-5 cells with myelomonocytic cells led to active virus production in these target cells after a lag period, indicating cell-determined restriction of virus replication in the glial cells. HIV-1 transcript patterns of TH4-7-5 cells contained only a small proportion of Rev-dependent mRNA species, mimicking a Rev-negative phenotype despite the presence of rev mRNAs and protein. Sequencing of the single provirus integrated in TH4-7-5 cells demonstrated that the rev gene and the Rev-responsive element are intact. These results suggested inhibited function of the Rev-regulatory unit in these astrocytoma cells. Transfection of TH4-7-5 cells with a Rev expression plasmid resulted in weak or no induction of proviral p24gag antigen levels compared with the dramatic increase observed in Rev-permissive HeLa cells. Immunofluorescence analysis of TH4-7-5 cells transfected with a rev-expressing plasmid revealed prominent cytoplasmic and nuclear-nucleolar localization of Rev, in contrast to the predominant nuclear-nucleolar localization pattern of Rev in HeLa cells. We conclude that restriction of virus production in TH4-7-5 cells is at least partially due to a block in Rev-dependent posttranscriptional regulation of HIV expression.

Amino Acid Sequence↗

Genomic distribution and transcription of solitary HERV-K LTRs.

The human genome contains a family of endogenous retroviruses, HERV-K, with sequence homology to the B-type mouse mammary tumor virus. We have now identified a single HERV-K LTR within the C-type-related human retroviral element S71. The HERV-K LTR is located in the antisense direction between the S71 gag and the pol gene, replacing the 5' half of S71 pol. A number of HERV-K LTR-related cDNA clones were detected by screening various human cDNA libraries with an S71 HERV-K LTR probe, indicating abundant transcription of HERV-K-related LTRs in human tissues. Sequence analysis of four cDNA clones revealed LTR sequences with a nucleotide identity of 70 to 90% with HERV-K10 LTR. Some HERV-K-related LTR sequences contain potential short open reading frames. The analyzed cDNA clones do not harbor any retroviral sequences other than those related to HERV-K LTRs. However, most of the solitary LTRs were found to be coexpressed with cellular sequences. Transcription of these LTRs is probably directed by external cellular promoters. We show that HERV-KLTR-like sequences entered the primate genome about 33-40 million years ago. We estimate the human genome to contain about 25,000 copies of HERV-K-related LTRs, which are distributed over most human chromosomes in an irregular manner.

Animals↗

Productive expression state confers resistance of human immunodeficiency virus (HIV)-2-infected lymphoma cells against superinfection by HIV-1.

In the past, positive as well as negative results pertaining to HIV-1/HIV2 interference have been obtained. Therefore, in the present study attention was paid to the viral expression state of preinfected cells at the time of exposure to secondary virus. A clonal HIV-2 infected HUT-78 cell line was derived by endpoint dilution and subsequently inoculated with cell-free HIV-1. Superinfection with HIV-1 was ruled out by Western blot and PCR analysis. The chronically HIV-2 infected cells used for these studies showed a highly productive expression state, as evidenced by immunoperoxidase staining (IPS), Western blot profile and levels of reverse transcriptase (RT) activity. We discuss several mechanisms of interference in productively infected cells, which may confer resistance to superinfection with secondary virus.

Blotting, Southern↗

Cellular localization of Nef expressed in persistently HIV-1-infected low-producer astrocytes.

