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Oxidants and conductance of cultured epithelial cell monolayers: inositol phospholipid hydrolysis.

Reactive oxidants contribute to the alterations in endothelial and epithelial permeability that characterize the inflammatory response. We previously noted that noncytolytic doses of oxidants reversibly decreased the electrical resistance across cultured monolayers of Madin-Darby canine kidney (MDCK) cells (J. Clin. Invest. 76: 1155-1168, 1985). In this investigation, we have found that similar doses of oxidants initiate inositol phospholipid hydrolysis by a phospholipase C in cultured MDCK cells, with resultant increases in inositol polyphosphates, phosphatidic acid, and 1,2 diglycerides. Activation of this pathway is linked to activation of protein kinase C in many cells. The addition of phorbol 12,13-dibutyrate (PDBU) and 1-oleoyl-2-acetyl-sn-glycerol, activators of protein kinase C, decreased the electrical resistance across MDCK monolayers cultured on micropore filters similar to the effects of hydrogen peroxide. In contrast, the addition of 4 alpha-phorbol 12,13-didecanoate, a chemically similar compound that does not activate protein kinase C, did not decrease the electrical resistance. When MDCK monolayers were exposed to PDBU, fixed, and stained with rhodamine phallicidin, the peripheral band of actin in the cells showed a loss of staining density and continuity similar to the changes in phallicidin staining we previously noted in cells exposed to hydrogen peroxide. These data are consistent with the hypothesis that some of the reversible effects of oxidants on epithelial barriers are mediated through phospholipase C hydrolysis of inositol phospholipids with consequent activation of protein kinase C.

Animals↗

Involvement of arachidonic acid in the chloride secretory response of intestinal epithelial cells.

The inflammatory mediator, adenosine, induces chloride secretion from the human colonic epithelial cell line, T84, in a manner apparently independent of increases in adenosine 3',5'-cyclic monophosphate, guanosine 3',5'-cyclic monophosphate, or cytoplasmic Ca2+. This prompted a search for other messengers that might account for the secretory response. A possible role for arachidonic acid or a metabolite in the response to adenosine has been demonstrated 1) by showing a relationship between arachidonic acid mobilization and chloride secretion induced by the adenosine agonist 5'-(N-ethylcarboxamido)adenosine (NECA) and 2) by determining that exogenous arachidonic acid affects T84 cell function. Addition of NECA to T84 cells induces chloride secretion and release of radioactivity from cells preloaded with [3H]arachidonic acid with similar dose dependencies. The effect of NECA on chloride secretion is inhibited by the phospholipase A2 inhibitor 4-bromophenacyl bromide or the diglyceride lipase inhibitor RG80267 but is unaffected by inhibitors of lipoxygenase or cyclooxygenase. Arachidonic acid has a small but significant effect on chloride secretion when added alone to T84 cells and synergistically enhances, as does NECA, responses to calcium-dependent secretogogues. Thus receptor-stimulated release of arachidonic acid in T84 cells may provide a second-messenger system promoting chloride secretion, in addition to calcium and cyclic nucleotides.

Adenosine↗

Ethnic differences in in vitro glyceride synthesis in subcutaneous and omental adipose tissue.

Considerable evidence suggests that there are ethnic differences in lipid metabolism between African American and Caucasian women, which may result in increased synthesis of fat in adipose tissue. The purpose of this study was to measure the in vitro rates of [14C]glucose incorporation into the glyceride-glycerol backbone of triglycerides (TG) and diglycerides (DG) in abdominal subcutaneous (SAT) and omental adipose tissue (OAT). Morbidly obese [African American (n = 15): body mass index (BMI) = 45 +/- 2.3; Caucasian (n = 18): BMI = 51 +/- 2.3] and preobese [African American (n = 7): BMI = 27 +/- 1.0; Caucasian (n = 7): BMI = 25 +/- 1.0] women were examined in this study. There were no significant differences in the rates of synthesis of either TG or DG in SAT of either preobese or obese women. On the other hand, both preobese and obese African American women had higher rates of synthesis of TG in OAT compared with their Caucasian counterparts. This increase in TG synthesis in OAT was not due to differences in cell size or rates of reesterification. Thus African American woman have an increased capacity to synthesize TG in OAT compared with Caucasian women, which may contribute to the higher prevalence of obesity in African American women.

