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Biomedical subjects

A H Merrill

Publications and source records attributed to A H Merrill.

At least 109 records · Page 6Linked to original sources

Differential effects of long-chain (sphingoid) bases on the monocytic differentiation of human leukemia (HL-60) cells induced by phorbol esters, 1 alpha, 25-dihydroxyvitamin D3, or ganglioside GM3.

Conditions were developed to prolong the ability of sphinganine, a potent inhibitor of protein kinase C, to block the phorbol ester-induced adherence of HL-60 cells beyond 24 h. The loss of inhibition after this time seen previously (A.H. Merrill, Jr., A.M. Sereni, V.L. Stevens, Y.A. Hannun, R.M. Bell, and J.M. Kinkade, Jr., J. Biol. Chem., 261: 12610-12615, 1986), which appeared to be due to metabolism of this long-chain base, was overcome by supplying sphinganine daily. After 4 days, phorbol myristate acetate-induced adherence was inhibited approximately 50% by sphinganine. Sphinganine significantly decreased the expression of nonspecific esterase induced by phorbol myristate acetate in the nonadherent cells, indicating that other aspects of maturation besides adherence were blocked. The effects of daily sphinganine treatments on the monocytic differentiation induced by 1 alpha-25-dihydroxyvitamin D3 or ganglioside GM3 were also investigated. The increases in nonspecific esterase expression, nitroblue tetrazolium reduction, and morphological maturation caused by either agent were unaffected by the long-chain base. In addition, the changes in several cell surface antigens caused by 1 alpha,25-dihydroxyvitamin D3 were unaltered by sphinganine. Although phorbol esters, 1 alpha,25-dihydroxyvitamin D3, and ganglioside GM3 all induce the maturation of HL-60 cells along the monocytic lineage, the finding that sphinganine only affected the differentiation initiated by phorbol esters, in which protein kinase C clearly is a major regulator, suggests that this enzyme does not play a major role in these other pathways of differentiation.

Antigens, Neoplasm↗

Insulin-stimulated hexose transport and glucose oxidation in rat adipocytes is inhibited by sphingosine at a step after insulin binding.

Spingosine, a naturally occurring inhibitor of protein kinase C, has recently been shown to have potent bioregulatory effects on a variety of cellular processes involving signal transduction mechanisms. In the present studies, we have investigated its effects on activation by insulin of hexose transport and glucose oxidation in isolated rat adipocytes. Preincubation of cells with this long-chain base blocked both the marked activation of these processes by insulin and the smaller activation by phorbol myristate acetate. Inhibition of both insulin and phorbol 12-myristate 13-acetate activation showed the same sphingosine concentration dependence, suggesting a common locus of action. The effectiveness of sphingosine was inversely proportional to the lipid content in the incubation (which was a function of both the age of the animal and the number of cells used) presumably due to dilution of the lipophilic long-chain base into the cellular triglycerides. Sphingosine did not affect either insulin binding to its receptor or the half-maximal concentration of the hormone required to activate hexose transport, but reduced the maximal responses. Thus, the inhibition was at a step distal to the binding of insulin to its receptor. Basal transport activity was not inhibited, suggesting a locus of action prior to the glucose transporter. The inhibitor was also effective when added following activation by insulin of hexose transport and resulted in a rapid reversal of activation (t 1/2 for inhibition was 2-4 min.). Sphingosine and its analogs showed a parallel potency for inhibition both of isolated protein kinase C and of insulin activation in adipocytes, consistent with an essential role for protein kinase C in the activation of hexose transport by insulin.

Adipose Tissue↗

Structural requirements for long-chain (sphingoid) base inhibition of protein kinase C in vitro and for the cellular effects of these compounds.

