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Biomedical subjects

F Béranger

Publications and source records attributed to F Béranger.

10 recordsLinked to original sources

Cell culture models of transmissible spongiform encephalopathies.

In this review, we describe the generation and use of cell culture models of transmissible spongiform encephalopathies, also known as prion diseases. These models include chronically prion-infected cell lines, as well as cultures expressing variable amounts of wild-type, mutated, or chimeric prion proteins. These cell lines have been widely used to investigate the biology of both the normal and the pathological isoform of the prion protein. They have also contributed to the comprehension of the pathogenic processes occurring in transmissible spongiform encephalopathies and in the development of new therapeutic approaches of these diseases.

Animals↗

An extracellular activator of the Drosophila JAK/STAT pathway is a sex-determination signal element.

Metazoans use diverse and rapidly evolving mechanisms to determine sex. In Drosophila melanogaster an X-chromosome-counting mechanism determines the sex of an individual by regulating the master switch gene, Sex-lethal (Sxl). The X-chromosome dose is communicated to Sxl by a set of X-linked signal elements (XSEs), which activate transcription of Sxl through its 'establishment' promoter, SxlPe. Here we describe a new XSE called sisterlessC (sisC) whose mode of action differs from that of previously characterized XSEs, all of which encode transcription factors that activate SxlPe directly. In contrast, sisC encodes a secreted ligand for the Drosophila Janus kinase (JAK) and 'signal transducer and activator of transcription' (STAT) signal transduction pathway and is allelic to outstretched (os, also called unpaired). We conclude that sisC works indirectly on Sxl through this signalling pathway because mutations in sisC or in the genes encoding Drosophila JAK or STAT reduce expression of SxlPe similarly. The involvement of os in sex determination confirms that secreted ligands can function in cell-autonomous processes. Unlike sex signals for other organisms, sisC has acquired its sex-specific function while maintaining non-sex-specific roles in development, a characteristic that it shares with all other Drosophila XSEs.

Animals↗

Muscle differentiation is antagonized by SOX15, a new member of the SOX protein family.

SOX proteins belong to a multigenic family characterized by a unique DNA binding domain, known as the high mobility group box, that is related to that of the testis determining gene SRY. cDNA sequences for more than 30 SOX genes have been identified, and some are known to have diverse roles in vertebrate differentiation and development. Here, we report the isolation and characterization of mouse Sox15 that was uncovered during a screen for high mobility group box containing transcription factors that are expressed at different levels during skeletal muscle differentiation. Sox15 cDNAs were found at a much higher frequency in myoblasts prior to their differentiation into myotubes. Electrophoretic mobility shift assays indicated that recombinant SOX15 protein was capable of binding to a consensus DNA binding site for SOX proteins. When overexpressed in C2C12 myoblasts, wild type SOX15, but not a C-terminal truncated form or the related protein SOX11, specifically inhibited activation of muscle-specific genes and expression of the basic helix-loop-helix myogenic factors myogenin and MyoD, resulting in a failure of the cells to differentiate into myotubes. These results suggest a specific and repressive role for SOX15, requiring the C-terminal domain, during myogenesis.

Amino Acid Sequence↗

Getting more from the two-hybrid system: N-terminal fusions to LexA are efficient and sensitive baits for two-hybrid studies.

Two-hybrid methods detect interactions between two proteins fused at the C-termini of, respectively, a DNA-binding domain and the activation domain of a transcriptional activator. Thus the N-terminus of none of these proteins is available for interaction. We have tested whether a bait protein with a reverted polarity (i.e. N-bait-LexA-C) is suitable for two-hybrid interaction. We show that such constructs give a specific interaction signal, and document two cases where the sensitivity is dramatically increased. Such constructs might lead to the identification of partners missed during classical two-hybrid screens.

Bacterial Proteins↗

Effects of the ras-related rap2 protein on cellular proliferation.

Ras oncogenes encode 21-kDa (p21s) GTP binding proteins that are capable of transforming immortalized cells in culture. The ras-related rap1A/Krev-1/smgp21A protein, that exhibits a similar structural organization and contains the same effector domain as ras proteins, antagonizes ras-transformation. In order to investigate whether the closely related (61% identical) rap2 protein had similar capacities, the corresponding cDNA was inserted into constitutive as well as inducible mammalian expression vectors. Neither the wild-type, nor an "activated" mutant carrying a glycine-to-valine substitution at position 12, had any transforming activity. Several independent lines of evidence demonstrate that the rap2 protein exhibits neither growth-promoting nor growth-inhibitory effects, and that its over-expression does not interfere with ras-induced transformation. Thus, in spite of their great similarities, the rap1A/Krev-1/smgp21A and rap2 proteins have distinct physiological properties.