Adipose Tissue↗

A radioisotopic technique for analysis of free fatty acid reesterification in human adipose tissue.

Reesterification rates of free fatty acids (FFA) formed by intracellular triglyceride hydrolysis in small fragments of human adipose tissue were measured. Subcutaneous gluteal adipose tissue, obtained by needle biopsy, was incubated in a buffered albumin medium containing [3H]palmitate and [14C]glucose, each of high specific activity. In triglycerides (TG) and diglycerides (DG) synthesized by the tissue, [14C]glucose is incorporated exclusively into the glyceride-glycerol moiety, and 3H appears solely in the esterified fatty acids. Since rates of TG and DG synthesis can be determined from 14C accumulation rates in these molecules, the total amounts of FFA esterified can also be calculated. The difference between this estimate of total FFA esterification and the moles of [3H]palmitate esterified to these molecules represents the amount of unlabeled FFA from ongoing TG hydrolysis that was reesterified during the incubation. FFA recycling by the reesterification pathway is an important mechanism for the control of the quantity and proportions of FFA and glycerol leaving the human adipocyte. Fasting and beta-adrenergic stimulation reduce the fraction of endogenously released FFA that are reesterified from resting values of 30-40% to 8-21%, thereby increasing the molar ratio of FFA to glycerol leaving the adipocyte. The technique described can be employed to monitor sequential changes in this important metabolic cycle in humans under a wide range of nutritional and clinical circumstances.

Adipose Tissue↗

Selective insulinization of liver in conscious diabetic dogs.

Insulin encapsulated in lipid vesicles and targeted to hepatocytes by means of a digalactosyl diglyceride moiety [(designated vesicle encapsulated insulin (VEI)] was administered intravenously to conscious catheterized diabetic dogs to determine the effects of hepatic and extrahepatic glucose utilization. Our results indicate that VEI administered intravenously to diabetic dogs over a dose range of 0.5 to 2.0 mU X kg-1 X min-1 reduces hepatic glucose output or induces hepatic glucose uptake without causing any significant alteration in the rate of extrahepatic glucose utilization. Steady-state comparisons of 1.0 mU X kg-1 X min-1 VEI with intraportal and peripherally administered insulin revealed that VEI and intraportal insulin result in significantly less extrahepatic glucose utilization than does an equivalent dose of peripherally administered insulin (6.36 +/- 1.21 and 5.08 +/- 0.97 vs. 8.82 +/- 1.61 mg X kg-1 X min-1; P less than 0.03). Through the use of VEI, we were able to significantly alter the deposition of intravenously administered glucose from 11% hepatic and 89% extrahepatic noted with peripheral insulin to 35% hepatic and 65% extrahepatic with VEI (P less than 0.03). Thus, by encapsulating insulin into a lipid carrier specifically targeted to the liver, selective hepatic insulinization can be achieved. As a result of this approach, one can alter the distribution of a glucose load to favor hepatic deposition.

Animals↗

Inhibition of phosphatidylinositol synthase by glucose in human retinal pigment epithelial cells.

A series of interrelated biochemical and functional defects, induced by hyperglycemia, associated with intracellular depletion of D-myo-inositol, and corrected by aldose reductase inhibitors, have been ascribed to abnormal phosphoinositide metabolism in several tissues prone to diabetic complications. However, reductions in tissue D-myo-inositol content are not universally found in complications-prone diabetic tissues, and direct mass-action effects of cellular D-myo-inositol depletion on the critical CDPdiacylglycerol-inositol 3-phosphatidyltransferase (PI synthase; EC 2.7.8.11) step have never been shown conclusively in relevant cells. The studies reported here simultaneously estimated the chemical mass of CDP diglyceride by equilibrium labeling with 5-[3H]cytidine and phosphoinositide biosynthesis by the incorporation of [32P]orthophosphate into phosphoinositide. This was done to assess the degree of inhibition of PI synthase under various degrees of D-myo-inositol depletion and sorbitol accumulation induced by glucose and other metabolic manipulations in cultured human retinal pigment epithelial cells, a new in vitro model for diabetic complications. The results suggest that sorbitol accumulation limits the PI synthase reaction in these cells by selectively depleting specific intracellular pools of D-myo-inositol and/or by possible independent effects of sorbitol on PI synthase.