Sphingosine, sphinganine, and other long-chain (sphingoid) bases inhibit protein kinase C in vitro and block cellular responses to agonists that are thought to act via this enzyme. To gain further insight into the mechanism of this inhibition, a series of long-chain analogues differing in alkyl chain length (11-20 carbon atoms), stereochemistry, and headgroup were examined for (a) inhibition of protein kinase C activity in vitro, (b) the neutrophil respiratory burst in response to phorbol myristate acetate (PMA), (c) the PMA-induced differentiation of HL-60 cells, and (d) the growth of Chinese hamster ovary cells. In every instance, the effects were maximal with the 18-carbon homologues, which are the same length as the predominant naturally occurring long-chain base (sphingosine). The lower potency of the shorter chain homologues was partially due to decreased uptake by cells. Small differences were obtained with the four stereoisomers of sphingosine (i.e., D and L forms of erythro- and threo-sphingosine), with N-methyl derivatives of the different sphingosine homologues, and with simpler alkylamines (e.g., stearylamine). The potency of the different headgroup analogues may be affected by the degree of protonation at the assay pH. The pKa of sphingosine was measured to be 6.7; the pKa varied among the analogues. These findings establish that the major structural features required for inhibition of protein kinase C and cellular processes dependent on this enzyme are the presence of a free amino group and an aliphatic side chain and that other groups have more subtle effects.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Modulation of protein kinase C and diverse cell functions by sphingosine--a pharmacologically interesting compound linking sphingolipids and signal transduction.

Sphingosine, the backbone moiety of sphingomyelin, gangliosides and other complex sphingolipids, is a potent inhibitor of protein kinase C in vitro and of cellular events dependent on this enzyme. The systems that have been found, thus far, to be affected by sphingosine encompass various components of host defense system, including the activation of platelets, neutrophils and natural killer cells; the cytolytic activity of pathogens and expression of viral genes; cell growth and differentiation in several cell types, including leukemic and neuronal cells; insulin stimulated hexose transport and metabolism in adipocytes; ion-transport systems in various models; the response of neuronal cells to excitatory compounds; and receptor desensitization. While sphingosine has appeared to be a relatively potent and specific inhibitor of protein kinase C in the systems studied, recent findings with the epidermal growth factor receptor indicate that it may serve as a pleotrophic modulator of cell functions. New strategies for the design of pharmacologically active agents should arise from further studies of the action of long-chain (sphingoid) bases. Furthermore, since free sphingosine is a natural constituent of cells and the levels can be modulated by phorbol esters and other factors, a cycle of complex sphingolipid hydrolysis and resynthesis to regulate the amount of free sphingosine may constitute one mechanism of action of these compounds.

Animals↗

Vitamin B6 repletion in cirrhosis with oral pyridoxine: failure to improve amino acid metabolism.

This study evaluated the effect of daily oral pyridoxine supplementation in patients with cirrhosis. Eight subjects were treated with 25 mg of pyridoxine for 28 days. Before and after the supplementation period, B6 status was assessed by measuring fasting plasma vitamer levels and response to a 25 mg oral pyridoxine load. In addition, a 24-hr urine collection was analyzed during each load study for B6 metabolites. The data indicated that supplementation achieved repletion of peripheral B6 stores, as evidenced by: (i) a significant (p less than 0.005) rise in fasting plasma pyridoxal phosphate after supplementation (mean +/- S.D. = 56.8 +/- 30.5 nmoles per liter) as compared to initial levels (17.0 +/- 17.8 nmoles per liter); (ii) a higher (p less than 0.05) percentage excretion of the pyridoxine load as urinary 4-pyridoxic acid (31.0 +/- 9.3%) compared to the initial load (19.6 +/- 5.8%), and (iii) a postsupplementation area under the plasma concentration vs. time curve for pyridoxal phosphate (377 +/- 529 nmoles.hr per liter), which was decreased (p less than 0.005) from the presupplementation value (934 +/- 756 nmoles.hr per liter). The postsupplementation fasting plasma pyridoxal phosphate concentrations were within the normal range. The consequences of B6 repletion on amino acid metabolism were measured by oral protein loads (n = 4) or oral methionine loads (n = 4). No significant changes were observed for methionine or any other amino acid in regard to plasma fasting concentration, peak concentration or AUC. Although the vitamin B6 deficiency of cirrhosis was corrected by daily oral pyridoxine supplementation, there was apparently no improvement in the deranged amino acid metabolism.

