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Biomedical subjects

U N Das

Publications and source records attributed to U N Das.

At least 19 recordsLinked to original sources

Cytotoxic action of cis-unsaturated fatty acids on human cervical carcinoma (HeLa) cells: relationship to free radicals and lipid peroxidation and its modulation by calmodulin antagonists.

Specific fatty acids such as linoleic acid (LA), gamma-linolenic acid (GLA), dihomo gamma linolenic acid (DGLA), eicosapentaenoic acid (EPA) and docosahexaenoic acid (DHA) showed cytotoxicity towards human cervical (HeLa) cells in vitro. Cyclo-oxygenase inhibitor, indomethacin; lipoxygenase inhibitor, nordihydroguiaretic acid (NDGA); anti-oxidant, vitamin E; and calmodulin antagonists, trifluoperazine (TFP) and chlorpromazine (CPZ) blocked the cytotoxic action of these fatty acids. GLA-induced free radical generation and lipid peroxidation were also inhibited by indomethacin, NDGA, vitamin E, TFP and CPZ. Both indomethacin and NDGA also showed significant anti-oxidant property. These results suggest that fatty acid-induced cytotoxic action against HeLa cells is a free radical dependent process and that it can be modulated by calmodulin antagonists. These results are in contrast to those observed by us earlier with human breast cancer cells where in it was found that the tumoricidal action of fatty acids can be blocked by anti-oxidants but not by cyclo-oxygenase (CO) and lipoxygenase (LO) inhibitors. From these results it can be suggested that though free radicals are the mediators of the tumoricidal action of fatty acids, the mechanism of their production may be different in different types of tumor cells.

Calmodulin

Can free radicals induce coronary vasospasm and acute myocardial infarction?

Spontaneous acute occlusion of the coronary artery produces regional myocardial ischemia and infarction. This coronary occlusion could be due to rapid progression of atherosclerosis or vasospasm. The factors that can precipitate an acute attack of myocardial infarction or coronary spasm are not known. It is proposed that a stress-induced rise of unesterified arachidonic acid could trigger a leukocyte respiratory burst with the release of free radicals such as superoxide anion (O2-), hydrogen peroxide, hydroxyl radical, and singlet oxygen. These free radicals have the ability to inhibit prostacyclin (PGI2) formation and enhance the breakdown of endothelium-derived vascular relaxing factor (EDRF) which are potent vasodilators and platelet anti-aggregators. This may lead to rapid progression of atherosclerosis or coronary vasospasm leading to acute myocardial infarction. If this is true, free radical quenchers and inhibitors of leukocyte oxidative burst may be useful in the prevention of progression of atherosclerosis and coronary vasospasm.

Animals

Psoriasis: current concepts and new approaches to therapy.

Psoriasis is a common disorder characterized by marked increases in keratinocyte proliferation, abnormal patterns of keratinocyte differentiation, prominent alterations in dermal capillary vasculature and the presence of dermal and epidermal T cells, monocytes/macrophages and neutrophils. It is now known that psoriasis can occur due to abnormalities in essential fatty acid metabolism, lymphokine secretion, free radical generation, lipid peroxidation and eicosanoid metabolism. It is possible to suppress almost completely psoriatic lesions by judicious use of methotrexate, cyclosporine A, and eicosapentaenoic acid. Our studies have shown that in patients with psoriasis there is an increase in the generation of free radicals with an alteration in essential fatty acid metabolism and that side-effects of anti-cancer drugs can be blocked by essential fatty acids in vivo. Thus, essential fatty acid metabolism seems to play a crucial role both in the pathogenesis and treatment of psoriasis.

Cyclosporine

Fatty acid changes during the induction of differentiation of human promyelocytic leukemia (HL-60) cells by phorbolmyristate acetate.

We studied fatty acid changes that are likely to occur during phorbolmyristate acetate (PMA)-induced differentiation of HL-60 cells. It was observed that PMA-induced differentiation is associated with increased uptake, but not synthesis, of fatty acids. Fatty acid analysis revealed that arachidonic acid (AA), 20:5 n-3 and 22:6 n-3 levels are reduced with a concomitant increase in 22:5 n-6 in the phospholipid fraction. In the FFA fraction there are increases in free AA, free 20:5 n-3, 22:5 n-3 and 22:6 n-3, and a fall in free 22:5 n-6 in PMA-treated cells. PMA-induced differentiation and nitroblue tetrazolium reduction by PMA-treated cells was only partially inhibited (about 20-30%) by indomethacin and nordihydroguiaretic acid (cyclooxygenase and lipoxygenase inhibitors respectively), but not by superoxide dismutase, catalase or mannitol. These results indicate that PMA-induced differentiation of HL-60 cells is accompanied by specific changes in the fatty acid composition of the cells.