Aldehyde Reductase↗

Reversal of chronic alterations of skeletal muscle protein kinase C from fat-fed rats by BRL-49653.

We have recently shown that the reduction in insulin sensitivity of rats fed a high-fat diet is associated with the translocation of the novel protein kinase C epsilon (nPKC epsilon) from cytosolic to particulate fractions in red skeletal muscle and also the downregulation of cytosolic nPKC theta. Here we have further investigated the link between insulin resistance and PKC by assessing the effects of the thiazolidinedione insulin-sensitizer BRL-49653 on PKC isoenzymes in muscle. BRL-49653 increased the recovery of nPKC isoenzymes in cytosolic fractions of red muscle from fat-fed rats, reducing their apparent activation and/or downregulation, whereas PKC in control rats was unaffected. Because BRL-49653 also improves insulin-stimulated glucose uptake in fat-fed rats and reduces muscle lipid storage, especially diglyceride content, these results strengthen the association between lipid availability, nPKC activation, and skeletal muscle insulin resistance and support the hypothesis that chronic activation of nPKC isoenzymes is involved in the generation of muscle insulin resistance in fat-fed rats.

Animals↗

Vasopressin stimulates the mobilization and metabolism of triacylglycerol in perfused rabbit hearts.

Vasopressin stimulates several metabolic processes, including glycogenolysis, gluconeogenesis, and fatty acid oxidation, and promotes lipolysis in rabbit and hamster suprarenal adipose tissue. This study was conducted to determine whether arginine vasopressin (AVP) stimulates the metabolism of triacylglycerols in the isolated perfused rabbit heart. Since the basal output of glycerol in the rabbit heart is very low, the triacylglycerol pool was labeled with [3H]triolein, and triacylglycerol metabolism was followed by analysis of the radioactive products in the perfusate. Administration of AVP (100 ng, 92 pmol) produced a 10-fold increase in the perfusate radioactivity associated with free fatty acids and mono- and diglycerides, as well as an 8-fold increase in the effluent radioactivity associated with triacylglycerol. The V1-receptor antagonist d[(CH2)5Tyr(Me)]AVP blocked the AVP-induced increase in the output of radioactivity in a dose-related manner. The V2-receptor agonist desmopressin (DDAVP) did not increase the outflow of radioactivity. Likewise, AVP-induced release of radioactivity was inhibited when Ca2+ was omitted from the perfusion buffer. Analysis of total lipid extracts of hearts labeled with [3H]triolein showed that the residual radioactivity was associated almost exclusively with authentic triolein both before and after AVP treatment. These data suggest that AVP promotes triacylglycerol mobilization and utilization and that these processes are Ca2+ dependent and mediated by the V1-receptor. Since free fatty acids derived from triacylglycerols are the preferred metabolic substrate for the heart and since plasma AVP levels increase in cardiac stress states such as shock, these findings suggest a metabolic function of AVP in cardiovascular stress states.

Animals↗

Phosphatidylcholine molecular species of calf lung surfactant.

This paper reports the detailed composition of molecular species of the phosphatidylcholines (PCs) in pulmonary surfactant from calves. PC isolated by thin-layer chromatography (TLC) was converted to benzoylated diradyl glyceride derivatives, which were separated by TLC according to linkage group. Quantification of linkage groups by analysis of total fatty acid content demonstrated that surfactant PC contained 97.2% diacyl, 2.4% alkyl-acyl, and 0.4% alkenyl-acyl compounds. The diacyl and alkyl-acyl diglyceride derivatives were separated into individual molecular species by high-performance liquid chromatography. Four major species constituted 87% of the diacyl compounds. Dipalmitoyl phosphatidylcholine (DPPC) was the most abundant constituent, contributing 41% of the total PC. A second disaturated species, palmitoyl-myristoyl phosphatidylcholine (PMPC), also contributed an additional 12% of total PC. At least 65% of PMPC occurred as the 1-palmitoyl-2-myristoyl/isomer, which has a lower melting point than the 1-myristoyl-2-palmitoyl compound. These results show that most of pulmonary surfactant PC is a relatively simple mixture, that numerous minor compounds are present in small but possibly important amounts, and that in surfactant from calves, the widely reported estimate that DPPC constitutes 60% of surfactant PC is too large by 50%.

