PubMed Health⌕ Search

Biomedical subjects

S C Kiley

Publications and source records attributed to S C Kiley.

25 records · Page 2Linked to original sources

Differential regulation of protein kinase C isozymes by thyrotropin-releasing hormone in GH4C1 cells.

GH4C1 cells, which express Ca(2+)-dependent alpha- and beta- as well as Ca(2+)-independent gamma-, epsilon- and zeta-protein kinase C (PKC) isozymes, provide a cell culture model for studying isozyme-specific properties and functions. Hormonal activation of PKCs regulates the differentiated functions of these cells, namely secretion and synthesis of prolactin (PRL). We previously reported that thyrotropin-releasing hormone (TRH) selectively down-modulates epsilon-PKC with no effect on alpha- or beta-PKCs (Kiley, S.C., Schaap, D., Parker, P., Hsieh, L.-L., and Jaken, S. (1990) J. Biol. Chem. 265, 15704-15712). We now extend those studies to explore the relationship between TRH-stimulated diacylglycerol (DAG) levels and epsilon-PKC down-modulation. TRH stimulates three distinct DAG phases in GH cells. Phase 1 DAG peaks at 15 s, is accompanied by a 6-fold increase in intracellular Ca2+, and causes the redistribution of alpha-, beta-, delta, and epsilon-PKC isozymes from a soluble to a detergent-insoluble particulate compartment. Phase 2 DAG peaks at 10 min, is not associated with a Ca2+ signal, and does not activate PKC by any criteria tested. Phase 3 DAG peaks at 6 h and is sustained through 12 h. This novel DAG phase is not associated with increased intracellular Ca2+. The time course of phase 3 DAG formation corresponds to the time course of TRH-stimulated epsilon-PKC down-regulation; maximal effects are observed at 6-12 h for both events. Unlike alpha-, beta-, and delta-PKCs which are preferentially distributed in the soluble fraction of resting GH cells, epsilon-PKC is also distributed in the detergent-insoluble particulate fraction. The selective compartmentalization of epsilon-PKC in the particulate fraction may render this pool uniquely susceptible to proteolytic degradation. The time course of phase 3 DAG formation and epsilon-PKC down-modulation corresponds to the time course of decreasing PRL message synthesis in GH4 cells. The data suggests that loss of epsilon-PKC may be associated with the down-regulation of prolactin synthesis and that regulation of PRL gene transcription may be an epsilon-PKC-specific function in GH cells.

Animals↗

Activation of alpha-protein kinase C leads to association with detergent-insoluble components of GH4C1 cells.

TRH and phorbol dibutyrate (PDBu) stimulate PRL secretion and synthesis from GH4C1 rat pituitary cells through activation of protein kinase C (PKC). TRH responses are mediated by increases in cellular levels of two PKC activators, Ca2+ and diacylglycerol (DAG), whereas PDBu acts as a DAG analog. We conducted experiments to compare the effects of Ca2+ and PDBu/DAG on alpha-PKC redistribution and to determine to what components of the particulate fraction activated alpha-PKC associates. Subcellular fractionation experiments demonstrated that TRH and PDBu both caused chelator-stable association of alpha-PKC with the particulate fraction. In contrast, Ca2+-mediated association with the particulate fraction was not chelator stable. Immunocytofluorescence experiments also demonstrated that TRH, PDBu, and increased cytosolic Ca2+ (due to ionomycin or K+ depolarization) caused redistribution. The effect of TRH was rapid and transient, similar to TRH stimulation of phospholipase C. The translocated alpha-PKC in the particulate fraction from TRH- or PDBu-treated cultures was not solubilized with Triton X-100. In comparable studies using an immunofluorescence assay, alpha-PKC immunofluorescence remained in detergent-insoluble preparations from TRH- and PDBu-stimulated, but not resting cells. The association of activated alpha-PKC with chelator- and detergent-insoluble material suggested that activated alpha-PKC may be associated with membrane and cytoskeletal components.

Animals↗

Monoclonal antibodies specific for type 3 protein kinase C recognize distinct domains of protein kinase C and inhibit in vitro functional activity.

