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Biomedical subjects

T W Reid

Publications and source records attributed to T W Reid.

At least 19 recordsLinked to original sources

Human retinoblastoma Y79 cells contain both insulin-specific mRNA and insulin-binding sites.

We previously reported the presence of insulin-like immunoreactivity in cells from the human retinoblastoma Y79 cell line. In the present study, in situ DNA hybridization techniques were applied, using a human insulin cDNA probe to investigate whether the insulin-like activity is due to local synthesis of insulin. Our results suggest that Y79 cells contain mRNA for the synthesis of insulin or a homologous peptide. In addition, 125I-insulin binding autoradiographic studies show that these cells also contain specific insulin-binding sites. It is suggested that insulin may play an autocrine and/or paracrine role in the maintenance and metabolism of the Y79 retinoblastoma cells.

Autoradiography

In vitro antimicrobial activity of defensins against ocular pathogens.

New approaches to antimicrobial therapy for ocular pathogens must overcome organisms that are resistant to current therapeutic modalities. This investigation examined the antimicrobial activity of novel antimicrobial neutrophil peptides (defensins NP-1 and NP-5) against isolates from clinical ocular microbial infections in humans and horses. The test panel of human clinical isolates included Candida albicans, an alpha-hemolytic Streptococcus, Streptococcus pneumoniae, Pseudomonas aeruginosa, and Morganella morganii. The test panel of equine pathogens included three clinical isolates of P aeruginosa and two clinical isolates of Staphylococcus aureus. The equine isolates were chosen for their relative resistance to commonly employed antimicrobial therapy. The two defensins differed markedly in their bactericidal activity. Defensin NP-5, at a 50-micrograms/mL concentration, exhibited minimal bactericidal activity against the majority of isolates of the test panel. The inferior microbicidal activity of NP-5 is consistent with previously published results. However, at this concentration, NP-5 did exhibit appreciable bacteriostatic activity against human ocular pathogens M morganii (74%), alpha-hemolytic Streptococcus (57%), and P aeruginosa (93%) during the 2-hour incubation period. In contrast, defensin NP-1 at 10 micrograms/mL exerted potent microbicidal activity against all isolates, effecting a 2 to 3 log10 decrease in colony-forming units within a 60-minute incubation period. Under the assay conditions employed, these findings demonstrate: (1) two distinct mechanisms by which defensins exert their antimicrobial activity against microbial pathogens associated with clinical ocular disease in humans and horses, and (2) that rabbit defensin NP-1 is a potent antimicrobial agent against a wide array of ocular pathogens.

Animals

The labile nature of the insulin signal(s) for the stimulation of DNA synthesis in mouse lens epithelial and 3T3 cells.

A kinetic study was carried out to assess the stability of the intracellular signal(s) generated by insulin in quiescent cells for the stimulation of DNA synthesis. Using murine lens epithelial cells and Swiss 3T3 cells in culture, it was found that insulin stimulated DNA synthesis after a lag of 14.5 h. If, however, 6 h after the addition of insulin to the cells, the insulin-containing media were totally removed, followed by the addition of fresh media (even if insulin was returned to the medium within approximately 10 min), a 14.5-h lag still remained after insulin readdition before DNA synthesis started. In another set of experiments, the insulin was removed after 6 h by diluting its concentration approximately 60,000-fold. In this case, if insulin was at the diluted concentration for approximately 60 min before being added back, a full 14.5 h was necessary for the start of DNA synthesis. The half-time for loss of signal was 2 +/- 1 min for total washout and 18.4 +/- 0.5 min for the dilution experiment. These results indicate that the intracellular signal(s) for DNA synthesis produced by the binding of insulin to its cellular receptor are extremely transitory in nature. The signal disappears at approximately the same rate that insulin dissociates from the receptor. Thus, insulin must be constantly binding to the membrane receptor in order to keep the key signal(s) at a high enough level for the cell to progress on to S phase. Early events, such as specific protein synthesis, changes in ion flux, changes in cellular metabolism, and changes in cellular pH, may be essential, but they are not sufficient to cause a cell to progress on to S phase. Addition of sodium vanadate to the cell is found to stabilize the messenger such that there is no loss of signal when insulin is removed. These data are consistent with the tyrosine-phosphorylated insulin receptor or a product of its action being the signal.