1,2-Dipalmitoylphosphatidylcholine↗

Participation of protein kinase C in desensitization to bradykinin and to carbachol in MDCK cells.

To explore the possibility that protein kinase C (PKC) participates in desensitization to Ca(2+)-mobilizing hormones in MDCK cells, we measured intracellular free Ca2+ concentration ([Ca2+]i) using fura-2 and video microscopy. We first examined the response of MDCK cells grown on plastic dishes. Exposure of cells to bradykinin (BK) or to carbachol, followed by reexposure after washing off the hormone, revealed two features of hormone desensitization. First, the initial hormone-induced peak response of [Ca2+]i was transitory; [Ca2+]i returned to control levels despite continued presence of hormone. Second, cells remained refractory to hormone rechallenge for 5 min after washing off hormone; [Ca2+]i response on re-exposure was reduced 70% compared with initial hormone-stimulated peak. Subsequent experiments demonstrated involvement of PKC in both desensitization processes. Pretreatment with the phorbol ester, phorbol 12-myristate 13-acetate, significantly blunted initial response to BK and to carbachol by 70 and 86%, respectively. When hormone-stimulated C kinase activity was enhanced with the diglyceride lipase inhibitor, RG 80267, BK- and carbachol-induced increases in [Ca2+]i were blunted 50%. Pretreatment with sphingosine, an inhibitor of PKC, resulted in an amplification of initial hormone-stimulated increase in [Ca2+]i and restored the response to rechallenge. To examine the possible interaction between BK and carbachol,both of which use PKC to induce desensitization, we measured [Ca2+]i in cells grown as monolayers on permeable, collagen-coated supports. Both carbachol and BK induced desensitization to the other hormone (heterologous desensitization)provided that the two hormones were applied to the same side of the polarized monolayer (apical).(ABSTRACT TRUNCATED AT 250 WORDS)

1-(5-Isoquinolinesulfonyl)-2-Methylpiperazine↗

Effect of U-73,122, an inhibitor of phospholipase C, on actions of parathyroid hormone in opossum kidney cells.

The relative roles of the adenylate cyclase-protein kinase A system (AC-PKA), the phospholipase C-protein kinase C system (PLC-PKC), and increases in cytosolic calcium in mediating the final actions of parathyroid hormone (PTH) remain ill defined. Although an important role for the PLC-PKC system in the regulation of phosphate transport in response to PTH has been suggested, previous studies from our laboratory and others, in OK cells, have emphasized the major role of AC-PKA. The present studies were designed to dissociate the second messengers for PTH by using an inhibitor of PLC (U-73,122). Studies were performed in confluent cultures of OK cells with and without preincubation with U-73,122 (1 microM). This inhibitor did not alter adenosine 3',5'-cyclic monophosphate (cAMP) production or the activation of PKA in response to PTH. Preincubation with U-73,122, however, totally abolished PTH-stimulated increases in diglyceride mass, consistent with inhibition of PLC. Activation of particulate PKC was then examined in response to PTH in the absence and presence of U-73,122. Although PTH resulted in an increase in particulate PKC activity in control cultures, this effect was abolished in the presence of U-73,122 and actually decreased significantly. Therefore, having documented marked attenuation of PLC-PKC, we next examined the effects of PTH on phosphate transport. Basal phosphate uptake was not altered by 1 microM U-73,122. Dose-response curves of the inhibition of phosphate transport in response to PTH were identical in the presence or absence of U-73,122. Thus inhibition of PLC and PKC activities did not alter the effects of PTH on phosphate transport.(ABSTRACT TRUNCATED AT 250 WORDS)

1-Methyl-3-isobutylxanthine↗

Metabolic effects of fatty acid-bearing albumin on a proximal tubule cell line.

