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S Pestka

Publications and source records attributed to S Pestka.

At least 55 records · Page 3Linked to original sources

The human interferon-alpha species and hybrid proteins.

Ten years of interferon (IFN) therapy have followed the approval of this agent by the US Food and Drug Administration on June 5, 1986. As the first biotherapeutic approved, IFN-alpha paved the way for the many new biotherapeutics. Regardless of this long history, however, we have just touched the surface of understanding the multitude of human IFNs. This report reviews the history of the purification of human leukocyte IFN and key aspects of our current state of knowledge of human leukocyte IFN genes and proteins.

Amino Acid Sequence↗

The interferon receptors.

During the past decade, the receptors for the type I (alpha, beta, and omega) and type II (gamma) interferons (IFNs) have been identified. The IFN-gamma receptor consists of two transmembrane chains, IFN-gammaR1 and IFN-gammaR2, both of which are required for activity. The IFN-gammaR1 chain binds the IFN-gamma ligand, whereas the IFN-gammaR2 chain is required for signal transduction. After ligand binding, Jak1 and Jak2 kinases are activated by phosphorylation and then phosphorylate the IFN-gammaR1 chain, which serves as the recruitment site for Stat1alpha (signal transducers and activators of transcription). After recruitment to the phosphorylated IFN-gammaR1 chain, Stat1alpha is then phosphorylated and released to form a Stat1alpha dimer that represents the active transcription factor for IFN-gamma-induced genes. An analogous paradigm exists for the type I IFN (IFN-alpha/beta) receptor. This receptor appears to consist of two chains, IFN-alphaR1 and IFN-alphaR2, which can be present in different forms. Thus, the IFN-alphaR1 chain is present as the full chain (IFN-alphaR1a) and as a splice-variant (IFN-alphaR1s) lacking exons IV and V; the IFN-alphaR2 chain exists in soluble, short, and long forms (IFN-alphaR2a, IFN-alphaR2b, and IFN-alphaR2c, respectively). Most likely, the IFN-alphaR1a and IFN-alphaR2c chains represent the predominantly active form. After ligand binding of IFN-alpha, IFN-beta, or IFN-omega species, Tyk2 and Jak1 kinases are recruited to the receptor complex and activated. The activation results in the subsequent recruitment of Stat1 (Stat1alpha and Stat1beta) and Stat2, which form a Stat1/Stat2 heterodimer after their phosphorylation. The active transcription complex IFN-stimulated gene factor-3 is formed by the association of the Stat1/Stat2 heterodimer with the p48 protein. The active IFN-stimulated gene factor-3 binds to the promoter elements of type I IFN-induced genes to initiate their transcription. Although the overall motif appears clear, there is much complexity in these interactions in that the various type I IFNs exhibit different interactions with the receptor components. Apparently, each of the IFN-alpha species exhibits a different pattern of receptor interactions that reflects their different biologic activities and will likely explain the existence of this large family of IFN-alpha species, IFN-beta, and IFN-omega that all interact with the same basal receptor.

Animals↗

Interferon standardization and designations.

A large number of different human and nonhuman interferon (IFN) preparations are now available for either research purposes or commercial use. Consistency of results can be achieved only through rigorous application of biologic standards and individual species designation. International standards for the potency determinations of these preparations have been produced in accordance with World Health Organization (WHO) guidelines and are available for calibrating assays. Until recently, potency has been assessed purely as a measure of antiviral activity expressed in international units. Other biologic properties are now also being considered, including antiproliferation and immunomodulation. Indirect methods of measuring IFN, such as radioimmunoassay or enzyme immunoassay, if fully validated, may also provide useful estimates of function. Reference antisera are useful for characterizing IFN preparations and for monitoring neutralization assays for detecting anti-IFN antibodies but should not have a function in assay calibration. Factors to be considered when referring to specific designations for pure IFN species include distinctions for the species of origin, any mutant or hybrid forms, the method of production, and the presence of additional glycosylation.

