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J M Gunn

Publications and source records attributed to J M Gunn.

At least 19 recordsLinked to original sources

Alteration of glycerolipid and sphingolipid-derived second messenger kinetics in ras transformed 3T3 cells.

The effect of ras transformation (rasB fibroblasts) on basal and serum-stimulated diacylglycerol (DAG) composition and mass was examined over time with respect to changes in membrane phospholipid composition and ceramide mass. RasB cells vs. nontransformed control cells (rasD and NR6) had chronically elevated DAG levels (up to 240 min) following serum stimulation, indicating a defect in the recovery phase of the intracellular DAG pulse. Ras transformation also had a dramatic effect on DAG composition. Molecular species analysis revealed that DAG from unstimulated rasB cells was enriched in the delta 9 desaturase fatty acyl species (monoenoate 18:1(n - 7) and 18:1(n - 9)), and depleted in arachidonic acid (20:4(n - 6)). With the exception of glycerophosphoinositol (GPI), DAG remodeling paralleled the compositional alterations in individual phospholipid classes. Importantly, ras transformation altered the fatty acyl composition of sphingomyelin, a precursor to the ceramide second messenger. With the addition of serum, control cells (rasD) had a progressive increase in ceramide mass with levels approximately 5-fold higher by 240 min. In contrast, ceramide levels did not increase in rasB cells at either 4 or 240 min. These results demonstrate that ras-oncogene, in addition to its effects on DAG metabolism, can also abolish the cellular increase in ceramide mass in response to serum stimulation. Since DAG and ceramide may have opposing biological functions, the prolonged elevation of DAG and the suppression of ceramide levels would be consistent with an enhanced proliferative capacity.

3T3 Cells

NIH3T3 cells transfected with the yeast H(+)-ATPase have altered rates of protein turnover.

NIH3T3 cells transfected with the yeast plasma membrane H(+)-ATPase (RN1a line) or transfected with a low-activity mutant H(+)-ATPase (N-Mut line) were used to examine the relationship between cytosolic pH (pHcyt) and protein turnover. At an extracellular pH (pHex) of 7.15, NIH3T3 and N-Mut cells have a pHcyt of 7-7.1 and a vacuolar pH (pHvac) of 6.3, whereas in RN1a cells both the pHcyt and the pHvac are 0.3 unit more alkaline. Rates of protein synthesis and degradation are optimum at pHex 7.2 and are much more sensitive to pH changes in RN1a cells than in NIH3T3 cells. However, irrespective of pH, rates of protein degradation in RN1a cells are always less than those measured in NIH3T3 cells. Rates of protein synthesis are the same for sparse cultures of RN1a and NIH3T3 cells and show a density-dependent decline in NIH3T3 cells but remain high in RN1a cells even at high cell densities. These data indicate that the elevation of pHcyt caused by transformation with the H(+)-ATPase has no direct effect on protein synthesis. On the other hand, rates of protein degradation are consistently lower in RN1a cells than in NIH3T3 or N-Mut cells. Basal rates of protein degradation, measured in medium containing 10 mM 3-methyladenine or 10% serum or 1 microM insulin, as well as the autophagic response to serum or insulin withdrawal, are both significantly lower in RN1a cells. These data indicate that transformation with the H(+)-ATPase has a direct effect on rates of protein degradation, possibly through an elevation of pH. The higher pHvac will directly effect lysosomal protein breakdown and the higher pHcyt may be permissive for maintenance of low basal rates of protein breakdown. Overall, we conclude that transformation with the H(+)-ATPase provides a permissive environment for high rates of protein synthesis and low rates of protein degradation that result in high rates of growth and the tumor phenotype.

3T3 Cells

Protein turnover in 3T3 cells transformed with the oncogene c-H-ras1.

We have examined protein turnover, growth, DNA synthesis and proliferation in three independent clones of 3T3-NR6 cells transformed with the oncogene c-H-ras1. We find that, firstly, the half-maximum concentration of serum and insulin regulating protein turnover in ras-transformed cells is significantly reduced from 0.5 to 0.3% for serum and from 4 nM to 0.5 nM for insulin, and, secondly, ras-transformed cells consistently have lower rates of protein degradation. The catabolic effect of conditioned medium or serum withdrawal is attenuated in transformed lines by maintaining lower basal rates of protein breakdown and higher basal rates of DNA and protein synthesis. Serum stimulation of growth in transformed cells is achieved in the short term by lower rates of protein breakdown rather than higher rates of protein synthesis: rates of protein synthesis become significantly higher 24 h after serum stimulation. Therefore transformed cells have higher rates of proliferation and grow to higher densities, but display characteristics common to normal cells because rates of protein synthesis decrease and protein degradation increase as a function of cell density. We conclude that higher basal rates of protein synthesis and growth with retention of the normal proliferative response to serum result from the pleiotropic nature of ras transformation, whereas lower rates of protein degradation and increased sensitivity to serum and insulin imply a direct regulatory role for ras.