OBJECTIVES: The characterization and localization of HIV-1 Nef highly expressed in permanently infected astrocytes (TH4-7-5) as a model for latent infection of human brain cells. DESIGN: Immunochemical methods are an appropriate tool to investigate expression and localization of cellular proteins. METHODS: Nef expression was analysed by Western blot and immunoperoxidase staining using a panel of monoclonal and polyclonal antibodies. Cellular localization studies were performed by indirect immunofluorescence and subcellular fractionation of TH4-7-5 cells. Myristoylation of Nef was investigated by immunoprecipitation of [3H]myristic acid-labelled cell extract. TH4-7-5 nef gene was cloned and amplified by polymerase chain reaction and the nef nucleotide sequence analysed. RESULTS: Reactivities of various Nef-specific antibodies with Nef antigen in TH4-7-5 cells were demonstrated by Western blot analysis. Immunofluorescence revealed cytoplasmic perinuclear staining of Nef with most antibodies. However, one monoclonal antibody against amino acids 168-175 of Nef showed intense homogeneous nuclear staining in TH4-7-5 cells. Reactivity of this Nef antibody was blocked with recombinant Nef derived from TH4-7-5 cells. After subcellular fractionation, Nef was detected in nuclear, membrane and cytosolic fractions of TH4-7-5 cells. No myristoylated Nef antigen was detectable, perhaps because of a serine residue at position 2 of the TH4-7-5 nef gene instead of the glycine residue required for myristoylation. CONCLUSIONS: Chronically HIV-1-infected astrocytoma cells with restricted virus production express different antigenic forms of Nef, which can be distinguished by their subcellular localization. Variant subcellular targeting of Nef suggests the existence of multiple activities of Nef within HIV-infected cells.

Amino Acid Sequence↗

Infection of human brain cells by HIV-1: restricted virus production in chronically infected human glial cell lines.

OBJECTIVE: To study expression of HIV-1 in human glial cell lines. DESIGN: Chronically HIV-1-infected glial cell lines were established to evade potential artefacts resulting from unphysiological viral entry (i.e., transfection). These cell lines were used to study viral expression and regulation. METHODS: Chronically infected glial cell lines were established by terminal dilution cloning of human glioma cells exposed to HIV-1. Virus production and expression were assayed by measuring reverse transcriptase activity, p24-antigen levels and syncytia-inducing capacity in C8166 target cells (extracellular), or by indirect immunoperoxidase staining, immunoblot analysis, and p24- and Nef-antigen-capture enzyme-linked immunosorbent assays (intracellular). HIV-long terminal repeat (LTR)-dependent expression of the chloramphenicol acetyltransferase reporter gene was determined in transient transfection assays. RESULTS: Culture supernatant from chronically HIV-1-infected glial cells contained only low levels of virus compared with chronically HIV-infected fibroblasts and T-lymphoma cells. Detailed study of HIV-antigen expression in representative glial cell line TH4-7-5 indicated the presence of all major structural proteins, albeit at low levels, and of Vif, Tat, Rev and Nef. Intracellular levels of Nef exceeded p24-antigen levels by approximately 10-fold. Virus was recovered from TH4-7-5 cells by cocultivation with blood-derived target cells, indicating that low-level virus production is not due to defective provirus. Prominent negative regulatory element (NRE)-mediated suppression of exogenous HIV-LTR activity was observed in TH4-7-5 cells and was unequalled by chronically HIV-producing fibroblast cells or by uninfected fibroblast and glial cells. CONCLUSIONS: Our results suggest that restricted virus production by chronically infected glial cells involves LTR-mediated regulation of virus expression.

Base Sequence↗

Expression and biological significance of human endogenous retroviral sequences.

The human genome contains a variety of elements resembling mammalian retroviruses. Most of these sequences have been found to be related to primate and murine C-type viruses (BaEV, SSAV/GaLV, MuLV), murine B-type viruses and A-type particles (MMTV, IAP), or human T-cell lymphotropic viruses (HTLV). Altogether, human endogenous retroviruses and retroviral elements are estimated to comprise at least 0.1 to 0.6% of the human genome. Like other transposable elements they may contribute in shaping the eukaryotic genome by intracellular transposition events or by generating hot spots of recombination. Human retroviral sequences have been shown to be transcriptionally active, especially in human placenta and embryonic tissue and in human tumor cell lines. Some elements that are coexpressed with cellular sequences are supposed to play a role in regulation of gene expression. Furthermore, expression of human endogenous retroviral sequences may have a protective function against superinfection by related exogenous retroviruses. On the other hand, endogenous retroviruses and retroviral elements represent a cellular reservoir of possibly pathogenic retroviral genes. They may be involved in chromosomal aberrations by acting as sites for recombination events between different chromosomes. Furthermore, they can act as insertion mutagens and activate or inactivate cellular genes. Retroviral gene products themselves may also be pathogenic as has been shown for the immunosuppressive effects of p15E envelope proteins. Therefore, the role of human endogenous retroviruses and retroviral sequences in biological processes is currently a subject of great interest.