Animals

Vanadate stimulation of phosphotyrosine protein levels in quiescent Nakano mouse lens cells.

Incubation of quiescent Nakano mouse lens epithelial cells with sodium orthovanadate resulted in time- and concentration-dependent stimulation of protein tyrosine phosphorylation levels in the cells. Protein tyrosine phosphorylation in the 27,000 g pellet showed a 100% stimulation by vanadate. However, upon detergent solubilization, 30% activation of basal endogenous tyrosine phosphorylation was observed but no additional increase was obtained with vanadate. Protein phosphotyrosine phosphatase activity was found in both pellet and cytosolic fractions of the cell. Vanadate inhibited these activities with an IC50 of 57 microM in the cytosolic fraction and 3 microM in the pellet. These data suggest that vanadate increases phosphotyrosine protein levels in these cells by inhibition of a membrane-associated tyrosine-specific phosphatase rather than by activation of protein tyrosine kinases. These data correlate well with the vanadate stimulation of DNA synthesis in these cells, thus indicating a role for phosphotyrosine proteins in regulation of cell division in these cells.

Animals

Identification of the EDTA-extractable protein in lens as calpactin I.

The EDTA-extractable protein (EEP) is a major extrinsic protein of lens membrane. The 35 kilodalton (kDa) polypeptide of the EEP cross-reacted to antibody prepared against calpactin I, a substrate for the src protein and an inhibitor of phospholipase A2. Calpactin I is also thought to play a structural role in linking cytoskeleton to membrane. The 35 kDa protein in bovine lens contained phosphotyrosine residues that can be detected by affinity purified antibody to this moiety. Although there is some microheterogeneity of EEP using two dimensional gel electrophoresis, at least one of the chick polypeptides, immunoreactive for calpactin I, can be phosphorylated in whole lens culture. These results suggest a regulatory function for the EEP in lens.

Animals

Insulin-like immunoreactivity in human retinoblastoma Y79 cell line.

Cells from the Y79 human retinoblastoma cell line were examined by immunofluorescence immunocytochemistry using an antiserum against insulin. All the cells showed intense staining, indicating the presence of insulin-like immunoreactivity in these cells. Our observations suggest that insulin may play an important role in the metabolism of retinoblastoma cells and that it may be possible to use this cell line as an in vitro model for studies on the action of insulin in the metabolism of human retinal cells.

Cell Line

Aluminum ions stimulate mitosis in murine cells in tissue culture.

Addition of aluminum to the culture medium of Nakano mouse lens epithelial (NMLE) cells and Swiss 3T3K cells induced both 3H-thymidine incorporation and mitosis. This is in contrast to other metal ions such as vanadium, which, at concentrations high enough to increase 3H-thymidine incorporation, actually inhibits mitosis (Jones and Reid, J Cell Physiol 121:199, 1984). Aluminum concentrations between 20 microM and 50 microM were most effective. The 3T3 cells respond to aluminum with a 7.6-fold increase, and NMLE cells respond with a 21-fold increase in 3H-thymidine incorporation. DNA synthesis in NMLE cells was also found to be synergistically stimulated by aluminum and low concentrations of insulin (4.5 X 10(-8) M). A 3.25-hr incubation with 50 microM aluminum was sufficient to induce 50% of maximum 3H-thymidine incorporation during the 40-hr assay. Aluminum-stimulated 3H-thymidine incorporation is inhibited by hydroxyurea, and aluminum causes an increase in cell number. Also, by sedimentation equilibrium analysis of the product of aluminum-stimulated DNA synthesis it was found that a single copy of DNA was synthesized following addition of aluminum to quiescent cells. These facts indicate that aluminum induces both S-phase DNA synthesis and mitosis. However, only 48% of the NMLE cells found to be labeled with DNA went on to divide. In contrast, although only a small percentage of 3T3 cells were found to be labeled after aluminum treatment, all of these cells appeared to go through mitosis.

