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S Passi

Publications and source records attributed to S Passi.

At least 55 records · Page 3Linked to original sources

Hyperpigmentary disorders--mechanisms of action. Effect of azelaic acid on melanoma and other tumoral cells in culture.

Azelaic acid has been shown to have a dose- and time-dependent inhibitory effect on both proliferation and cell viability of murine and human melanoma cells at a concentration of 10(-3) M and higher. It also has an inhibitory effect on DNA synthesis and plasminogen activator activity, and causes swelling and vacuolation of mitochondria. These effects have also been observed with other tumoral cells in culture-lymphoma and leukaemia derived cell lines, and human squamous cell carcinoma. Normal cells in culture are not generally affected by exposure to azelaic acid. Tissue culture experiments have confirmed the clinical activity and efficacy of azelaic acid, and biochemical conclusions as to its mode of action.

Animals↗

Ten years' experience of treating lentigo maligna with topical azelaic acid.

Topically applied azelaic acid led to complete clinical and histological resolution of lentigo maligna in more than 50 patients. The therapeutic results are highly durable, in fact 27 out of the 50 are still disease-free, 5-10 years after treatment. There was a recurrence in 11 cases, but all resolved on renewing treatment. The effect of azelaic acid is illustrated in a patient with lentigo maligna monitored clinically, histologically and ultrastructurally over the past 5 years.

Administration, Topical↗

Free fatty acids: a stimulus for mucin hypersecretion in cholesterol gallstone biles.

The concentration of free fatty acids, phosphatidylcholine and lysophosphatidylcholine, and the fatty acid composition as well as the levels of the mucins, analyzed by an improved GLC method, were examined in ten biles from patients with cholesterol gallstones (pathological biles) and in ten control biles. In pathological biles the amounts of free fatty acids and phosphatidylcholine, were significantly higher (8.99 +/- 1.09) vs. 2.75 +/- 0.62 micrograms/mg) and lower (6.62 +/- 0.71 vs. 21.91 +/- 3.86 micrograms/mg), respectively, than in control biles, indicating that a relationship exists between the two lipid fractions. Lysophosphatidylcholine concentrations remained unchanged in the two groups (1.02 +/- 0.55 micrograms/mg in pathological biles vs. 1.32 +/- 0.57 micrograms/mg in control biles). The increased levels of free fatty acids were directly correlated (r = 0.73, P less than 0.05) with biliary hypersecretion of mucus glycoproteins. Acetylglucosamine and acetylgalactosamine were significantly higher in pathological biles than in control biles (1.91 +/- 0.67 vs. 0.60 +/- 0.13 microgram/mg). The nucleating potency of the increased amounts of mucins, coupled with lowered levels of phosphatidylcholine, might play a very important role in stone formation and precipitation.

Adult↗

Comparative cytotoxicity of phenols in vitro.

Two melanotic human melanoma cell lines, IRE 1 and IRE 2, and the lymphoma- and leukaemia-derived cell lines Raji and K 562, were exposed to different concentrations (from 5 X 10(-3) M to 10(-5) M) of phenols, both substrates (s) and non-substrates (ns) of tyrosinase, in the presence or absence of the oxygen-radical-scavenger enzymes superoxide dismutase, catalase and peroxidase. Monophenols were tyrosine (s), 4-hydroxyanisole (s) and butylated hydroxyanisole (ns); diphenols were L-3,4-dihydroxyphenylalanine (s), dopamine (3,4-dihydroxyphenethylamine) (s), terbutylcatechol (s), hydroquinone (s) and resorcinol (ns); triphenols were 6-hydroxydopa (3,4,6-trihydroxyphenylalanine) (s) and methyl gallate (s). Triphenols and o- and p-diphenols underwent complete oxidation in culture medium within 24 h of incubation and were significantly more toxic than monophenols and the m-diphenol resorcinol, which, under the same cultural conditions, were much more stable. No significant differences in percentage survival were found among the different cell lines for each drug tested. The major component of toxicity up to 24 h of di- and tri-phenols is due to toxic oxygen species acting outside the cells and not to cellular uptake of these phenols as such. In fact the addition of oxygen-radical-scavenger enzymes significantly (P less than 0.01) decreased the adverse effect of these drugs on all cell lines. The lower toxicity of monophenols and resorcinol as compared with that of di- and tri-phenols is due, in our opinion, to the fact that they are less oxidized under the conditions existing in the culture medium, and therefore do not produce sufficient levels of oxygen radicals. For these compounds, a primary intracellular action has to be taken into account to explain their cytotoxicity.

Anisoles↗

Mechanism of antitumoral activity of catechols in culture.