Amino Acids↗

Inhibition of the induction of ornithine decarboxylase activity by 12-O-tetradecanoylphorbol-13-acetate in mouse skin by sphingosine sulfate.

We investigated the effect of sphingosine sulfate on the induction of ODC (ornithine decarboxylase) activity by TPA (12-O-tetradecanoylphorbol-13-acetate) in mouse skin. When applied topically to the shaved skin of SENCAR mice at dosages of 10-40 mumol per animal, 30 min before the superficial application of 8.5 nmol of TPA, sphingosine sulfate dramatically inhibited the induction of ODC activity by the tumor promoter. Significant inhibition of TPA-induced ODC activity was observed at 4, 6 and 8 h after TPA treatment in separate studies. The results indicate that sphingosine sulfate is an effective inhibitor of ODC induction by TPA in mouse skin.

Animals↗

Sphingolipid biosynthesis by rat liver cells: effects of serine, fatty acids and lipoproteins.

The effects of circulating factors that might influence de novo sphingolipid biosynthesis were examined with rat liver cells by following the incorporation of [14C]serine into sphingosine and sphinganine, the predominant long-chain base backbones of hepatic sphingolipids. The rate of long-chain base formation depended on the concentration of [14C]serine in the medium and exhibited saturation kinetics. Long-chain base formation was stimulated by another precursor, palmitic acid, but stearic, oleic, linoleic and linolenic acids were inhibitory. This kinetic behavior indicates that long-chain base formation in liver is affected by the availability of the substrates of the initial enzyme of this pathway, serine palmitoyltransferase. Since liver is also exposed to sphingolipids associated with circulating lipoproteins, the effects of various lipoprotein fractions were determined and each appeared to decrease long-chain base formation. These results suggest that hepatic long-chain base biosynthesis can be stimulated by increases in the circulating levels of the precursors serine and palmitic acid whereas some other fatty acids and lipoproteins decrease the flux through this pathway.

Acyltransferases↗

Lipid modulators of cell function.

Lipids have surfaced as potent and diverse modulators of cell functions, as determinants of membrane structure, as ligands for cell-surface receptors, as anchors for membrane-associated proteins, and as "second messengers." Some of these functions involve the complex lipids directly, as exemplified by the alteration of receptor behavior by gangliosides. However, many other functions entail cleavage of membrane lipids to yield (as examples): unsaturated fatty acids, which are converted to prostaglandins, prostacyclins, thromboxanes, and other compounds; diacylglycerols, which activate protein kinase C; inositol phosphates, which stimulate release of calcium from intracellular stores; and lysoalkylphosphatidylcholine, which is converted to platelet-activating factor. New roles for membrane lipids are constantly appearing, such as the inhibition of protein kinase C by sphingosine and the release of phosphatidylinositol-linked proteins in response to hormones. Dietary modification of these lipid systems could have important implications for normal cell function and disease.

Cell Membrane↗

Rapid turnover of sphingosine synthesized de novo from [14C]serine by Chinese hamster ovary cells.

It has been hypothesized that complex sphingolipids may serve as another "lipid second messenger" system via their hydrolysis to free sphingosine, which inhibits protein kinase C and affects multiple cellular functions. To investigate sphingolipid turnover, Chinese hamster ovary cells were pulse labelled with [14C]serine and the [14C]sphingosine in cellular sphingolipids was determined over time. Much of the radiolabelled sphingosine was initially seen in ceramides and was incorporated into sphingomyelin during the 5-hour chase. A major portion of the radiolabel that was initially seen in other sphingolipids disappeared over time. Overall, about half of the total long-chain bases made during this pulse were degraded within 2 to 5 h, depending on the method of analysis. Hence, a substantial portion of the sphingosine synthesized de novo by these cells is turned over fairly quickly. Since the doubling time of these cells is 12 h, this rapid turnover may reflect the remodelling of the cell surface, or the utilization of the free sphingosine derived from sphingolipid turnover, as part of the control of cell growth and division.