Animals↗

Interferon immunogenicity: preclinical evaluation of interferon-alpha 2a.

A preclinical evaluation of the immunogenicity of various preparations of interferon-alpha (IFN-alpha) was performed with in vitro and in vivo animal models. The distribution of genes for IFN-alpha 2a, IFN-alpha 2b, and IFN-alpha 2c in various cell populations and the response of human T cell clones to IFN-alpha peptides were investigated. The immunogenicity of IFN-alpha in IFN-alpha 2b transgenic mice and factors that influence the immunogenicity of IFN-alpha in normal mice were also studied. The genes for IFN-alpha 2a and IFN-alpha 2b were found in KG-1 cells, whereas IFN-alpha 2b and IFN-alpha 2c genes were present in Namalwa cells. No difference in proliferation of human T cells, T cell lines, or T cell clones could be obtained with IFN-alpha peptides. In transgenic mice bearing the human IFN-alpha 2b gene, no antibody response was obtained following immunization with either IFN-alpha 2a or IFN-alpha 2b. Normal mice immunized with either IFN-alpha 2a or IFN-alpha 2b produced equivalent titers of antibodies, which cross-reacted with both IFNs. Studies evaluating the relative immunogenicity of IFN-alpha in normal mice demonstrated that a number of treatment and host variables can modulate immunogenicity of IFN-alpha preparations.

Amino Acid Sequence↗

Mouse macrophages carrying both subunits of the human interferon-gamma (IFN-gamma) receptor respond to human IFN-gamma but do not acquire full protection against viral cytopathic effect.

Studies of hamster-human and mouse-human somatic fibroblast hybrids and transfected mouse fibroblasts have demonstrated that signaling through the human interferon-gamma receptor (hu-IFN-gammaR) requires the formation of a complex consisting of ligand (IFN-gamma), a ligand binding receptor chain (IFN-gammaR1), and a signal transducing receptor chain (IFN-gammaR2). To date, the ability of this receptor complex to transduce the full repertoire of biological signals has been difficult to assess due to the limited number of activities that IFN-gamma can exert on fibroblasts. The current report assesses the ability of hu-IFN-gammaR chains to transduce signals in the absence of background human gene products by expressing hu-IFN-gammaR2 in a transformed macrophage cell line (F10/96) derived from a hu-IFN-gammaR1 transgenic mouse. Our results indicate that F10/96 clones expressing both human receptor proteins bind hu-IFN-gamma with an affinity comparable to that of human cells. Binding of either human or mouse IFN-gamma to its respective receptor elicits classic IFN-gamma responses such as up-regulation of major histocompatibility complex antigens, enhanced expression of IRF-1, and increased production of NO2- radicals, interleukin-6, tumor necrosis factor-alpha, and granulocyte macrophage-colony stimulating factor. However, hu-IFN-gamma could not fully protect the clones from cytopathic effects of encephalomyocarditis virus and vesicular stomatitis virus while mo-IFN-gamma could. These results demonstrate that while co-expression of hu-IFN-gammaR1 and hu-IFN-gammaR2 is necessary and sufficient for most IFN-gamma-induced responses, it is not sufficient to confer a generalized antiviral state. These findings further suggest that additional species-specific accessory factor(s) are necessary for full signaling potential through the IFN-gamma receptor complex. The nature and potential role of such factors in IFN-gammaR signaling is discussed.

Animals↗

The structure of the gene for the second chain of the human interferon-gamma receptor.

The gene for the second chain of the human interferon-gamma receptor was analyzed from cosmid DNA clones. The gene spans over 33 kilobases of DNA and contains seven exons. The signal peptide is encoded by exons 1 and 2, the extracellular domain by exons 2, 3, 4, 5, and by part of 6. Exon 6 also encodes the whole transmembrane domain and part of the intracellular domain. Exon 7 encodes the remainder of the intracellular domain and contains the 3'-untranslated region. The sequences at the exon/intron boundaries are well conserved with respect to canonical acceptor/donor sites (AG/GT). The 5'-flanking region was sequenced and analyzed for transcription factor binding sites. No TATA or CAAT boxes in the promoter region were identified. Consistent with the lack of a TATA box, analysis of the mRNAs by primer extension showed multiple transcription start sites. Promoter activity of the 5'-flanking region was investigated with a luciferase reporter gene and the cytomegalovirus minimal promoter. Segments of the 5' region with promoter activity were identified.