Cell lines Raji and K 562, lacking tyrosinase, and two melanotic human melanoma cell lines (IRE 1 and IRE 2), were exposed to concentrations from 5 X 10(-3) M to 10(-5) M of different phenols which are substrates of tyrosinase, i.e. l-dopa, dopamine, hydroquinone, terbutylcatechol, and of phenols which are not substrates of the tyrosinase, i.e. resorcinol, butylated hydroxyanisole and hydroquinone dimethyl ether. Cultures were carried out in the presence or in the absence of oxygen radical scavenger enzymes superoxide dismutase, catalase and peroxidase. The stability of each substance in culture medium was assayed by high performance liquid chromatography (HPLC). Results showed that: catechols which are substrates of tyrosinase decompose fully after 24 hr in medium; they are equally toxic for melanoma and non-melanoma cell lines; their toxicity increases when they are preincubated in medium for 24 hr and 48 hr before addition of cells; their toxicity is significantly reduced by addition of scavenger enzymes; on the contrary, phenols not substrates of tyrosinase are stable in medium and their toxicity is not reduced by scavenger enzymes. It is concluded that tyrosinase does not play a major role in catechol toxicity in vitro, which is probably due to some products of catechol decomposition, especially oxygen radicals, acting outside the cells.

Anisoles↗

Scanning electron microscopy of human and murine melanoma cells exposed to medium chain-length (C6-C12) dicarboxylic acids in tissue culture.

Human and murine (Harding-Passey and Cloudman) melanoma cells were exposed to various concentrations (1 x 10(-3) M-1 x 10(-1) M) of adipic (C6), azelaic (C9), and dodecanedioic (C12) acids for 1-6 hours in tissue culture, and the effects on shape and surface topography were examined by scanning electron microscopy. Effects, i.e., rounding up, concentration of microvilli, blebbing, and prominence of retraction fibrils were time and dose dependent, and for the same concentrations and exposure times, C12 had a greater effect than C9, and both a significantly greater effect than C6. These differential reactions to the three diacids parallel previously reported effects on cell kinetics and viability. The changes could be due to a prime effect on the cell membrane, or they might reflect phases of the cell cycle directed by action of the diacids on the nucleus; this latter seems unlikely. An effect on the cytoskeleton is possibly involved.

Animals↗

Effect of L-carnitine on cultured murine melanoma cells exposed to azelaic acid.

The cytotoxic effect of azelaic acid on murine melanoma cells in culture is due, at least in part, to an antimitochondrial action. We investigated the possibility that the addition of carnitine to the medium may increase the transport of azelaic acid into the mitochondria and thereby increase its cytotoxic effect. Using mitochondrial cross-sectional area measured from electron micrographs as a criterion for mitochondrial damage, we found that the addition of L-carnitine to the culture medium had no effect either alone or with a low (10(-3) M) concentration of azelaic acid. At a high concentration (5 X 10(-2) M) azelaic acid caused swelling and disruption of the mitochondria to such an extent that this was not increased by carnitine. At 10(-2) M azelaic acid, however, some swelling of the mitochondria occurred which was significantly increased by the addition of carnitine. This indicates that carnitine-mediated transport of the diacid into the mitochondria had occurred. We conclude that carnitine may reduce the time or concentration needed for azelaic acid to have a toxic effect on the malignant melanocyte.

Animals↗

Lipoxygenase activity of Pityrosporum in vitro and in vivo.

Lipid peroxidation has been investigated both in cultures of Pityrosporum supplemented with different lipid classes and in skin surface lipids from patients affected with pityriasis versicolor. Thin-layer chromatography (TLC) and 2 spectrophotometric methods were used: the indirect thiobarbituric acid test and the direct N,N-diethyl-1,4-phenylene-diammonium sulfate (DEPD) test. The coupling of the DEPD test with the TLC technique performed by different eluent systems allowed the detection of the specific lipoperoxides deriving from the oxidation of the different lipid classes. In the cultures, Pityrosporum was capable of peroxidating not only unsaturated free fatty acids, but also unsaturated triglycerides, cholesterol, and squalene. A similar lipid peroxidation was observed in patients with pityriasis versicolor in skin lipids from areas positive for fungal hyphae and spores and fluorescent under the UV lamp (366 nm). The lipoperoxide values were significantly higher (p less than 0.05) than in skin lipids from normal controls. Hyphae and spore-negative areas of patients with pityriasis versicolor, whether apparently normal or achromic, showed no evidence of a significant lipid peroxidation and neither did skin areas of patients with pityriasis alba. Though further investigations are necessary, it seems reasonable to suggest, in analogy with other biologic systems, that the presence in skin lipids of a significant amount of highly reactive and cytotoxic lipoperoxides may play a role in the pathogenesis of skin alterations in pityriasis versicolor, including damage to melanocytes and resulting achromia.

Cholesterol↗

Observations on cell kinetics and viability of a human melanoma cell line exposed to dicarboxylic acids in tissue culture.