3T3 Cells

Protein turnover, growth and proliferation in CHO cells. Variation within and between mutant classes for salvage pathway enzymes.

We have examined the clonal variation in rates of amino acid transport, protein synthesis, protein degradation, growth and proliferation for CHO cells with mutations in the purine and pyrimidine salvage pathways. First we compared three clonal cell lines, each with a different mutation, with the heterozygous parental line AT3-2. Overall, the correlation between rates of protein turnover, growth and proliferation was excellent. The slower growth and proliferation of one mutant, AB3 (TK-, APRT-), is explained by a low intrinsic rate of protein synthesis coupled with a smaller response in rates of amino acid transport, protein synthesis and protein degradation to insulin, serum and dexamethasone. Secondly, we compared seven aza-adenine-resistant and 14 thioguanine-resistant mutants of AT3-2 and found significant differences in control and insulin-stimulated rates of protein turnover both within and between mutant populations. A significant difference between the populations was unexpected because each individual cell line was cloned from a spontaneous pre-existing mutation in AT3-2, and each population should have the same average rate. Remarkably, all 24 mutants had lower rates of protein synthesis than AT3-2. We cannot explain the data solely in terms of mutations in the salvage pathways. Rather, we propose that the mutant survivors have randomly down-regulated the intrinsically fixed growth factor-regulated pathways of protein turnover, resulting in a broad spectrum of lower metabolic rates.

Adenine Phosphoribosyltransferase

New leupeptin analogues: synthesis and inhibition data.

Syntheses of several tripeptide analogues of leupeptin containing C-terminal argininal, lysinal, or ornithinal units are presented. The synthetic analogues were tested as inhibitors of trypsin, plasmin, and kallikrein. (Benzyloxycarbonyl)-L-leucyl-L-leucyl-L-argininal (2a) was significantly less effective as an inhibitor of trypsin and plasmin activity than leupeptin. (Benzyloxycarbonyl)-L-leucyl-L-leucyl-L-lysinal (2e) and (benzyloxycarbonyl)-L-leucyl-L-leucyl-L-ornithinal (2i) display different inhibition characteristics than (benzyloxycarbonyl)-L-leucyl-L-leucyl-L-argininal (2a). While (benzyloxycarbonyl)-L-leucyl-L-leucyl-L-argininal (2a) showed moderate inhibition of all three enzymes tested, (benzyloxycarbonyl)-L-leucyl-L-leucyl-L-lysinal (2e) was less effective as an inhibitor of trypsin and plasmin activity. Of the three enzymes tested, (benzyloxycarbonyl)-L-leucyl-L-leucyl-L-ornithinal (2i) showed significant inhibition of kallikrein activity only. Modifications made in the composition and sequence of the P2 and P3 amino acids also resulted in variations in the inhibitory activity of the analogues. In general, plasmin showed a strong preference for inhibitors which contain an L-phenylalanyl-L-leucyl or an L-leucyl-L-valyl unit in the P2 and P3 positions.

Amino Acid Sequence

Regulation of protein turnover by recombinant human insulin-like growth factor-I in L6 myotube cultures.

Muscle cell culture experiments were conducted to determine the relative regulatory effects of insulin-like growth factors (IGF) on protein turnover. The effects of recombinant (rc) human IGF-I, ovine somatomedin (oSm/oIGF-I), and insulin on rates of protein labeling and degradation in L6 myotube cultures were evaluated. Myotube cultures were treated with growth factors following a 4-h serum-free incubation period. Protein labeling was measured by determining the rate of [3H] leucine incorporation into cell protein. Protein degradation was measured by a pulse-chase procedure using [3H] leucine. The apparent half maximal stimulation of protein labeling (12%, 8%, 7%) occurred at approximately .1 nM rcIGF-I, 1 nM oSm/oIGF-I and 15 nM insulin, respectively. The apparent half maximal inhibition of proteolysis (18%, 15% and 11%) occurred at .4 nM rcIGF-I, .6 nM oSm/oIGF-I and 4 nM insulin, respectively. The magnitude of the response for protein labeling and degradation was greatest for rcIGF-I. The results provide additional evidence that IGFs play a primary role in regulating protein turnover in muscle.

Cells, Cultured

Absorption and metabolism of vitamin K in Swiss 3T3 mouse fibroblasts--a model system for study of vitamin K absorption and metabolism.