Cell Differentiation

Intratumoral gamma-linoleic acid therapy of human gliomas.

In vitro and in vivo studies have shown that gamma-linoleic acid (GLA), arachidonic acid (AA) and eicosapentaenoic acid (EPA) can selectively kill tumor cells. In a clinical trial, the effectiveness of intratumoral administration of GLA in patients with gliomas was studied. Of the 6 patients treated, all showed substantial response to GLA as documented by computerized tomography. There were no acute side-effects due to the therapy. This report demonstrates that intratumoral administration of GLA is a possible approach to the treatment of human glial tumors.

Adolescent

The effect of chemical hepatocarcinogenesis on liver phospholipid composition in rats fed N-6 and N-3 fatty acid-supplemented diets.

The effect of dietary fats on essential fatty acid metabolism in rats subjected to chemically induced hepatocarcinogenesis was studied. Sixty male rats were fed a diet supplemented with one of the following three oil compositions: 10% hydrogenated coconut oil (HCO); 5% hydrogenated coconut oil and 5% gamma-linolenic acid (18:3n-6)-rich evening primrose oil (EPO); or 5% hydrogenated coconut oil and 5% marine oil (FO). Half of the animals in each dietary regimen were subjected to hepatocarcinogenesis induction using diethylnitrosamine and 2-acetylaminofluorene (2-AAF) followed by partial hepatectomy, whereas the other half underwent hepatectomy without receiving diethylnitrosamine and 2-acetylaminofluorene. Liver phospholipid composition was analyzed. In comparison to the HCO group, the EPO group showed raised levels of arachidonic acid (20:4n-6) and suppressed n-3 fatty acids. The FO group, on the other hand, showed suppressed levels of n-6 and increased n-3 fatty acids. Hepatocarcinogenesis suppressed the level of 20:4n-6 and this effect was greater in the FO rats. The levels of dihomo-gamma-linolenic acid (20:3n-6) were increased by the hepatocarcinogenic treatment, and this effect was further accentuated in the EPO rats. These results suggest that hepatocarcinogenesis may suppress the activity of delta-5-desaturase, which may be one of the reasons why tumor cell membranes have low levels of long chain fatty acids, especially 20:4n-6 cells, and have an impaired capacity to undergo lipid peroxidation.

Animals

Oncogene.

Recent studies have shown that activation of oncogenes, genes concerned with cell growth, and inactivation of anti-oncogenes may be responsible for uncontrolled cell proliferation leading to malignancy. These oncogenes code for products or proteins which are closely similar to growth factors or receptors of growth factors. Alterations in lipid metabolism in the form of excess formation of inositol triphosphate and relocation of protein kinase C, the second messengers of the mitotic process, can initiate cell division. Oncogenes can be activated by chromosomal aberrations induced by chemicals, viruses and drugs. The identification of oncogenes and their products may have relevance to the development of new therapeutic strategies in cancer.

Cell Differentiation

Tumoricidal action of cis-unsaturated fatty acids and their relationship to free radicals and lipid peroxidation.

Cis-unsaturated fatty acids (c-UFAs) such as gamma-linolenic acid (GLA), arachidonic acid (AA) and eicosapentaenoic acid (EPA) can kill tumor cells selectively in vitro. As c-UFAs have the ability to augment free radical generation, the effect of antioxidants, free radical quenchers and augmentors of free radical generation such as iron and copper salts on fatty acid-induced tumor cell death was studied. In addition, the role of lipid peroxidation in the tumoricidal action of c-UFAs was also examined. Results indicate that vitamin E, uric acid, glutathione peroxidase, superoxide dismutase and ATP can block, whereas iron, copper and catalase enhance the tumoricidal action of GLA. The ability of GLA, AA and EPA to kill tumor cells correlated with the amount of lipid peroxidation these fatty acids can induce as measured by thiobarbituric acid test. It was also observed that 14C-labelled linoleic acid uptake was almost the same whereas that of 14C-labelled arachidonic acid and eicosapentaenoic acid were substantially less in tumor cells compared to normal cells. Tumor cells incorporated major portions of the fatty acids in the ether lipid and phospholipid fractions, whereas normal cells incorporated the fatty acids primarily in the phospholipid fraction. These results suggest that c-UFA-induced tumoricidal action is a free radical dependent process and that there are significant differences between normal and tumor cells in fatty acid uptake and distribution.