Alum Compounds

Bovine retinal glutamine synthetase 1. Purification, characterization and immunological properties.

Glutamine synthetase (GS) from bovine retina was purified to apparent homogeneity by ammonium sulfate fractionation followed by Sephacryl S-200, hydroxylapatite, and Sephadex G-150 chromatography. The purified enzyme showed a single band on polyacrylamide gel electrophoresis. Based on the purification data, retinal GS was shown to be approximately 2% of the total soluble retinal protein. By gel filtration, sedimentation velocity centrifugation, and gel electrophoresis, it was shown that the enzyme has a subunit molecular weight of 45 000 daltons and a native molecular weight of 360 000 daltons, which is consistent with an octameric structure. Throughout the various stages of purification, it was found that GS and glutamyl transferase (GT) activities were maintained at a constant ratio. Thus, the GS and GT reactions are catalyzed by the same enzyme. Immunodiffusion of antiretinal GS antibodies gave a single line of precipitation with both crude retinal and brain enzymes as well as purified enzyme preparations. Precipitation lines of retinal and brain enzymes completely fused with each other without any spur formation. The immunochemical titration of brain enzyme activity with antiretinal GS antibodies also revealed an immunological homology between retinal and brain enzymes.

Amino Acids

Bovine retinal glutamine synthetase 2. Regulation and properties on the basis of glutamine synthetase and glutamyl transferase reactions.

Glutamine, the end product formed by the glutamine synthetase (GS) reaction, inhibits retinal GS activity in the presence of Mn2+, but not in the presence of Mg2+. In the presence of Mg2+, Mn2+ itself inhibits retinal GS activity. Other compounds which inhibit retinal GS activity significantly are methionine sulfoximine, D-alanine and carbamyl phosphate. Amino acids, such as L-alanine, L-serine and glycine, do not affect the enzyme activity. These amino acids, however, significantly inhibit the enzyme activity when measured on the basis of the glutamyl transferase (GT) reaction. GS isolated from neuronal tissues is regulated differently from that previously reported by others for non-neuronal tissues. The enzyme activity, as measured by GS activity, shows three-fold higher activity with Mg2+ over Mn2+ or Co2+ and on the basis of GT activity, shows about three-fold higher activity with Mn2+ over Mg2+ or Co2+. The optimum pH for the GS reaction lies in the range of 7.2-7.8 and for the GT reaction is 6.4-7.0. Both the GS and GT activities of the enzyme show similar heat stabilities.

Animals

Sodium orthovanadate stimulation of DNA synthesis in Nakano mouse lens epithelial cells in serum-free medium.