Animals↗

HIV-1 Nef protein exhibits structural and functional similarity to scorpion peptides interacting with K+ channels.

The persistent infection of human glial cells with HIV-1 is characterized by prominent expression of the Nef protein. In order to evaluate the possible role of Nef in the development of HIV-1-associated neurological disorders, we compared Nef with known neuroactive proteins. We found that HIV Nef shares sequence and structural features with scorpion peptides known to interact with K+ channels. Sequence similarity encompasses two distinct regions of scorpion peptides. Based on crystallography data, both regions in scorpion peptides cooperate in forming a common domain stabilized by ion pairs between charged amino-acid residues. Recombinant Nef protein, as well as a synthetic part of a scorpion channel active peptide (M10), reversibly increased the total K+ current of chick dorsal root ganglions in patch-clamp experiments without killing the cells. These results indicate that a region conserved in HIV Nef and scorpion peptides concurs in both structure and electrophysiological activity and suggest that Nef, like scorpion peptides, may affect neuronal cell function.

Amino Acid Sequence↗

Endogenous retroviral elements in human DNA.

Endogenous retroviruses and retroviral elements represent a substantial component of vertebrate genomes. They are inherited as stable Mendelian genes and may be activated spontaneously or by physical or chemical agents. In the human genome various retroviral elements have been detected by their relationship with mammalian endogenous and exogenous retroviruses. The structure of these elements resembles either full-length or truncated proviruses. The biological function of human retrovirus-related sequences is still unknown, but like other transposable elements, they may have contributed in shaping the eukaryotic genome. Furthermore, they exhibit a number of features giving them a potential for involvement in carcinogenesis. Expression of endogenous retroviral elements has been detected in various human tissues and cell lines and in some cases appears to be associated with human neoplasias.

DNA, Viral↗

S71 is a phylogenetically distinct human endogenous retroviral element with structural and sequence homology to simian sarcoma virus (SSV).

Human endogenous retroviral element S71 had previously been shown to contain gag- and pol-related regions and a 3' LTR-like sequence. The nucleotide sequence of S71 was determined and compared with the corresponding regions of SSV and its helper virus SSAV. The 1.48-kb S71 gag region consists of matrix protein p15 (MA)-, capsid protein p30 (CA)-, and nucleocapsid protein p10 (NC)-related sections and the 1.82-kb pol region of tether, RNase H (RH), and endonuclease/integrase (IN) sections. The S71 nucleotide sequence contains a 167 amino acid open reading frame encompassing MA. The boundaries of the S71 element are delimited by direct repeats and the entire element is 5.4 kb long. Similarity between S71 and the v-sis-bearing, defective SSV provirus also covers overall structural organization, including the presence of presumably nonretroviral sequences. Both the gag and the pol regions of S71 contain sequences highly conserved in numerous retroviruses. Phylogenetic analysis with conserved CA, RH, and IN sequences showed that of all other (C-type) human retroviral elements available for comparison, S71 is most closely related to infectious primate and murine retroviruses. This suggests that S71 represents a phylogenetic subgroup of its own. In addition we identified short ranges of conserved amino acid sequences within C-type retroviral gag and pol genes sufficient for phylogenetic analysis. Use of these may facilitate large-scale phylogenetic evaluation of C-type retroviral elements and allow rapid classification of new elements.

Amino Acid Sequence↗

The significance of retroviruses in oncology.

Retroviruses first attracted attention as the etiological agents of tumors in various animals, including birds, rodents and primates. The retrovirus-induced tumors comprise above all T- and B-cell leukemias/lymphomas, chronic myelogenous leukemia and mammary carcinomas, and are characterized by a long latent period between infection and manifestation of the disease. Since their detection, oncogenic retroviruses have been the object of intense study contributing to our knowledge of basic mechanisms and molecular events involved in carcinogenesis in general. An essential step in the retrovirus life cycle is the covalent integration of the double-stranded DNA copy of viral RNA into the cellular genome, forming the provirus. The proviruses are quite stable and are generally a permanent acquisition for the cellular genome. Therefore, the presence of the provirus can have profound genetic implications for the host cell. There are at least three main routes that are assumed to lead to retroviral oncogenesis: Transduction of cell-derived oncogenes (v-onc) carried by some retroviruses, activation of cellular proto-oncogenes (c-onc) in cis by insertional mutation or activation of cellular genes in trans by virus encoded transcription factors.