Antigens, CD↗

Construction of phosphorylatable monoclonal antibody to a tumor-associated antigen.

A phosphorylation site was introduced into chimeric monoclonal antibody B72.3 (MAb-chB72.3) by site-specific mutation of the coding sequence. The phosphorylation site for the cAMP-dependent protein kinase was positioned at the carboxyl terminus of the heavy-chain constant region of MAb-chB72.3. The resultant modified MAb-chB72.3-P was expressed in 293 cells and purified. The MAb-chB72.3-P protein was phosphorylated by the catalytic subunit of cAMP-dependent protein kinase with [gamma-32P]ATP to high radiospecific activity. The 32P-labeled MAb-chB72.3-P protein bound to cells expressing the tumor-associated glycoprotein 72 antigen. The introduction of phosphorylation sites into MAbs provides a new type of MAb for the diagnosis and treatment of cancers.

Amino Acid Sequence↗

Switching on of the proliferation or apoptosis of activated human T lymphocytes by IFN-gamma is correlated with the differential expression of the alpha- and beta-chains of its receptor.

To find out how physiologically secreted IFN-gamma controls either the proliferation or the apoptosis of human T lymphocytes, the kinetics of expression of the alpha- and beta-chains of its receptor (IFN-gamma R) were sequentially followed on T lymphocytes first activated with PHA and then cultured in the presence of IL-2, and related to the kinetics of expression of Fas, Bcl-2, and IL-2R p55 chain. Both IFN-gamma R chains were poorly expressed on the membrane of resting T lymphocytes. Following their stimulation with PHA, IFN-gamma R alpha but not IFN gamma R beta-chain up-modulated before T lymphocyte entry into the S phase, and then IFN-gamma R alpha down-modulated when they passed through the S and G2/M. The ensuing proliferative response was inhibited by an anti-IFN-gamma R alpha mAb that impeded the binding of IFN-gamma. When PHA-activated T lymphoblasts were cultured for 16 days with IL-2, IFN-gamma R alpha expression increased, whereas that of the beta-chain remained barely detectable. Fas and Bcl-2 were both highly expressed. When these T lymphoblasts were restimulated by PHA, OKT3, or Staphylococcus enterotoxin beta-pokeweed mitogen, both chains up-modulated and most cells underwent apoptosis in a way apparently independent of Bcl-2, but not of Fas. This apoptosis, too, was prevented by the anti-IFN-gamma R alpha mAb. Physiologically secreted IFN-gamma is thus involved in the activation of resting T lymphocytes and in the apoptosis of reactivated lymphoblasts. However, high expression of IFN-gamma R beta took place when IFN-gamma induced apoptosis, but not when it induced proliferation. In conclusion, a correlation exists between differential expression of the IFN-gamma R beta-chain and the delivery by IFN-gamma of proliferative or apoptotic signals.

Antibodies, Monoclonal↗

Other kinases can substitute for Jak2 in signal transduction by interferon-gamma.

Each cytokine which utilizes the Jak-Stat signal transduction pathway activates a distinct combination of members of the Jak and Stat families. Thus, either the Jaks, the Stats, or both could contribute to the specificity of ligand action. With the use of chimeric receptors involving the interferon gamma receptor (IFN-gammaR) complex as a model system, we demonstrate that Jak2 activation is not an absolute requirement for IFN-gamma signaling. Other members of the Jak family can functionally substitute for Jak2. IFN-gamma can signal through the activation of Jak family members other than Jak2 as measured by Statlalpha homodimerization and major histocompatibility complex class I antigen expression. This indicates that Jaks are interchangeable and indiscriminative in the Jak-Stat signal transduction pathway. The necessity for the activation of one particular kinase during signaling can be overcome by recruiting another kinase to the receptor complex. The results may suggest that the Jaks do not contribute to the specificity of signal transduction in the Jak-Stat pathway to the same degree as Stats.