Quiescent cultured Nakano mouse lens cells incubated for 40 hours with sodium orthovanadate incorporated 3H-thymidine at an accelerated rate; the greatest response occurred at 20 microM vanadate, whereas by 2 microM an incorporation rate equivalent to unstimulated cells was noted. Microscopic examination of the cells revealed that those exposed to concentrations of vanadate greater than 100 microM had lysed by the end of the 40-hour incubation. Reduction in vanadate exposure time to 1 hour caused the cells to incorporate the greatest amount of 3H-thymidine at a vanadate concentration of 200 microM to 500 microM. Half-maximum incorporation of 3H-thymidine (after a 40-hour incubation) was induced by a 2-hour incubation with 20 microM vanadate. Studies with insulin showed that while 20 ng/ml insulin alone did not increase 3H-thymidine incorporation, 20 ng/ml insulin in combination with 20 microM vanadate resulted in a significant increase in 3H-thymidine uptake over cells exposed to only vanadate. Insulin alone will increase cell number and insulin with vanadate are synergistic in the stimulation of DNA synthesis, but the two together show no further increase in cell number over that produced by insulin alone. Thus, vanadate can increase progression from G1/G0 to S-phase, but cannot stimulate cells to divide. Studies designed to detect DNA damage and repair rather than S-phase DNA synthesis demonstrated that vanadate was not causing increased 3H-thymidine uptake by damaging DNA. Cell counts revealed that vanadate, while able to induce DNA synthesis, does not induce mitosis. Autoradiography and equilibrium sedimentation experiments demonstrated that gene amplification was not occurring. A known vanadate exchange inhibitor blocked the ability of vanadate to increase 3H-thymidine incorporation which is consistent with the idea that cellular internalization of vanadate is required for this effect to be seen. 86Rb+ uptake experiments demonstrate that the vanadate concentration inducing 50% inhibition of (Na+, K+)ATPase is nearly two orders of magnitude more concentrated that vanadate concentrations shown capable of inducing 3H-thymidine uptake. This strongly suggests that (Na+, K+)ATPase inhibition is not the central mechanism by which DNA synthesis is stimulated by vanadate.

Animals

Growth-stimulatory effects of retinoblastoma-derived growth factors and other mitogens on Nakano mouse lens epithelial cells.

A polypeptide growth factor (RDGF) secreted by a human retinoblastoma cell line (Y-79) grown in serum-free defined medium stimulated DNA synthesis up to 36-fold and cellular proliferation by 100% upon 3 days of exposure to quiescent Nakano mouse lens epithelial cells (NKR-11) deprived of serum supplements. The stimulation of DNA synthesis produced by RDGF in the absence of serum could be further potentiated by the presence of 0.1 microgram/ml of insulin or 0.1 microgram/ml of arginine vasopressin. 12-O-tetradecanoyl-phorbol-13-acetate (TPA), on the other hand, produced a 30-40% decrease in RDGF activity at 0.01-1.0 microgram/ml of TPA. The stimulation of DNA synthesis produced by RDGF, and its potentiation by the simultaneous addition of insulin, could be sustained after transient exposure (30 min) to RDGF, or RDGDF plus insulin, respectively, whereas insulin alone as little effect after exposures of up to 6 h. Nerve growth factor (1.0 pg to 1.0 microgram/ml) did not stimulate DNA synthesis or cell division in NKR-11 cells, whereas fibroblast growth factor (FGF) produced an optimal 3-fold stimulation of DNA synthesis at 10 ng/ml. Epidermal growth factor (EGF) activity was optimal and showed a 5-fold increase in DNA synthesis at 100 pg/ml in NKR-11 cells. The early receptor-mediated events that might be responsible for the transition to a proliferative state in quiescent Nakano mouse lens epithelial cells are discussed.

Animals

Use of reversed-phase high-performance liquid chromatography for simultaneous determination of glutamine synthetase and glutamic acid decarboxylase in crude extracts.

Glutamine and gamma-aminobutyric acid (GABA), formed from glutamic acid in crude tissue extracts by glutamine synthetase and glutamic acid decarboxylase respectively, were separated by derivatization with dansyl chloride followed by reversed-phase high-performance liquid chromatography on the Altex Ultrasphere ODS-5 column. The mobile phase was a gradient of 100 mM potassium dihydrogen phosphate (pH 2.1) with 0-40% acetonitrile. The amounts of glutamine and GABA formed from glutamic acid were determined under different reaction conditions.

Animals

Processive nature of reverse transcription by avian myeloblastosis virus deoxyribonucleic acid polymerase.