Animals

Interaction(s) between essential fatty acids, eicosanoids, cytokines, growth factors and free radicals: relevance to new therapeutic strategies in rheumatoid arthritis and other collagen vascular diseases.

Eicosanoids, lymphokines, and free radicals are known to participate in the pathogenesis of inflammation. Tumour necrosis factor (TNF), interleukin-1 and 6 (IL-1 and IL-6) and colony stimulating factor -1 (CSF-1) are secreted mainly by activated macrophages, whereas T-cells secrete IL-2, IL-3, IL-4 and interferon-gamma (IFN-gamma). In addition, activated macrophages and lymphocytes can also produce eicosanoids and free radicals which have potent pro-inflammatory actions. Eicosanoids, lymphokines, and free radicals can modulate the immune response, cell proliferation, stimulate collagenase and proteases secretion and induce bone resorption; events which are known to be associated with various collagen vascular diseases. On the other hand transforming growth factor-beta (TGF-beta) produced by synovial tissue, platelets and lymphocytes can inhibit collagenase production, suppress T-cell and NK-cell proliferation and activation and block free radical generation and seems to be of benefit in rheumatoid arthritis. Drugs such as cyclosporine, 1,25,dihydroxycholecalciferol and pentoxyfylline can block lymphokine and TNF production and thus, may inhibit the inflammatory process. Essential fatty acids, the precursors of eicosanoids, are suppressors of T-cell proliferation, IL-1, IL-2 and TNF production and have been shown to be of benefit in rheumatoid arthritis, systemic lupus erythematosus and glomerulonephritis. Thus, the interactions between essential fatty acids, eicosanoids, lymphokines, TGF-beta and free radicals suggest that new therapeutic strategies can be devised to modify the course of collagen vascular diseases.

Arthritis, Rheumatoid

Reactive oxygen species, lipid peroxides and essential fatty acids in patients with rheumatoid arthritis and systemic lupus erythematosus.

We studied free radical generation, lipid peroxidation and the levels of essential fatty acids and of their metabolites in patients with rheumatoid arthritis (RA) and systemic lupus erythematosus (SLE). Both superoxide and hydrogen peroxide generation by peripheral leukocytes but not malondialdehyde levels, as measured by thiobarbituric acid assay, were found to be significantly enhanced both in RA and SLE. Fatty acid analysis of the plasma PL fraction revealed that both LA and ALA metabolites are significantly decreased in RA and SLE compared to controls. These results suggest that essential fatty acid metabolism is altered in RA and SLE.

Adult

Free radical generation, lipid peroxidation and essential fatty acids in patients with septicemia.

Infections due to gram-negative bacteria and other organisms can lead to septicemia and shock in some patients. Endotoxins, which cause these pathophysiological events, stimulate macrophages to elaborate tumor necrosis factor and other lymphokines. These lymphokines can augment free radical generation by polymorphonuclear leukocytes, macrophages and other cells, which may ultimately produce respiratory distress syndrome, multiorgan failure and irreversible shock seen in septicemia. This is supported by our results presented here that there is indeed an increase in free radical generation and lipid peroxidation in patients with septicemia. In addition, analysis of plasma lipid profile in these patients showed that gamma-linolenic, dihomogamma-linolenic and arachidonic acids of n-6 series and alpha-linolenic and eicosapentaenoic acids of the n-3 series are decreased in their plasma phospholipid fraction. These results suggest that free radicals, lipid peroxides, and alteration in essential fatty acid metabolism may have a role in the pathogenesis of septicemia.

Adolescent

Arachidonic acid as a mediator of some of the actions of phorbolmyristate acetate, a tumor promoter and inducer of differentiation.