Cultures of human melanoma cell line B0008 were exposed to the disodium salts of azelaic acid (C9 2Na), adipic acid (C6 2Na) and dodecanediaic acid (C12 2Na) at 10(-2) M and 5 x 10(-2) M for 24 hrs. None of the diacid salts had a significant effect on growth rate or viability of the cells, at 10(-2) M for 24 hrs nor had C6 2Na any effect at 5 x 10(-2) M. At 5 x 10(-2) M for 24 hrs, both C9 2Na, and C12 2Na had a significant effect in reducing both growth and viability. These effects were accompanied by morphological evidence of cell death, and swelling of mitochondria and accumulation of lipid droplets within cytoplasm of still viable cells.

Adipates↗

Activity of azelaic acid on cultures of lymphoma- and leukemia-derived cell lines, normal resting and stimulated lymphocytes and 3T3 fibroblasts.

Azelaic acid (C9- -dicarboxylic acid) is a competitive inhibitor of tyrosinase and some oxidoreductase in vitro, and in vivo has a beneficial effect on lentigo maligna and malignant melanoma. A definite cytotoxic effect in cultures of malignant melanocytes was also reported. In order to establish if the cytotoxic effect of the diacid is exerted equally in the absence of tyrosinase, lymphoma- and leukemia-derived cell lines were cultured for 72 hr with 10(-3) M, 10(-2) M and 5 X 10(-2) M C9 disodium salt. Normal resting lymphocytes, lymphocytes activated by phytohemoagglutinin, and mouse Balb/c 3T3 fibroblasts were also tested to study a possible effect of azelaic acid on DNA synthesis and cell duplication. At 10(-3) M C9 had no effect on the viability of all the cells tested; at 10(-2) M and 5 X 10(-2) M, C9 2Na had a 50-80% cytotoxic effect on lymphoma- and leukemia-derived cell lines, while at the same concentrations it was not toxic to normal lymphocytes, either resting or stimulated, or to 3T3 fibroblasts. The experiments on cellular incorporation of (1-9 14C) azelaic acid showed that the radiocarbon uptake was two to three times higher for lymphoma- and leukemia-derived cell lines than for lymphocytes, either resting or stimulated, or 3T3 fibroblasts. Biochemical analysis revealed that the diacid underwent beta-oxidation in all the cell cultures. Fractionated centrifugations of 3T3 fibroblasts cultured in the presence of radiolabelled azelaic acid (2 X 10(-4) M) plus cold C9 2Na (10(-2) M), showed that the radioactivity was mainly concentrated in the cytoplasm. The results, being similar to those obtained by adding azelaic acid to cultures of melanoma cells, suggest that the cytotoxic effect of azelaic acid may be due to interference with mitochondrial oxido-reductase enzymes, rather than with tyrosinase. The difference in reaction between lymphoma- and leukemia-derived cell lines and normal or stimulated lymphocytes, and 3T3 fibroblasts, could be explained on the basis of a different degree of permeability of the cell membrane, and/or to a possible different sensitivity of reaction of mitochondrial functions. A similar argument could be used to explain the absence of an effect of dicarboxylic acids upon normal as compared with hyperactive or malignant melanocytes in vivo.

Animals↗

Effect of dicarboxylic acids on Harding-Passey and Cloudman S91 melanoma cells in tissue culture.

Clinically, dicarboxylic acids have a cytotoxic effect on the abnormally hyperactive and malignant epidermal melanocyte, and diacids from C8 to C13 have been shown to inhibit mitochondrial oxidoreductases. Here, their effect on the growth kinetics and ultrastructure of murine melanoma cells in culture is examined. Cultures of Harding-Passey and Cloudman S91 melanoma cells were exposed to single doses of the disodium salts of C12, C9, and C6 (which does not significantly inhibit mitochondrial enzymes) dicarboxylic acids at concentrations of 10(-3) M to 10(-1) M. With C12 and C9, viability and cell proliferation over 3 days were significantly affected by concentrations greater than 10(-2) M. With exposure to C6 at 10(-1) M and to medium to which NaCl was added to produce equal osmolarity, the effect was much less. Electron microscopy of cells exposed to C9 at 10(-1) M for 1 h and 6 h revealed massive swelling of mitochondria with destruction of cristae, but plasma and nuclear membranes and membranes of endoplasmic reticulum were intact. Similar damage was not seen with C6 at 10(-1) M nor with equiosomolar NaCl. The results confirm (1) the cytotoxicity of dicarboxylic acids for malignant melanocytes, and (2) that the mitochondrion is a prime target for their action.

Adipates↗

Ultrastructural observations on the effect of azelaic acid on normal human melanocytes and a human melanoma cell line in tissue culture.