Cell Line↗

Inhibition of serine palmitoyltransferase in vitro and long-chain base biosynthesis in intact Chinese hamster ovary cells by beta-chloroalanine.

The effects of beta-chloroalanine (beta-Cl-alanine) on serine palmitoyltransferase activity and the de novo biosynthesis of sphinganine and sphingenine were investigated in vitro with rat liver microsomes and in vivo with intact Chinese hamster ovary (CHO) cells. The inhibition in vitro was rapid (5 mM beta-Cl-alanine caused complete inactivation in 10 min), irreversible, and concentration and time dependent and apparently involved the active site because inactivation only occurred with beta-Cl-L-alanine (not beta-Cl-D-alanine) and was blocked by L-serine. These are characteristics of mechanism-based ("suicide") inhibition. Serine palmitoyltransferase (SPT) was also inhibited when intact CHO cells were incubated with beta-Cl-alanine (complete inhibition occurred in 15 min with 5 mM), and this treatment inhibited [14C]serine incorporation into long-chain bases by intact cells. The concentration dependence of the loss of SPT activity and of long-chain base synthesis was identical. The effects of beta-Cl-L-alanine appeared to occur with little perturbation of other cell functions: the cells exhibited no loss in cell viability, [14C]serine uptake was not blocked, total lipid biosynthesis from [14C]acetic acid was not decreased (nor was the appearance of radiolabel in cholesterol and phosphatidylcholine), and [3H]thymidine incorporation into DNA was not affected. There appeared to be little effect on protein synthesis based on the incorporation of [3H]leucine, which was only decreased by 14%. Although beta-Cl-L-alanine is known to inhibit other pyridoxal 5'-phosphate dependent enzymes, alanine and aspartate transaminases were not inhibited under these conditions. These results establish the close association between the activity of serine palmitoyltransferase and the cellular rate of long-chain base formation and indicate that beta-Cl-alanine and other mechanism-based inhibitors might be useful to study alterations in cellular long-chain base synthesis.

Acyltransferases↗

Modulation of the free sphingosine levels in human neutrophils by phorbol esters and other factors.

Because free long-chain bases have been recently found to have potent pharmacological effects when added to neutrophils (Wilson, E., Olcott, M. C., Bell, R. M., Merrill, A. H., Jr., and Lambeth, J. D. (1986) J. Biol. Chem. 261, 12616-12623) and other cell types, the levels in human neutrophils were measured by high-performance liquid chromatography. Sphingosine was the major free long-chain base in freshly isolated cells and ranged from 13 to 101 pmol/10(7) cells for different donors (mean +/- S.E. of 50 +/- 5, n = 17). Upon incubation at 37 degrees C, there was a time-dependent increase in free sphingosine (57 +/- 8% in 1 h, n = 17), but no change was seen at 4 or 25 degrees C. The sphingosine was apparently derived from more complex sphingolipids because little (less than 1%) could be accounted for by new synthesis from [14C]serine. Greater increases in free sphingosine were obtained when neutrophils were incubated with serum, plasma, or serum lipoproteins (about 2-fold higher than for cells incubated alone). In contrast, agonists such as phorbol 12-myristate 13-acetate, A23187, arachidonic acid, low concentrations (10 nM) of N-formyl-methionyl-leucyl-phenylalanine, and opsonized zymosan either decreased the amount of free sphingosine or blunted the time-dependent increase. This may be due to enhanced removal of free sphingosine because phorbol 12-myristate 13-acetate-treated cells exhibited an increased conversion of exogenously added [3H]sphinganine to ceramides. Endogenous sphingosine was approximately one-tenth the level found in neutrophils when exogenous long-chain bases were added to inhibit protein kinase C. Hence, depending on the subcellular localization of the endogenous versus exogenous long-chain bases, the amounts of free sphingosine in neutrophils might be sufficient to affect the function of these cells.

