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Cyclic GMP-dependent and -independent effects on the synthesis of the calcium messengers cyclic ADP-ribose and nicotinic acid adenine dinucleotide phosphate.

Cyclic ADP-ribose (cADPR) and nicotinic acid adenine dinucleotide phosphate (NAADP) have been shown to mobilize intracellular Ca2+ stores by totally independent mechanisms, which are pharmacologically distinct from that activated by inositol trisphosphate. Although cADPR and NAADP are structurally and functionally different, they can be synthesized by a single enzyme having ADP-ribosyl cyclase activity. In this study, three different assays were used to measure the metabolism of cADPR in sea urchin egg homogenates including a radioimmunoassay, a Ca2+ release assay, and a thin layer chromatographic assay. Soluble and membrane-bound ADP-ribosyl cyclases were identified and both cyclized NAD to produce cADPR. The soluble cyclase was half-maximally stimulated by 5.3 microM cGMP, but not by cAMP, while the membrane-bound form was independent of cGMP. The two forms of the cyclase were also different in the pH dependence of utilizing nicotinamide guanine dinucleotide (NGD), a guanine analog of NAD, as substrate, indicating they are two separate enzymes. The stimulatory effect of cGMP required ATP or ATPgammaS (adenosine 5'-O-(3-thiotriphosphate)) and a cGMP-dependent kinase activity was shown to be present in the soluble fraction. The degradation of cADPR to ADP-ribose was catalyzed by cADPR hydrolase, which was found to be predominantly associated with membranes. Similar to the membrane-bound cyclase, the cADPR hydrolase activity was also independent of cGMP. Both the soluble and membrane fractions also catalyzed the synthesis of NAADP through exchanging the nicotinamide group of NADP with nicotinic acid (NA). The base-exchange activity was independent of cGMP and the half-maximal concentrations of NADP and NA needed were about 0.2 mM and 10 mM, respectively. The exchange reaction showed a preference for acidic pH, contrasting with the neutral pH optimum of the cyclase activities. The complex metabolic pathways characterized in this study indicate that there may be a multitude of regulatory mechanisms for controlling the endogenous concentrations of cADPR and NAADP.

ADP-ribosyl Cyclase↗

Effect of nicotinic acid on the posttraumatic increase in free fatty acids and fibrinolysis inhibition activity in the rat.

Nicotinic acid effectively inhibited the posttraumatic increase in both free fatty acids (FFA) and fibrinolysis inhibition activity (FIA) in the blood in rats, indicating that FFA might be involved in the posttraumatic increase of FIA. The FIA in the liver was greater than that in other organs studied and was increased in the posttraumatic phase. The possible role of the liver in the posttraumatic increase of FIA is discussed.

Animals↗

Short-term effect of nicotinic acid on plasma level and turnover of free fatty acids in sheep and man.

The effects of nicotinic acid on plasma free fatty acid levels and turnover and on plasma glycerol levels were studied in the first few hours after administration to man and the sheep. In both species a fall in all parameters studied was followed by a rise above basal level, interpreted as due to an increase in lipolysis above resting level. The significance of the findings is discussed.

Animals↗

Stimulation of glucose transport in rat adipocytes by insulin, adenosine, nicotinic acid and hydrogen peroxide. Role of adenosine 3':5'-cyclic monophosphate.

Glucose transport into adipocytes of the rat was measured by monitoring the conversion of [1-(14)C]glucose into (14)CO(2). Glucose transport was made rate-limiting by increasing the flux through the pentose phosphate pathway with phenazine methosulphate, an agent that rapidly reoxidizes NADPH. Under these conditions, the observed rate of glucose disappearance from the incubation medium was about 20% higher than the rate of conversion of the C-1 of glucose into (14)CO(2). Apparent rates of glucose transport were significantly increased by insulin, H(2)O(2), adenosine and nicotinic acid. Stimulation of the apparent rate of glucose transport by insulin was dependent on adipocyte concentration, the hormone being most effective at relatively high cell concentrations. Adenosine and nicotinic acid further enhanced the maximum stimulation of glucose transport by insulin. Potentiation of insulin action by adenosine was more pronounced at lower cell concentrations. At relatively high cell concentrations the stimulatory action of insulin was markedly decreased by adenosine deaminase. Stimulation of apparent rates of glucose transport by the compounds noted above were antagonized by agents that increased intracellular cyclic AMP concentrations (theophylline and isoprenaline) and by dibutyryl cyclic AMP. Intracellular concentrations of cyclic AMP were significantly lowered when adipocytes were incubated with insulin, H(2)O(2), adenosine or nicotinic acid. These effects were observed under basal conditions or when intracellular cyclic AMP concentrations were elevated by theophylline or isoprenaline. On the basis of the above data, we suggest that insulin, H(2)O(2), adenosine and nicotinic acid may all stimulate glucose transport in rat adipocytes by lowering the intracellular cyclic AMP concentration. These data therefore support the hypothesis that cyclic AMP inhibits glucose transport in rat adipocytes.