Azelaic acid has been shown clinically to have a cytotoxic effect on the abnormally active and malignant human melanocyte, but it has no apparent effect upon normal melanocytes. This difference in reactivity between normal and abnormal cells in vivo is further examined here in vitro. The disodium salt of azelaic acid (C(9)2Na) was added to pure and mixed cultures of normal human melanocytes and to cultured human melanoma cells, at 10(-3) M, 10(-2) M, 5 X 10(-2) M, and 10(-1) M for 1 and 6 h. Control cultures and cultures exposed to the same concentrations of the disodium salt of adipic acid (C(6)2Na) were also examined. No damage to cells of any line was observed with diacids at 10(-3) M or 10(-2) M up to 6 h. At 5 X 10(-2) M some mitochondria of melanoma cells appeared swollen. With C(6)2Na at 10(-1) M for I and 6 h, minimal swelling of mitochondria was observed in some cells of all lines. Pure normal melanocytes and melanocytes of mixed cultures exhibited greater swelling of mitochondria with 10(-1) M C(9)2Na at 1 and 6 h, but the mitochondria of the malignant melanocytes were massively swollen with destruction of cristae. Plasma and nuclear membranes and membranes of rough endoplasmic reticulum were intact, but Golgi membranes exhibited vesiculation. These results provide further evidence that azelaic acid damages the human malignant melanocyte and that one of its targets is the mitochondrion. Damage to normal melanocytes, found here, may be due to the fact that, in culture, they are more active than in intact epidermis.

Cell Line↗

Antimitochondrial effect of saturated medium chain length (C8-C13) dicarboxylic acids.

In isolated rat liver mitochondria, respiration was competitively inhibited by medium chain length (C8 to C13) dicarboxylic acids to different extents: the higher the number of carbon atoms up to C12, the greater the inhibition. In particular, experiments on submitochondrial particles showed that the competitive inhibition concerned the following enzymes: NADH dehydrogenase, succinic dehydrogenase and reduced ubiquinone: cytochrome c oxido-reductase. These results tend to confirm the suggestion that the melanocytotoxic effect of dicarboxylic acids, which are also competitive inhibitors of tyrosinase, may be primarily due to an antimitochondrial effect rather than being tyrosinase-dependent.

Adenosine Triphosphate↗

Analytical, ultrastructural, autoradiographic and biochemical studies on [3H]dicarboxylic acid added to cultures of melanoma cells.

Lentigo maligna and malignant melanoma can be treated by dicarboxylic acids (C9 and C12), which are competitive inhibitors of tyrosinase. We therefore studied the intracellular location and possible sites of action of dodecanedioic acid (C12) in murine melanoma cells, using EM autoradiography and biochemical analysis of lipid extracts by HPLC. Significant levels of radioactivity were found in the mitochondria and in the nuclei but not in association with membranes of rough endoplasmic reticulum, Golgi-associated endoplasmic reticulum, or Golgi apparatus, and not in coated vesicles or melanosomes. Biochemical analysis revealed that the diacid underwent beta-oxidation, which occurs only in mitochondria. The results suggest that the toxicity of dicarboxylic acids in melanoma cells is not related to anti-tyrosinase activity but may be due to interference with oxidoreductase enzymes in the mitochondria and possibly to inhibition of DNA synthesis in the nucleus.

Animals↗

Azelaic acid.

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Acne Vulgaris↗

The possible role of free fatty acids in the pathogenesis of cholesterol gallstones in man.

The lipid composition of hepatic and gallbladder bile was examined in 20 patients with cholesterol gallstones and in 20 control subjects. Lipid fractions other than bile salts, phospholipids and cholesterol were found to be present, i.e., sterol esters, non-identified fractions and, above all, free fatty acids. The latter probably originated from biliary phospholipids via activity of phospholipases, present in the gallbladder wall. No significant difference in amount and pattern of free fatty acids and phospholipids was found in hepatic bile between patients with gallstones and controls. On the contrary, we observed relevant differences in the lipid composition of gallbladder bile. In this way, we consider that the bile becomes lithogenic inside the gallbladder as a consequence of release of free fatty acids, particularly if these are constituted by saturated chains. In fact, these can compete with cholesterol in the solubilization in biliary micelles. On the other hand, free fatty acids can be directly toxic for the gallbladder wall and produce a cholecystitis.

Adult↗

Analysis of conjugated bile acids by high performance liquid chromatography and mass spectrometry.

Because of the known advantages of coupling high performance liquid chromatography with mass spectrometry (HPLC-MS) in biological fluids, studies on the reversed-phase HPLC-MS system for direct analysis of conjugated bile acids in human bile samples are described. Ten samples of gallbladder bile of apparently healthy subjects were examined. The amounts of each tauro- and glycoconjugated bile acid as trifluoracetate were determined by mass fragmentography. Quantitation of at least 1 ng of each bile acid was possible.

Animals↗