In glomerular disease, fatty acids carried on albumin are taken up by the proximal tubule with filtered albumin. We postulate that the fatty acids carried on filtered albumin could contribute to the deleterious effects of proteinuria. The effects of fatty acid-albumin complexes on lipid metabolism have been studied in opossum kidney (OK) cells, a proximal tubule cell line. OK cells transported two-thirds of [14C]palmitate-albumin (5 mg/ml) intracellularly within 16 h. [14C]palmitate-albumin was distributed into phosphatidylcholines, phosphatidylinositols, and tri- and diglycerides. 14C-labeled unsaturated fatty acid albumins (oleate, linoleate, and arachidonate) showed preferential incorporation into triglycerides, with lesser incorporation into phospholipids. Studies of total lipid pools showed that fatty acid-albumin uptake produced a particularly marked increase in total triglyceride levels (approximately 10-fold). Oil red O staining of OK cells cultured with oleate-albumin showed a marked increase in intracellular lipid droplets, compared with cells cultured with delipidated albumin, consistent with triglyceride accumulation. Less than 1% of [14C]palmitate taken up was isolated as intracellular free fatty acid. Less than 5% of [14C]palmitate internalized was oxidized to 14CO2. Different fatty acids, when taken up by the OK cell, have distinct metabolic fates. Each fatty acid is incorporated in a characteristic fashion into certain complex lipids, possibly dependent on the presence or absence of double bonds. We propose that this may have functional consequences for the proximal tubule in the human nephrotic syndrome.

Animals↗

Synthesis of phosphatidylcholine by rat lung during choline deficiency.

The effect of choline deficiency on the de novo pathway for phosphatidylcholine (PC) synthesis in the lung was investigated in rats fed a washed soy protein (lipotrophic) diet deficient in choline and methionine for 2-3 wk. Lungs from lipotrophic rats showed a decreased content of choline and choline-phosphate (P less than 0.05) compared with control but no change in content of cytidine 5'-diphosphocholine or PC. Isolated perfused lungs from lipotrophic rats were evaluated for choline and fatty acid utilization for PC synthesis. Lipotrophic lungs perfused with 5 microM [14C-methyl]-choline chloride showed increased incorporation into PC while there was no significant effect at saturating levels of choline (100 microM). There was increased incorporation of [1-14C]-palmitic acid into PC and diglyceride and increased incorporation of D-[U-14C]glucose into fatty acids of PC. Increased choline and glucose incorporation was not due to alteration of intracellular specific activity of these substrates. This study indicates the utilization of choline and fatty acid for PC synthesis is stimulated as a result of choline deficiency while lung CDP-choline concentration is maintained, possibly through regulation of choline phosphate cytidyl transferase activity. These mechanisms compensate for decreased choline availability to maintain the PC content of lungs.

Animals↗

Cytoplasmic lipid bodies in eosinophils: central roles in eicosanoid generation.

BACKGROUND: Lipid bodies are lipid-rich cytoplasmic inclusions which form in diverse cell types, including eosinophils. Lipid body numbers increase in vivo in leukocytes participating in inflammatory processes. Our interest in lipid bodies relates to the roles that these structures play in arachidonate metabolism by eosinophils and other leukocytes involved in inflammation. METHODS: Specific agonists, platelet-activating factor (PAF), two cis-unsaturated fatty acids (arachidonic and oleic acids) and a diglyceride (1-oleyl-2-acetyl-glycerol (OAG)), were used to stimulate lipid body formation in human eosinophils. Lipid bodies were enumerated and eosinophils were stimulated with submaximal calcium ionophore to generate leukotriene C4 (LTC4), which was quantitated by immunoassay. RESULTS: Lipid body formation was rapidly inducible in eosinophils by specific intracellular signaling pathways. PAF, the two cis-unsaturated fatty acids and OAG each stimulated lipid body formation in eosinophils. Increased numbers of lipid bodies correlated quantitatively with the 'priming' response of eosinophils to form enhanced amounts of the 5-lipoxygenase-derived eicosanoid, LTC4. CONCLUSION: Lipid bodies in eosinophils function as intracellular domains that are both depots of esterified arachidonate and sites at which regulated enymatic events relevant to arachidonate metabolism can occur. In conjunction with our findings that key eicosanoid-forming enzzymes, including cyclooxygenase, 5- and 15-lipoxygenase and LTC4 synthase, are localized at lipid bodies in eosinophils, the finding that induction of lipid body formation correlated quantitatively with enhanced LTC4 production indicate that lipid bodies are structurally distinct, inducible, non-nuclear sites for enhanced synthesis of paracrine eicosanoid mediators of inflammation.