Animals↗

Association of the Ras-antagonistic Rap1/Krev-1 proteins with the Golgi complex.

Ras oncogenes encode 21-kDa GTP-binding proteins that are capable of transforming immortalized cells in culture. Ras proteins are bound to the inner face of the plasma membrane by their C-terminal extremity and are thought to transmit their mitogenic signals via an "effector" domain spanning amino acids 32-42. Two ras-related human genes rap1A and rap1B encode 95% homologous 21-kDa proteins that share with Ras p21 the same effector domain and a similar C-terminal Cys-Ali-Ali-Xaa sequence (where Ali is an aliphatic amino acid; also known as a CAAX sequence). The product of the rap1A gene is identical to that of the Krev-1 cDNA, whose overexpression is capable of reverting the phenotype of Ki-ras-transformed NIH 3T3 cells. Antibodies that do not cross-react with Ras and other Ras-related proteins were obtained by immunizing rabbits with a peptide encompassing residues 121-137 of Rap1 proteins. These antibodies were used to investigate the subcellular localization of Rap1 proteins by indirect immunofluorescence and fractionation techniques. Rap1 proteins were found to be tightly bound to cellular membranes. They did not colocalize with Ras proteins on the plasma membrane and were discovered to be associated with the Golgi complex.

Amino Acid Sequence↗

Post-translational processing and subcellular localization of the Ras-related Rap2 protein.

The ras-related rap2 gene encodes a 21 kDa GTP-binding protein that exhibits many structural similarities with Ras proteins. In particular, it contains a C-terminal CAAX sequence (C, cysteine; A, aliphatic residue; X, any amino acid) which has been shown to direct the post-translational modifications responsible for membrane binding of Ras proteins and nuclear lamins. We have generated cell lines overexpressing the Rap2 protein as well as specific anti-Rap2 antibodies and show that the protein is tightly associated with cellular membranes. Similarly to Ras proteins, the Rap2 protein is synthesized as a soluble and hydrophilic precursor that is processed to the mature hydrophobic membrane-bound form. During its maturation, the Rap2 protein is modified by the attachment of both palmitate and polyisoprenoid groups, as is also the case for H- and N-Ras proteins. Subcellular fractionation by sucrose density centrifugation as well as indirect immunofluorescence experiments show that the Rap2 protein is localized in a low-density compartment that morphologically overlaps with the endoplasmic reticulum, whereas Ras proteins are associated with the plasma membrane. In spite of similar post-translational modifications by palmitoylation and polyisoprenylation, Ras and Rap2 proteins are thus located on distinct subcellular structures.

Cell Transformation, Viral↗

Interferon-beta 2 (BSF-2) mRNA is expressed in human monocytes.

We previously have reported the presence of interferon-beta 2 (IFN-beta 2) mRNA in PHA-stimulated human peripheral blood leukocytes (PBL), as well as in nonstimulated cells, although at a lower level. The IFN-beta 2 cloned from a leukocyte library appeared to be similar to that of the fibroblast IFN-beta 2 gene first described in fibroblasts. To assess the nature of the cell population in which the synthesis of IFN-beta 2 takes place, PBL were fractionated in adherent and nonadherent cells. The antiviral activity of the culture supernatants of adherent cells was characterized as the IFN-beta type by neutralization with polyclonal antibodies raised against purified fibroblast IFN-beta 2. IFN-beta 2 mRNA was observed in enriched monocyte populations and accumulated very rapidly, peaking at 2.5 h. RNA extracted from these cultures encoded in a reticulocyte lysate a protein immunoprecipitated by the anti-IFN-beta 2 antiserum. In addition, IFN-beta 2 secreted in monocyte supernatants also was immunoprecipitated by the specific antiserum and was able to compete with the fibroblast IFN-beta 2, suggesting a strong similarity between the fibroblast and monocyte proteins.

Cell Adhesion↗

Intracellular human gamma-interferon triggers an antiviral state in transformed murine L cells.

Interaction of human gamma-interferon (IFN-gamma) with a cell-surface receptor is known to be essential for the cell to become resistant to viral infection. Here we demonstrate that IFN-gamma, when present inside the cell, is also capable of inducing a permanent antiviral state. Mouse cells transformed with a truncated human cDNA encoding a mature IFN-gamma protein lacking the signal peptide accumulate high levels of intracellular human IFN-gamma. Not only do these cells acquire a permanent resistance to viral infection, they also exhibit all the biochemical characteristics normally observed after exposure to exogenous IFN. The observed loss of species specificity normally associated with IFN-gamma suggests that this restriction is strictly dependent on the interaction of the molecule with the cell-surface receptor.

2',5'-Oligoadenylate Synthetase↗