The vitamin K cycle previously described in liver has been demonstrated in Swiss 3T3 mouse fibroblasts. Vitamin K epoxide and gamma-carboxyglutamic acid were isolated from the cells and chemically characterized. Menaquinone (MK4) is also metabolized to its epoxide and vitamin K epoxide is reduced to vitamin K in these cells. Thus Swiss 3T3 mouse fibroblasts provide a useful model system for the study of vitamin K metabolism. Possible functions of the vitamin K-dependent protein(s) in fibroblasts are discussed.

1-Carboxyglutamic Acid

Effects of zeranol on protein turnover in L6 myotubes.

Protein synthesis and degradation were measured in cultures of L6 myotubes to determine the direct anabolic activity of zeranol on muscle. Zeranol, dexamethasone, insulin and zeranol-dexamethasone combination, at various concentrations from 10(-8) to 10(-6) M, were added to cultures at either 18 hr prior to or at the beginning of a 6 hr synthesis or degradation measuring period. Protein synthesis was measured by determining the incorporation of radioactivity into trichloraoacetic acid precipitable cell protein following incubation with [3H] leucine. Protein synthesis was expressed as cpm incorporated in 6 hr per mg protein. Protein degradation was measured by a pulse-chase procedure using [3H] leucine. Protein degradation was expressed as the percent labeled protein degraded in 6 hr. Results from the study indicate that zeranol did not stimulate protein synthesis or inhibit proteolysis (P greater than .01). Stimulation of proteolysis observed with 10(-8) M dexamethasone was 13% and 18% (P less than .01) at the 6 hr and 24 hr incubation period, respectively. Dexamethasone-stimulated protein degradation was not altered appreciably by zeranol. In contrast, 10(-6) M insulin significantly (P less than .01) stimulated protein synthesis (16%) and inhibited protein degradation (15%). These results suggest that the anabolic action of zeranol does not occur by directly regulating muscle protein synthesis or degradation, or by altering the glucocorticoid-induced catabolic response in muscle.

Animals

The effect of insulinomimetic agents on protein degradation in H35 hepatoma cells.

A wide variety of agents are shown to mimic insulin action and inhibit rates of intracellular protein degradation in H35 hepatoma cells. For oxidizing agents such as NaNO2, H2O2 and oxidized glutathione, inhibition of protein breakdown is reversed by adding catalase. Phenylhydrazine behaves like an oxidant and mimics insulin action in a manner potentiated by superoxide dismutase and reversed by catalase. Similarly the effect of insulin itself is increased by superoxide dismutase and reduced by catalase. Sulfhydryl reagents also mimic insulin action: inhibition of protein breakdown is seen following addition of 2-mercaptoethanol or a brief pre-treatment with N-ethylmaleimide or iodoacetate. Mild pre-treatment with trypsin also inhibits subsequent rates of protein breakdown. A model is proposed suggesting that these insulinomimetic actions involve a common mechanism which links the generation of active oxygen species through the redox potential of the cell to the activation of a proteinase.

Animals

Influence of anabolic agents on protein synthesis and degradation in muscle cells grown in culture.

Muscle cell culture (L6) studies were conducted to determine whether anabolic agents have a direct effect on the muscle cell. The effects of zeranol, testosterone propionate, estradiol benzoate, progesterone, dexamethasone and anabolic agent-dexamethasone combinations on protein synthesis and degradation were measured. Myoblast and myotube cultures were pretreated with 1 microM compounds for 12, 24 and 48 h before a 6-h synthesis or degradation measuring period. Protein synthesis was determined as cpm of [3H] leucine incorporated per mg cell protein. Protein degradation was measured by a pulse-chase procedure using [3H] leucine and expressed as the percentage labeled protein degraded in 6 h. Progesterone slightly increased (P less than .05) protein synthesis in myoblast cultures. Testosterone propionate had no effect on synthesis. Protein synthesis was decreased by estradiol benzoate (P less than .01) in myotube cultures. Protein degradation was not altered appreciably by anabolic agents. Protein synthesis was initially inhibited in myotubes (P less than .05) by dexamethasone, but increased (P less than .01) in myoblasts and myotubes in the extended incubation time. Dexamethasone also consistently increased protein degradation, but this required several hours to be expressed. Anabolic agents did not interfere with dexamethasone-induced increases in protein synthesis and degradation. The magnitude of response and sensitivity were similar for both the myoblast and the more fully differentiated myotube for all compounds tested. These results indicate that anabolic agents at the 1 microM level do not have a direct anabolic effect on muscle or alter glucocorticoid-induced catabolic response in muscle.

Anabolic Agents

Protein synthesis and breakdown rates associated with the insulin resistance of fibroblasts from patients with leprechaunism.