Calcimycin↗

Kinetics of long-chain (sphingoid) base biosynthesis in intact LM cells: effects of varying the extracellular concentrations of serine and fatty acid precursors of this pathway.

Serine palmitoyltransferase (EC 2.3.1.50) catalyzes the condensation of L-serine and palmitoyl-CoA to yield 3-ketosphinganine in the first unique reaction of long-chain (sphingoid) base biosynthesis. The kinetic effects of changing the extracellular concentrations of the precursors for this pathway were studied with LM cells by following the incorporation of L-[3-14C]serine into the long-chain base (i.e., sphinganine and sphingenine) backbones of complex sphingolipids. [14C]Serine was taken up by the cells and rapidly reached steady-state concentrations similar to those of the medium. From the cellular [14C]serine concentrations and specific activities, the apparent Vmax [14 pmol min-1 (10(6) cells)-1] and Km (0.23 mM) values for long-chain base synthesis were determined and found to be essentially identical with those for serine palmitoyltransferase assayed in vitro [i.e., 13 pmol min-1 (10(6) cells)-1 and 0.27 mM, respectively]. The other precursor, palmitic acid, was also taken up rapidly and increased long-chain base biosynthesis in a concentration-dependent manner. This effect was limited to palmitic acid and matched the known specificity of serine palmitoyltransferase for saturated fatty acyl-CoA's of 16 +/- 1 carbon atoms. These studies delineate the influence of extracellular precursors on the formation of the sphingolipid backbone and suggest that the kinetic properties of serine palmitoyltransferase govern this behavior of long-chain base synthesis in intact cells.

Acyltransferases↗

Quantitation of free sphingosine in liver by high-performance liquid chromatography.

Conditions were established for the extraction of free sphingosine from liver and the separation and quantitation of this and other long-chain (sphingoid) bases (e.g., sphingosine, sphinganine, phytosphingosine, and homologs) by reverse-phase high-performance liquid chromatography (HPLC). The long-chain bases were extracted with chloroform and methanol and then treated with base to remove interfering lipids. After preparation of the o-phthalaldehyde derivatives, the long-chain bases could be separated using C18 columns eluted isocratically with methanol:5 mM potassium phosphate, pH 7.0 (90:10). The HPLC analyses took 15 to 20 min per sample and had lower limits of detection in the picomole range. Quantitation was facilitated by using a 20-carbon long-chain base homolog as an internal standard. The utility of the method was demonstrated with rat liver, providing the first quantitation of free sphingosine in this tissue of approximately 7 nmol/g wet wt.

Animals↗

Protein kinase C inhibition by sphingoid long-chain bases: effects on secretion in human neutrophils.

Sphingoid long-chain bases (sphinganine and sphingosine) have recently been shown to inhibit protein kinase C both in vitro [Y. Hannun et al. (1986) J. Biol. Chem. 261, 12604-12609] and in intact human neutrophils, in which they block activation of the superoxide-generating respiratory burst [E. Wilson et al. (1986) J. Biol. Chem. 261, 12616-12623]. In the present study we have used sphingosine to investigate the pathways for agonist-induced secretion of neutrophil granule contents. Induction of secretion of the specific granule component lactoferrin by a variety of agonists [phorbol 12-myristate-13-acetate (PMA), formyl-methionyl-leucyl-phenylalanine (fMLP), and calcium ionophore A23187] was completely inhibited by sphingosine with an ED50 of 6 to 10 microM. PMA-induced secretion of lysozyme (present in both the azurophilic and specific granules) was completely blocked with an ED50 of 10 microM, whereas fMLP-induced secretion was only about 50% inhibited. Secretion of the azurophilic granule proteins beta-glucuronidase and myeloperoxidase was activated by fMLP and A23187, but not by PMA, and was not affected by sphingosine. The use of A23187 in the presence of sphingosine allowed differentiation between calcium activation of protein kinase C-dependent versus-independent pathways. The effect of sphingosine was not mediated by neutralizing intracellular acidic compartments, since treatment of neutrophils with inhibitory concentrations of sphingosine did not significantly alter the uptake of labeled methylamine. We conclude that at least two mechanisms participate in the regulation of specific and azurophilic granule secretion, respectively: a protein kinase C-dependent pathway and a calcium-dependent pathway which does not involve protein kinase C.