Phorbolmyristate acetate or 12-O-tetradecanyl phorbol 13-acetate (PMA or TPA) stimulates membrane phospholipases (phospholipase C or A2) resulting in the formation of diacylglyceride, free arachidonic acid, and increased amounts of arachidonic acid metabolites. Both PMA and AA are stimulators of the respiratory burst in phagocytic cells, induce inflammation, cause chromosomal aberrations, have anti-viral activity and activate protein kinase C. The initial action of PMA is on the cell membrane and is concentrated largely in the lipid phase of cell membranes. This evidence suggests that the actions of PMA are in large part mediated by AA, released from the cell membrane lipid pool. Thus, it is likely that the ability of PMA to induce terminal differentiation in HL-60 cells and to suppress C-myc mRNA levels are also mediated by AA and/or its products. This may have relevance to the possible role of AA in the regulation of oncogenes and cancer.

Animals

Tumour necrosis factor/cachectin: biology and relevance to disease.

Tumour necrosis factor/cachectin (TNF) is considered a primary mediator in the pathogenesis of injury, infection and inflammation and seems to be essential for host defense and tissue homeostasis. On the other hand, TNF can also cause septic shock, tissue injury and cachexia. There is a close interaction between TNF and other cytokines such as interferon, interleukin-1 and interleukin-2, and prostaglandins. TNF is responsible for the deleterious effects of endotoxaemia, and passive immunization against it substantially mitigates the lethal effect of endotoxin. It is also a potent pyrogen, causes bone resorption, activates neutrophil adherence and degranulation and phagocytosis, and ultimately participates in inflammatory diseases of the skin, gastrointestinal tract, joints, muscle and central nervous system and in neoplastic diseases.

Animals

Stimulation of free radical generation in human leukocytes by various agents including tumor necrosis factor is a calmodulin dependent process.

The mechanism(s) involved in the generation of free radicals in human leukocytes by phorbol myristate acetate (PMA), formyl-methionyl-leucyl-phenylalanine (FMP), lipopolysaccharide (LPS), arachidonic acid (AA), and recombinant-tumor necrosis factor-1-alpha (r-TNF-1 alpha) was investigated. Calmodulin antagonists, chlorpromazine and trifluoperazine, inhibited free radical generation in human leukocytes by these stimulants. Dexamethosone, an inhibitor of phospholipase A2, could also block free radical generation in human leukocytes induced by r-TNF 1 alpha. PMA, FMP, LPS and TNF can activate phospholipase A2 and induce the release of AA from the cell membrane lipid pool. AA induced free radical generation in human leukocytes can be inhibited by calmodulin antagonists. Hence, it is likely that calmodulin dependent events play a crucial role in the generation of free radicals by human leukocytes in response to various stimulants including TNF.

Calmodulin

Increase in free radical generation and lipid peroxidation following chemotherapy in patients with cancer.

Several anti-cancer drugs are known to bring about their tumoricidal actions by a free radical dependent mechanism. Majority of the studies reported that adriamycin, mitomycin C, bleomycin, etc., augment free radical generation and lipid peroxidation process in vitro. Our results reported here suggest that following chemotherapy both stimulated and unstimulated human polymorphonuclear leukocytes generate increased amounts of superoxide anion and hydrogen peroxide. This was accompanied by increased formation of lipid peroxidation products as measured by thiobarbituric acid assay. These results confirm that many anti-cancer drugs augment free radical generation and lipid peroxidation even in an vivo situation.

Adult

Agranulocytosis, aplastic anemia, and leukemia: relevance to arachidonic acid metabolism.

Several agents including drugs, chemicals and viruses are known to induce agranulocytosis, aplastic anemia, and leukemia. The recent identification, characterization and cloning of several peptide regulatory factors, including granulocyte-macrophage-colony stimulating peptide regulatory factor (GM-CSF), erythropoietin, and interleukins and a study of their actions, suggest that agents producing agranulocytosis, aplastic anemia, and leukemia may interfere with the action of these factors. The agents that are capable of inducing these diseases and the various peptide regulatory factors have positive and/or negative actions on the prostaglandin system. Prostaglandins are known to be involved in the maturation and differentiation of the progenitor cells of the bone marrow and in erythropoietin-mediated erythropoiesis. Since prostaglandins influence immune response, modify genetic damage induced by drugs and chemicals, modulate gene action, and have feed-back control on the actions of peptic regulatory factors, it is likely that prostaglandins are involved in the pathogenesis of agranulocytosis, aplastic anemia, and leukemia. If so, this may lead to new therapeutic strategies in these hematological conditions.

Agranulocytosis