Animals↗

Differential responsiveness of a splice variant of the human type I interferon receptor to interferons.

Chinese hamster ovary cells containing the yeast artificial chromosome F136C5 (alphaYAC) respond to all type I human interferons including IFN-alphaA, IFN-beta, and IFN-omega. The alphaYAC contains at least two genes encoding interferon-alpha receptor (IFN-alphaR) chains that are required for response to type I human interferons: Hu-IFN-alphaR1 and Hu-IFN-alphaR2. We previously isolated a splice variant of the Hu-IFN-alphaR1 chain designated Hu-IFN-alphaR1s. Chinese hamster ovary cells containing a disrupted alphaYAC, which contains a deletion in the human IFNAR1 gene, were transfected with expression vectors for the Hu-IFN-alphaR1 and Hu-IFN-alphaR1s chains. With these cells, two type I interferons have been identified which can interact with the splice variant (Hu-IFN-alphaR1s) and with the Hu-IFN-alphaR1 chains: Hu-IFN-alphaA and IFN-omega. Two other type I interferons, Hu-IFN-alphaB2 and Hu-IFN-alphaF, are capable of signaling through the Hu-IFN-alphaR1 chain only and cannot utilize the splice variant Hu-IFN-alphaR1s. Hu-IFN-alphaR1 and Hu-IFN-alphaR1s differ in that the latter is missing a single subdomain of the receptor extracellular domain encoded by exons 4 and 5 of the IFNAR1 gene. These results therefore indicate that different type I interferons require different subdomains of the Hu-IFN-alphaR1 receptor chain, and that the splice variant chain (Hu-IFN-alphaR1s) is functional.

Amino Acid Sequence↗

Genomic organization and promoter analysis of the gene ifngr2 encoding the second chain of the mouse interferon-gamma receptor.

A clone containing the gene ifngr2 for the second chain (IFN-gamma R2) of the mouse interferon gamma receptor complex was isolated from a cosmid library made of 129/Sv mouse genomic DNA. Sequence analysis revealed that the second chain is encoded by 7 exons. The complete gene spans about 17 kb of the genomic DNA. In the 5'-flanking region several transcription initiation sites between 27 and 136 nucleotides upstream from the translation initiation codon were mapped. This region has a high GC content, but no TATA or CAAT box. Potential binding sites were found for transcription factors Sp1, AP-2, NF1, EGR and NF kappa B. Promoter activity was assayed with a series of constructs with firefly luciferase as a reporter gene, under the control of the promoter fragments of various lengths. This region showed promoter activity in transiently transfected Chinese hamster ovary cells.

Animals↗

The intracellular domain of the second chain of the interferon-gamma receptor is interchangeable between species.

In this report we show that the mouse interferon (IFN)-gamma R1 and IFN-gamma R2 subunits expressed in hamster cells are capable of rendering the cells sensitive to mouse IFN-gamma as measured by induction of class I MHC antigens and the activation of the transcription factor Stat1 alpha. However, these cells showed no antiviral protection in response to IFN-gamma when challenged with vesicular stomatitis virus (VSV) but limited protection when challenged with encephalomyocarditis virus (EMCV). Furthermore, the cytoplasmic domains of the IFN-gamma R2 subunits, like the cytoplasmic domains of the IFN-gamma R1 chains, can be interchanged between species with no loss of biologic activity, demonstrating that the species-specific interaction of the IFN-gamma R1 and IFN-gamma R2 chains involves only the extracellular domains of the two proteins.