Calcimycin↗

Immunocytochemical evidence for phorbol ester-induced directional translocations of protein kinase C in HL60, K562, CHO, and E7SKS cells: possible role in differentiation.

The effects of phorbol ester 12-O-tetradecanoylphorbol-13-acetate (TPA) on the directions of protein kinase C (PKC) translocation in two leukemic cell lines (HL60 and K562) and two fibroblastic cell lines (CHO and E7SKS), related to their susceptibility to the differentiating effect of TPA, were examined. Immunocytochemical evidence indicated that TPA induced a redistribution (outward) of PKC to the plasma membrane in TPA-sensitive HL60 cells, whereas it caused a translocation (inward) of the enzyme to the nucleus or the perinuclear region in K562, CHO, and E7SKS cells, which are resistant to TPA in terms of cell growth and differentiation. Immunoblot analysis of the nuclear proteins from K562 cells revealed that TPA induced an increase in the amount of immunoreactive proteins. TPA, however, did not increase the amount of these immunoreactive species in nuclei isolated from CHO and E7SKS cells, indicating that the translocated PKC was associated only with perinuclear structures of the TPA-treated cells. It is suggested that directional redistribution of PKC to the plasma membrane, as opposed to the nuclear and perinuclear region, might represent an early event required for the TPA-induced differentiation and maturation of HL60 cells.

Animals↗

Diseases associated with defects in vitamin B6 metabolism or utilization.

It is clear that many diseases are known to involve defects in vitamin B6 metabolism, but that even more await definitive studies. Furthermore, some functions of vitamin B6, such as its role in glucocorticoid action (21), have been discovered so recently that the medical implications have not yet been fully explored.

Alkaline Phosphatase↗

Hepatic function in rats after spaceflight: effects on lipids, glycogen, and enzymes.

The inclusion of rats aboard Spacelab 3 (SL-3) allowed analyses of liver lipids, glycogen, hepatic enzymes of cholesterol, glycerolipid and sphingolipid biosynthesis, and other enzyme activities. Glycogen content was markedly elevated in livers from the flight animals compared with controls. Cholesterol was 24% (P less than 0.04) lower in livers from the experimental groups, whereas blood cholesterol was 19% higher (P less than 0.05). The activity of 3-hydroxy-3-methylglutaryl-CoA reductase, the rate-limiting enzyme of steroid biosynthesis, was 80% lower (P less than 0.01). Total phospholipids and sphingolipid levels did not differ significantly. The specific activity of fatty acyl-CoA synthetase, which is responsible for activation of fatty acids, was 37% (P less than 0.05) higher in microsomes from the rats on SL-3; however, since these animals had 25% less microsomal protein (P less than 0.02), there was no difference per gram of liver. The initial enzymes of sphingolipid and glycerolipid biosynthesis were assayed; serine palmitoyltransferase was 40% lower (P less than 0.01), and glycerol 3-phosphate acyltransferase did not differ. Hepatic cytochrome P-450 content decreased by 50% after spaceflight. Enzymes that did not differ significantly between the two groups include cytochrome b5, glutathione S-transferase, tyrosine aminotransferase, aspartate aminotransferase, and cystathionase. These findings suggest that spaceflight alters hepatic metabolism of several classes of compounds.

Animals↗