Animals↗

Human SSAV-related endogenous retroviral element: LTR-like sequence and chromosomal localization to 18q21.

A new family of human endogenous retroviral sequences was recently discovered by way of its relationship to the simian sarcoma-associated virus (SSAV). One molecular clone, termed S71, contains sequences related to the genes coding for the group-specific antigens (gag) and polymerase (pol) proteins of SSAV. At the 3' end of this human retroviral element we have now found a 535-bp region which shows features characteristics of a retroviral long terminal repeat, including potential signal sequences essential for transcriptional control. By means of Southern blotting and in situ hybridization, the sequence was mapped to chromosome 18 band q21.

Animals↗

Human endogenous retroviruses.

One of the unique features of retroviruses is their ability to integrate their genetic information in the genomes of their host cells, including the germ line, and to persist there as so-called proviruses. Proviruses which are contained in the germ line of a given species and are inherited from generation to generation like cellular genes are called endogenous retroviruses (for review see 1). Although the function or bioiological role of endogenous retroviruses still remains to be elucidated, they have been detected in almost all vertebrate species examined. The most relevant properties of endogenous, genetically transmitted retroviruses are summarized in Table 1. Endogenous retroviruses persist in cellular DNA, are transmitted through the germ line, and possess a transposon-like structure (2) which enables them to integrate at any position of the cellular genome. Endogenous retroviruses can be activated by certain chemicals such as mutagens/carcinogens or mitogens, by radiation, and by other mechanisms such as DNA-viruses or physiological processes (e.g. aging) to express antigens or to form infectious virus particles. Their biological relevance is unknown but may include involvement in physiological processes such as protection against superinfection by related retroviruses, similar to observations made with exogenous retroviruses in some animal model systems.

Blotting, Southern↗

Target cells for HIV in the central nervous system: macrophages or glial cells?

Infection of foetal or embryonic brain cells and cell lines from human astrocytomas and gliomas with HIV1 derived from T-lymphoma cultures leads to the expression of HIV in about 1 to 2% of the cells in culture. Single-cell cloning of astrocytoma cells shortly after infection resulted in the establishment of persistently HIV1-infected cell lines. These cultures were characterized by low production of virus and moderate intra- and extracellular expression of structural proteins. However, high expression of the nef regulatory protein was found. The virus could be rescued by cocultivation with T cells and primary macrophages giving rise to typical syncytia formation. In contrast to infection with HIV-infected T-lymphoma lines, cocultivation with HIV1-infected primary macrophages or monocytic cell lines induced a reduction in the growth of astrocytes and failed to induce productive infection. These in vitro observations support the hypothesis that astrocytes and glial cells may be a reservoir for HIV in the central nervous system and that macrophages may not carry the virus to the brain, but rather may be infected in the brain after having penetrated the blood-brain barrier.

Astrocytes↗

Restricted expression of HIV1 in human astrocytes: molecular basis for viral persistence in the CNS.

Besides macrophages and microglial cells, cells of astroglial origin are thought to be targets of HIV1 in the brain. HIV1 infection of astroglial cells results in restricted production of the virus. To analyse the molecular basis of this restricted infection phenotype, we established a chronically HIV1-infected low-producer astrocytoma cell line. These cells show only low levels of mRNA encoding structural proteins, due to a cell-determined blockage in the Rev/RRE regulatory axis. The low-producer state could not be overcome by treatment with known stimulators of virus expression such as phorbol ester, (12-O-tetradecanoylphorbol-13-acetate), tumour necrosis factor alpha or sodium butyrate. This indicates that the molecular mechanisms involved in restricting virus production in astroglial cells differ from those in latently infected T cells and monocytes.

Astrocytes↗