Amino Acid Sequence↗

New vectors for manipulation and selection of functional yeast artificial chromosomes (YACs) containing human DNA inserts.

A set of fragmentation vectors is described which produce a deletion series of smaller yeast artificial chromosomes (YACs) from a larger parent YAC with the insertion of a eukaryotic selectable marker. In addition, new vectors were designed to permit integration of the genes encoding neomycin (neo) or hygromycin B (hyg) resistance into YACs containing inserts of human DNA. All these vectors are compatible with the yeast host strain AB1380, in which most human genomic YAC libraries are maintained. Linearized vector DNA is used to transform yeast cells in which homologous recombination between human DNA in the YAC and the Alu sequence in the fragmentation or integrating vector produces terminal deletions from the acentromeric (URA3) end of the YAC or insertion of the vector into the YAC, respectively. A set of directional deletions of a YAC is useful for genomic mapping, restriction analysis and functional measurements of large chromosomal regions. The neo and hyg eukaryotic markers permit the study of gene function after introduction of deleted YACs into mammalian cells. Transformation of YACs with the fragmentation vectors resulted in fragmentation in 21-46% of the clones examined; transformation with the integrating vector resulted in integration in 46% of the clones examined.

Base Sequence↗

Knockout and reconstitution of a functional human type I interferon receptor complex.

The functional subunits of the human Type I interferon (IFN) receptor complex have not been defined. Using site-specific recombination in a yeast artificial chromosome (YAC), we have produced a deletion within the human IFN-alpha receptor (Hu-IFN-alpha R1) gene which eliminates exon II of the gene. This deletion effectively eliminates the MHC Class I antigen induction and antiviral activity previously reported for this fully functional parental YAC clone (Soh, J., Mariano, T. M., Lim, J.-K., Izotova, L., Mirochnitchenko, O., Schwartz, B., Langer, J., and Pestka, S. (1994c) J. Biol. Chem. 269, 18102-18110). We have successfully reconstituted this activity by expression of the cDNA encoding the Hu-IFN-alpha R1 component (Uzé, G., Lutfalla, G., and Gresser, I. (1990) Cell 60, 225-234) in cells containing the YAC with this deletion. The Hu-IFN-alpha R1 subunit thus plays a critical role in the functional human Type I IFN receptor complex, whose components are encoded on this YAC. In addition, as binding of ligands is retained in the cells containing the YAC with the deletion, it is clear a second subunit encoded on the YAC is responsible for ligand binding activity. This system will now allow the identification of additional subunits involved in the response to the Type I IFNs and the functional significance of each.

Chromosomes, Artificial, Yeast↗

Expression of a functional human type I interferon receptor in hamster cells: application of functional yeast artificial chromosome (YAC) screening.

The previously cloned human interferon alpha/beta (Hu-IFN-alpha/beta; Type I interferon) receptor cDNA appears to be only one component of a receptor complex since expression of the cDNA in mouse cells confers sensitivity only to Hu-IFN-alpha B2, but a monoclonal antibody against this cloned receptor subunit inhibits biological activities of Hu-IFN-alpha A, Hu-IFN-alpha B2, Hu-IFN-omega, and Hu-IFN-beta. Here we report that a yeast artificial chromosome (YAC) containing a segment of human chromosome 21 introduced into Chinese hamster ovary (CHO) cells confers upon these cells a greatly enhanced response to Hu-IFN-alpha A and Hu-IFN-alpha B2 as well as an increased response to Hu-IFN-omega, Hu-IFN-alpha A/D(Bgl), andd Hu-IFN-beta. These responses were measured by induction of class I MHC antigens and by protection against encephalomyocarditis virus and vesicular stomatitis virus. Furthermore, these cells exhibit specific high affinity binding of Hu-IFN-alpha A and Hu-IFN-alpha B2, Hu-IFN-beta, and Hu-IFN-omega. The results indicate that all the genes necessary to reconstitute a biologically active Type I human IFN receptor complex are located within the human DNA insert of this YAC clone.

Animals↗