Adenosine↗

[Regulation by nicotinic acid of malate dehydrogenase activity in tissues of Black Sea mussels].

Nicotinic acid was studied for its effect on the malate dehydrogenase activity from mussels' tissues and on its ability to link substrate and coenzyme. NADH and nicotinic acid in high concentrations are shown to produce an inhibiting effect on the reverse malate dehydrogenase reaction which is determined by the nonspecific action either of the vitamin or its metabolites. When pH of the medium is shifted toward the acid zone the affinity of the enzyme to the coenzyme decreases. This phenomenon may be one of the mechanisms of the mussel organism adaptation to anaerobiosis.

Animals↗

[Comparative studies of the response of normolipemic and dyslipemic aged subjects to 2 forms of delayed-action nicotinic acid polyesters. Pentaerythrotol tetranicotinate and inositol hexanicotinate. Results of a controlled cross-over trial].

A cross-over trial was run to compare the effects of two delayed-action nicotinic acid polyesters (pentaerythritol-tetranticotinate, PETN, and inositol-hexanicotinate, MIEN) in 59 aged normo- and dyslipaemic subjects. PETN tended to normalise the lipid picture in much the same way as nicotin acid, without a drastic effect on circulating lipids and lipoproteins. MIEN, on the other hand, had only a slight effect on total blood lipids, and appeared to be ineffective or negative with respect to the other lipid parameters. PETN proved capable of releasing active concentrations of nicotinic acid in vivo for a period of time that was sufficient to correct hyperlipaemia in age subjects. The side-effects were slight, infrequent and quickly reversible.

Age Factors↗

Effects of nicotinic acid on poloxamer 407-induced hyperlipidemia.

We attempted to determine the mechanism(s) of poloxamer (P)-407-induced hyperlipidemia in rats by administering a lipid-lowering drug with a known mechanism of action. Five weight-matched animals were assigned to each of four treatment groups. Two groups received P-407 300 mg/ml and two received saline 1 ml. One of the P-407 and one of the saline groups were administered nicotinic acid 100 mg/kg by intraperitoneal injection at 6-96 hours after blood sampling. Blood samples were collected at 7 points from time zero to 120 hours and analyzed for triglyceride and cholesterol concentrations. The detergent produces hypertriglyceridemia (HTG) increasing from 53.4 +/- 7.0 mg/dl (time zero) to 4026.9 +/- 42.1 mg/dl by 24 hours. The HTG response was significantly attenuated by nicotinic acid (at t = 24 hrs). This, however, was followed by an average triglyceride concentration increase of 2.8-fold from 72 to 120 hours. The detergent produces a dramatic hypercholesterolemia (HCHO), increasing cholesterol from 47.5 +/- 1.8 mg/dl to 468.5 +/- 27.9 mg/dl by 48 hours. The HCHO was significantly affected by nicotinic acid administration during the accumulation phase. Nicotinic acid reduced cholesterol concentration from 364.4 +/- 16.1 mg/dl to 276.8 +/- 16.4 mg/dl at 24 hours (p < 0.05). It is a potent antilipolytic agent, limiting the free fatty acids available for the synthesis of triglyceride and cholesterol. These data suggest that P-407 may act by stimulating the release of free fatty acids from the adipocyte for at least 24 hours after injection.