Postreceptor defects in insulin action have been reported in fibroblasts isolated from two patients with Leprechaunism, Leprechaun/Ark-1 and Leprechaun NC-1. We have extended the published reports on glucose, aminoisobutyric acid, and thymidine uptake in these cells to measurements of protein synthesis and protein breakdown. We found a remarkably consistent pattern of responsiveness between the two Leprechaun fibroblast lines. First, protein synthesis proceeded at a low basal rate that was only slightly stimulated by insulin. Second, basal rates of protein breakdown were significantly higher than in normal skin fibroblasts, with approximately equal inhibitory effects produced by 100 nM insulin. Third, the responses of protein synthesis and protein breakdown to insulin required higher concentrations of the hormone to elicit half-maximal effects. Fourth, both Leprechaun cell lines were slow growing in complete medium, a situation that results from low rates of protein synthesis and high rates of protein breakdown. Fifth, the abnormal rates of protein metabolism in the presence of serum were caused not by the inability of serum to produce anabolic responses but because the unstimulated rates reflect a more catabolic basal state. Taken together with previous published results, our measurements suggest a generalized metabolic defect in Leprechaun fibroblasts that can only partly be explained by the reduced sensitivity of the cells to insulin.

Blood

Inhibition of protein breakdown by epidermal growth factor in IMR90 human fibroblasts and other mammalian cell lines.

1. Epidermal growth factor (EGF) inhibits intracellular protein breakdown in IMR90 human fibroblasts and other cell lines having EGF receptors. 2. Inhibition is achieved within 1 h of exposure to the growth factor and is reversed equally rapidly upon removal of EGF. 3. EGF inhibits protein breakdown and stimulates protein and DNA labelling with similar dependency on concentration. Half-maximal effects for all processes with IMR90 and AG2804 cell lines occur at 0.2 nM- and 0.05 nM-EGF respectively. 4. EGF and insulin effects on protein breakdown are additive only when the factors are included at suboptimal concentrations. 5. The apparent Kd for EGF binding in several cell lines is approximately 10-fold higher than the concentration needed for half-maximal inhibition of protein breakdown. 6. Down-regulation of EGF receptors in IMR90 cells produced a 60% decrease in the binding of 125I-labelled EGF. This was accompanied by a displacement of the concentration curve for EGF inhibition of protein breakdown by approximately two orders of magnitude, suggesting that protein breakdown can no longer respond to the down-regulated receptor-growth-factor complex. 7. Phorbol esters decrease the inhibitory effect of EGF, but not of insulin, on protein breakdown in IMR90 cells.

Animals

Biological activity of aspartic proteinase inhibitors related to pepstatin.

We have synthesized eight tripeptide analogs of pepstatin in which both the side-chain and stereochemistry of the novel amino acid statine have been altered. They have been compared to pepstatin for inhibition of pepsin and cathepsin D activity, inhibition of autolysis at pH 4, and inhibition of protein degradation in cultured cells. Effective inhibition of aspartic proteinase activity appears to require the novel amino acid to have a bulky hydrophobic side-chain and the S-configuration at both chiral centers. However, the Cbz-Val-Val-(3S4S)-statine peptide was more effective than pepstatin in cultured cells, and inhibition was also achieved, and in some cases enhanced relative to pepstatin, by its stereoisomers and by tripeptides containing valyl and alanyl analogs of statine.

Amino Acids

Insulin inhibition of protein degradation in cell monolayers.

Protein degradation has been measured in confluent monolayers of eleven lines of contact-inhibited cells and ten transformed lines as the rate of release of trichloroacetic acid-soluble radioactivity after prelabeling cell protein with [3H]leucine. Insulin, at contrations from 10(-12) M to 10(-6) M, has been added at the beginning of the 4-hour degradation period to detect selective effects of this hormone as an inhibitor of the inducible proteolysis occurring in serum-free medium. In addition insulin binding measurements have been performed on selected cell lines in an attempt to relate receptor properties to insulin action. Substantial effects of insulin are found in most cells with a selective inhibition at low insulin concentrations noted in several of the transformed lines. The difference in insulin sensitivity is not entirely definitive because temperature-sensitive transformation mutants of NRK cells are not more sensitive to insulin at a temperature where they show the transformed phenotype. Although insulin receptors on different cell lines have similar binding properties, two of the hepatomas used, H35 and MH1C1, show inhibition of protein degradation at insulin concentrations where receptor occupancy is extremely low. Calvarial osteoblast-like cells have a high rate of protein degradation which can be reduced by growth factors but not by insulin. The lack of an insulin response is a consequence of poor insulin binding to the cells. Insulin binds to the osteogenic sarcoma cells in substantial amounts. However, its normal action to inhibit the induced proteolysis is restricted because with these cells no increase of proteolysis occurs in serum-free medium. Generally higher rates of protein degradation are observed in the contact-inhibited lines than the transformed cells. We suggest that this difference may provide a selective growth advantage to transformed cells.

Animals