Cells, Cultured↗

Modification of basal and GRF-stimulated cyclic AMP levels and growth hormone release by phospholipid metabolic enzyme inhibitors.

The relative importance of several phospholipid pathways in cyclic AMP (cAMP) metabolism and growth hormone (GH) release was determined by an indirect, pharmacological approach in cultured anterior pituitary cells. The diglyceride lipase inhibitor RHC-80267 (30-100 microM) had no significant effect on cAMP levels but markedly inhibited basal and growth hormone-releasing factor-(GRF) stimulated GH secretion. A phospholipase A2 inhibitor quinacrine (30 microM) increased cellular cAMP content while decreasing GH release. Indomethacin, which reduces cyclooxygenase activity, affected neither cAMP levels nor GRF-enhanced GH release; this drug (30-100 microM) did reduce basal GH release. The lipoxygenase inhibitors nordihydroguaiaretic acid and BW-755c both reduced basal and GRF-stimulated GH release in a concentration-dependent manner. Both agents had various effects on cAMP levels. These results suggest that phospholipid metabolism, through both the cyclooxygenase and lipoxygenase pathways, contributes to basal GH release, while the lipoxygenase route predominates in GRF-stimulated GH release in vitro. Interestingly, cAMP metabolism can be dissociated from GH release with some of these probes, indicating an action of phospholipid metabolites distal or lateral to the cAMP-generating system.

Animals↗

The effects of cytomegalovirus infection on polar lipids and neutral lipids in cultured human cells.

The effects of infection by the human cytomegaloviruses Ad-169 on the incorporation of [14C]acetate into the polar and neutral lipids of human embryonic lung cells and human saphenous vein smooth muscle cells were compared to [14C]acetate incorporation in mock-infected control cells. Cytomegalovirus infection caused a shift in the relative amounts of polar and neutral lipids, with infected cells having lower amounts of polar lipids and higher amounts of neutral lipids than mock-infected controls. When neutral lipids were separated into diglyceride (DG), cholesterol (C), fatty acid, triglyceride (TG) and cholesterol ester (CE) components, Ad-169-infected cells had lower levels of incorporation of label into CE, TG, and DG fractions, and higher levels of label incorporation into C than mock-infected cells.

Acetates↗

Contribution of proteinuria to progressive renal injury: consequences of tubular uptake of fatty acid bearing albumin.

Proteinuria is a marker of a poor prognosis in the glomerulonephritides and progressive renal disease. Recent animal studies have directly implicated proteinuria in inflammatory tubulointerstitial injury. The proximal tubule takes up significant amounts of lipid in the human nephrotic syndrome. We propose that proximal tubular uptake and metabolism of lipids, notably fatty acid bearing albumin, contributes to the chronic tubulointerstitial infiltration and injury associated with heavy proteinuria. Work in our laboratory has shown that a novel nonpolar lipid released by proximal tubules endocytosing fatty acid-bearing albumin is a potent macrophage chemoattractant. We have also studied the metabolic destiny of fatty acids liberated upon proximal tubular catabolism of albumin. Palmitate was preferentially metabolized to phosphatidylcholines, phosphatidylinositols and diglycerides. Oleate and linoleate were metabolized to triglycerides. Palmitate was profoundly inhibitory to OK cell growth, whilst oleate was stimulatory. In nephrosis, faced with an unregulated influx of fatty acids on albumin, the proximal tubule metabolizes them to a variety of lipids, some of which have pathological effects. Thus, the metabolism of albumin-bound fatty acids by the proximal tubule during heavy proteinuria may directly underlie subsequent tubulointerstitial inflammation and altered response to injury.

Albumins↗

Hormonal influence on uterine lipids.

The effects of oestrogen (OE), progesterone (P) and oestrogen plus progesterone (OEPP) on uterine lipids of adult ovariectomized rats were studied. Administration of gonodal hormones brought about considerable alterations in total lipids, mainly due to an increase in phospholipids and glycerides in the case of OE and P groups. Even though the total cholesterol remained unaltered, a marked alteration in its fractions was evident in all the groups. Oestrogen seems to decrease all the glyceride classes while progesterone induces accumulation ot triglycerides with concomitant decrease in mono- and diglycerides. Individual classes of phospholipids show marked alterations in their distribution in all the groups studied.

Animals↗