Analysis of Variance↗

Synthesis and hypolipidemic activity of some new esters of glycerol and 2-O-methyl-glycerol with nicotinic and 5-fluoro-nicotinic acids.

A series of new esters of glycerol and 2-O-methyl-glycerol with nicotinic and 5-fluoro-nicotinic acids were synthesized and their hypolipidemic activities were comparatively tested. The two most interesting compounds, 5 and 12, show a higher activity than both nicotinic and 5-fluoro-nicotinic acids in the following experimental models: Triton and olive oil hyperdyslipemia and tests on old rats.

Animals↗

[Nicotinic acid effect on acetyl-CoA-carboxylic activity in chicken liver].

Changes of acetyl-CoA-carboxylase (EC 6.4.1.2) activity and the NAD content in the liver tissue were studied in dynamics after excessive administration of nicotinic acid to chickens. It is established that in chickens, which were given a high-carbohydrate diet after fasting, administration of nicotinic acid at first causes a fall of the acetyl-CoA-activity in the liver tissue, followed by its gradual rise against a background of the NAD content drop and by the 24th hour its level approaches the initial values. The maxima of NAD accumulation and of the acetyl-CoA-carboxylase activity decrease coincide in time. The administration of nicotinic acid to these chickens causes both a decrease in the intensity of 2-14C acetate incorporation into free fatty acids and a drop in their content.

Acetyl-CoA Carboxylase↗

Pronounced lowering of serum levels of lipoprotein Lp(a) in hyperlipidaemic subjects treated with nicotinic acid.

Thirty-one consecutive unselected hyperlipidaemic patients were treated daily with 4 g of nicotinic acid for 6 weeks. The concentrations in serum of lipoprotein Lp(a), and the major lipoprotein classes, were determined before and after the treatment. Nicotinic acid significantly reduced the serum levels of Lp(a) in the whole patient group. Linear regression analysis showed a strong negative relationship between the percentage reduction of Lp(a) and the serum triglyceride level before treatment (r = -0.78), which implied that for patients with a serum triglyceride concentration above 7.5 mmol l-1 there was a rise of Lp(a). The average individual percentage decrease of the concentration of Lp(a) was calculated after the exclusion of four patients who had serum triglyceride levels above 10 mmol l-1. The decrease was 38% with a 95% confidence interval of 28-47%. The absolute decrease of Lp(a) was correlated with the pretreatment levels of Lp(a) (r = 0.91). Within the whole group of patients there was a linear relationship between the percentage decrease of Lp(a) and that of LDL cholesterol (r = 0.88). This latter strong relationship might be due to an inhibition of the synthesis of the protein common to the two lipoproteins, apolipoprotein B.

Adult↗

[Mechanism of nicotinic acid inhibition of the reaction catalyzed by acetyl-CoA carboxylase].

A kinetic analysis of the activity of acetyl-CoA carboxylase from chicken liver upon alimentary activation of lipogenesis and inhibition of this reaction by nicotinic acid was performed. It was found that the affinity of the enzyme isolated from chicken liver with stimulated lipogenesis is decreased by nicotinic acid for HCO3- but remains unchanged for ATP. The value of Vmax for ATP and the amount of the ATP used in this reaction remain unaffected. At the same time the enzyme affinity for acetyl-CoA is increased with a simultaneous decrease of Vmax. It is assumed that nicotinic acid inhibits the first step of the acetyl-CoA carboxylase-catalyzed reaction.

Acetyl-CoA Carboxylase↗

Acanthosis nigricans caused by nicotinic acid: case report and review of the literature.

Drug-induced acanthosis nigricans has been reported in the literature. We present a patient with familial combined hyperlipidemia who developed nicotinic-acid-induced acanthosis nigricans. The literature on the cutaneous side effects of nicotinic acid as well as on the medications that can cause acanthosis nigricans is reviewed. Some hypotheses on the pathogenesis of nicotinic-acid-induced acanthosis are presented.

Acanthosis Nigricans↗

[Phosphorylation of acetyl-CoA-carboxylase in the chicken liver during intensification of lipogenesis and treatment with nicotinic acid].