The ribonucleic acid dependent deoxyribonucleic acid polymerase from avian myeloblastosis virus was shown to synthesize poly(dT) transcripts by a processive mechanism using poly(rA)1100.oligo(dT)12-18 as template and primer. Template challenge experiments demonstrate that at low temperature and ionic strength, the polymerase remains bound to the completed template-daughter strand complex after completion of daughter strand elongation. Higher temperatures and ionic strength increase the dissociation of the enzyme from the complex, thus reducing transcript length. Analysis of product size and quantity indicates that the degree of processivity is also influenced by the types and concentrations of metal ions present and indicates that the metal ions affect the activity of the poly(rA) as a template more than they affect processivity or enzyme activity. The results also lead to the conclusion that initiation is the rate-limiting step under all of our experimental conditions. The arguments for a processive as opposed to distributive mechanism are based on an analysis of enzyme-template interactions, product size, and amount of product made under specific reaction conditions.

Avian Leukosis Virus

Apparent allosterism by avian myeloblastosis virus reverse transcriptase and E. coli DNA polymerase I.

A recent report (1) presented evidence for allosterism in reverse transcription by Mason-Pfizer monkey virus reverse transcriptase and by E. coli DNA polymerase I. Our experiments also demonstrate these apparent cooperative effects when synthesis is catalyzed by either avian myeloblastosis virus DNA polymerase, feline sarcoma virus DNA polymerase, or E. coli DNA polymerase I (large fragment). We show that the apparent cooperativity depends on the use of oligo(dT)12-18 as primer. However, if the polymerase reaction products are isolated chromatographically, then the polymerases obey classical Michaelis-Menten kinetics with respect to substrate and enzyme concentrations. These results suggest that the cooperative effects are an acid precipitation artifact. The results are also consistent with the enzyme operating by a distributive mechanism with the oligo(dT)12-18 primer.

Allosteric Regulation

Characteristics of a retrovirus associated with a hamster melanoma.

The continuous culture of a hamster melanoma cell line has led to the spontaneous appearance of a retrovirus (HaRV) with typical type-C characteristics. The virus differs from all other known hamster viruses in its ability to transform murine as well as rat and hamster cells with apparent one-hit kinetics. Guinea pig, human and feline cells were not transformed although reverse transcriptase activity was detected in the supernatant from infected human cells. HaRV-transformed hamster embryo cells produced solid tumours (all non-pigmented) in 4 out of 35 animals when injected into hamsters while HaRV-transformed murine cells produced no tumours in mice. Injection of HaRV alone in hamsters, mice and rabbits did not induce tumours. HaRV possesses a 70S RNA which dissociates to 35S in DMSO and has a reverse transcriptase which utilizes the 70S virus RNA as a template. The size, morphology and density (1.15 g/ml) are similar to other known type-C viruses. Polyacrylamide gel electrophoresis indicates the presence of polypeptides analogous to those found in other type-C viruses.

Animals

Biochemical and immunological properties of the reverse transcriptase associated with a hamster retrovirus.

Several properties of an RNA-directed DNA polymerase associated with a hamster retrovirus (HaRV) were examined and found to be similar to other polymerases from mammalian type-C viruses in that the enzyme (i) is more active with Mn2+ than Mg2+, (ii) uses the reverse transcriptase-specific poly(rCm).oligo(dG) template, (iii) possesses substantial endogenous polymerase activity and (iv) is strongly inhibited by homologous antisera and moderately inhibited by antisera directed against other type-C viruses. In contrast to previous reports of polymerases from other hamster viruses, HaRV polymerase is active in endogenous assays and the activity is associated with a 70,000 mol. wt. polypeptide in highly purified virions and with 70,000 and 85,000 mol. wt. polypeptides in fresh, unpurified virus. Only one major peak of polymerase activity eluted from DEAE-cellulose while subsequent elution of this peak from phosphocellulose produced two major peaks of polymerase activity. The mol. wt. of these two peaks were 70,000 and 85,000 by glycerol density-gradient sedimentation. The HaRV reverse transcriptase and p30 were found to be most closely related antigenically to other rodent retrovirus proteins.

Animals