Monoclonal antibodies (mAbs) which distinguish Type 3 protein kinase C (PKC) from Types 1 and 2 have been obtained from mice immunized with purified Type 3 PKC from rabbit brain cytosol. Most of these mAbs (seven out of eight) selectively recognize Type 3 versus Types 1 and 2 PKC in both enzyme-linked immunosorbent and immunoblot assays. Trypsin treatment of Type 3 PKC reduced the immunoreactivity with 82-kDa PKC and generated immunoreactive fragments of 45 and 35 kDa. The mAbs can be divided into two classes based on their ability to recognize the 45-kDa catalytic fragment (5/8) or the 35 kDa regulatory domain fragment (3/8). Each of the mAbs inhibits phosphorylation of histone or lipocortin by PKC, although the extent of the inhibition varied. Only those mAbs that recognize the 35-kDa regulatory domain inhibited phorbol ester binding. The inhibition of both kinase and binding activities by this group of mAbs was sensitive to the concentration of phospholipid used in the assay. This functional inhibition suggests that these mAbs may be useful for defining the phospholipid binding domain(s) of Type 3 PKC. The mAbs recognized 82-kDa PKC in a variety of cell types; the presence of smaller molecular weight fragments was not consistently found. Distinct immunofluorescence staining patterns were observed with mAbs directed toward different epitopes, suggesting that there may be heterogeneity in the subcellular localization of PKC. The type specificity of these mAbs will make them valuable tools for studying activation and regulation of Type 3 PKC in cell culture model systems.

Animals↗

Purification and characterization of three types of protein kinase C from rabbit brain cytosol.

Three types of protein kinase C were purified from rabbit brain cytosol. Each type has a molecular mass of approximately 80 kDa and serves as a receptor for phorbol esters. Polyclonal antibodies produced to two protein kinase C types were relatively type-specific, indicating that these proteins have unique antigenic determinants. We, therefore, characterized the enzymatic activities to determine if these proteins also had distinct biochemical properties. Type 1 protein kinase C was relatively less Ca2+-dependent than types 2 and 3. The addition of Ca2+ increased Vmax approximately 40% for type 1,600% for type 2, and 1400% for type 3 as compared to the Vmax measured at lower Ca2+ conditions. These results suggest that differences in primary structure can confer type-specific biochemical properties, and this in turn may provide the basis for protein kinase C type-specific stimulus-response coupling.

Animals↗

Large granular lymphocytes provide an accessory function in the in vitro development of influenza A virus-specific cytotoxic T cells.

We report that large granular lymphocytes (LGL) have an accessory function in the development of cytotoxic T cells (Tc) through the production of soluble factor(s). LGL and T cells were separated on Percoll gradients and the ability of the separated and of the recombined LGL and T cells to generate influenza A virus-specific Tc activity was measured. When stimulated by virus-infected, irradiated, adherent cells, neither LGL nor T cells cultured separately produced Tc activity. When they were co-cultured, however, even if separated by a 0.22-micron pore size membrane, Tc responses were readily generated from the small T cell precursors and natural killer activity was maintained in the LGL. Thus, LGL were required as accessory cells for Tc responses to occur and the effect was mediated by a soluble factor(s). alpha-Interferon (IFN) was produced in cultures containing LGL and/or stimulating adherent cells, whereas gamma-IFN was only produced in cultures containing both LGL and T cells. Therefore, neither alpha- nor gamma-IFN appeared to be the LGL produced soluble factor that mediated the accessory effect of LGL on Tc responses.

Antigens, Viral↗

Recovery from a viral respiratory tract infection. IV. Specificity of protection by cytotoxic T lymphocytes.

Immune spleen cells enhanced for influenza-specific cytotoxic activity after exposure to virus-infected stimulator cells in vitro effect recovery when transferred to nude and immunocompetent mice with influenza pneumonia (5). This protective effect correlated with the virus-specific cytotoxic activity of the transferred lymphocytes and is removed by treatment with anti-0 serum and complement. The experiments presented here indicate that spleen cells taken directly from mice undergoing a primary or secondary infection are less protective than immune spleen cells that are restimulated in vitro before transfer. This decreased ability to clear pulmonary virus and effect survival correlated with their relatively lower levels of influenza-specific cytotoxicity. Protection did not correlate with the level of natural killer cell activity of transferred cells. The results also indicate the immune spleen cells that are protective are influenza A subtype cross-reactive and are H-2-restricted; H-2d immune spleen cells effected recovery of H-2d but not H-2k challenged mice.

Animals↗

Mitogenicity of influenza hemagglutinin glycoproteins and influenza viruses bearing H2-hemagglutinin.

The hemagglutinin glycoprotein is responsible for the mitogenic effect of influenza A viruses of the H2N2 subtype. This was indicated by the ability of viruses bearing the H2-hemagglutinin glycoprotein, regardless of its associated neuraminidase, to induce lymphocyte proliferation in normal spleen cell suspensions and by the ability of antisera with specificity for the H2-hemagglutinin to block this response. Moreover, purified hemagglutinin from representative viruses from the H0N1, H1N1, H2N2, H3N2, and influenza B subtypes were also shown to be mitogenic.

Glycoproteins↗