Sites of cAMP and ATP binding which regulate acetyl-CoA-carboxylase phosphorylation rate characterized under conditions of lipogenesis intensification and nicotinic acid action on this enzyme 1500 fold purified and containing proteinkinase activity. The acetyl-CoA-carboxylase preparation contains only one type of the cAMP binding sites which possess higher capacity under the action of nicotinic acid in vivo. A decrease of the cAMP binding under the conditions of lipogenesis intensification is induced by diminution of the cAMP binding site capacity without changing the binding constant value. It is established that [gamma-32P]ATP is incorporated in enzyme with Km value equal for two states under study. It this case the [gamma-32P]ATP incorporation rate is much higher for acetyl-CoA-carboxylase produced from chicken liver under the action of nicotinic acid.

Acetyl-CoA Carboxylase↗

Effects of nicotinic acid treatment on glyceride formation and lipolysis in adipose tissue of hyperlipidemic patients.

Thirty-one weight-stable patients with different types of hyperlipoproteinemia were treated daily with 4 g nicotinic acid for 6 weeks. Effects of this therapy on adipose tissue metabolism were evaluated. By using biopsy specimens of subcutaneous adipose tissue, fatty acid and glucose incorporation into adipose tissue glycerides were measured in vitro as well as glycerol and fatty acid release, which allowed us to estimate adipose tissue lipolysis. The amount of fatty acids produced by lipolysis and thereafter utilized within adipose tissue without being released (fatty acid retention) was estimated. Fatty acid and glucose incorporation into adipose tissue, glycerol release and fatty acid retention values increased, but serum triglyceride levels decreased (all P < 0.001) after nicotinic acid treatment. The change in fatty acid incorporation was positively correlated with changes in glucose incorporation into adipose tissue (r = 0.53, P < 0.01) and fatty acid retention (r = 0.76, P < 0.001). Although adipose tissue lipolysis, measured as glycerol release, increased, the lipolyzed fatty acids were retained in adipose tissue, suggesting an enhanced synthesis of glycerides both from exogenous and endogenous sources. The increase in fatty acid incorporation into adipose tissue indicates that the decrease in serum triglyceride levels produced by nicotinic acid treatment may partly be due to the fact that this drug promotes incorporation of fatty acids, derived from lipoprotein-carried triglycerides in the blood, into adipose tissue glycerides.

Adipose Tissue↗

Structural determinants of nicotinic acid adenine dinucleotide phosphate important for its calcium-mobilizing activity.

Nicotinic acid adenine dinucleotide phosphate (NAADP) mobilizes Ca2+ through a mechanism totally independent of cyclic ADP-ribose or inositol trisphosphate. The structural determinants important for its Ca2+ release activity were investigated using a series of analogs. It is shown that changing the 3-carboxyl group of the nicotinic acid (NA) moiety in NAADP to either an uncharged carbinol or from the 3-position to the 4-position of the pyridine ring totally eliminates the Ca2+ release activity. Conversion of the 3-carboxyl to other negatively charged groups, either 3-sulfonate, 3-acetate, or 3-quinoline carboxylate, retains the Ca2+ release activity, although their half-maximal effective concentrations (EC50) are 100-200-fold higher. Changing the 6-amino group of the adenine to a hydroxyl group results in more than a 1000-fold decrease in the Ca2+ release activity. Conversion of the 2'-phosphate to 2',3'-cyclic phosphate or 3'-phosphate likewise increases the EC50 by about 5- and 20-fold, respectively. Similar to NAADP, all of the active analogs can also desensitize the Ca2+ release mechanism at subthreshold concentrations, suggesting that this novel property is intrinsic to the release mechanism. The series of analogs used was produced by using ADP-ribosyl cyclase to catalyze the exchange of the nicotinamide group of various analogs of NADP with various analogs of NA. An important determinant in NA that is crucial to the base exchange reaction was shown to be the 2-position of the pyridine ring. Neither pyridine-2-carboxylate nor 2-methyl-NA support the exchange reaction. The negative charge and the position of the 3-carboxyl group are nonessential since both pyridine-3-carbinol and pyridine-4-carboxylate support the base exchange reaction. In addition to the information on the structure-activity relationships of NAADP and NA, this study also demonstrates the utility of the base exchange reaction as a general approach for synthesizing NAADP analogs.

Animals↗