Search PubMedSearch

SEARCH · Search PubMed

Results for “Ethane”

Search indexed PubMed citations on genomics, clinical trials, systematic reviews and public health. Explore titles, authors and supplied subject terms, then open the PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 19 recordsLinked to original sources

Analysis of 1,1'-sulphonylbis[2-(methylsulphinyl)ethane] and 1-methylsulphinyl-2-[2-(methylthio)ethylsulphonyl]ethane, metabolites of sulphur mustard, in urine using gas chromatography-mass spectrometry.

A method has been developed for the detection of 1,1'-sulphonylbis[2-(methylsulphinyl)ethane] and 1-methylsulphinyl-2-[2-(methylthio)ethylsulphonyl]ethane, which have been identified as urinary metabolites of sulphur mustard in the rat. The two metabolites were reduced to the single analyte 1,1'-sulphonylbis[2-(methylthio)ethane] by treatment of urine with acidic titanium trichloride. 1,1'-Sulphonylbis[2-(methylthio)ethane] was readily extracted from urine by passing through a C8 reversed-phase extraction column, or by solvent extraction from a solid absorbent tube, and detected by gas chromatography-mass spectrometry using ammonia positive ion chemical ionisation. The limit of detection was 2 ng/ml for 1-ml samples of urine. There were no background levels of analyte in human or rat urine. If man metabolises sulphur mustard by a similar pathway, the detection of these metabolites should constitute firm evidence of an exposure to sulphur mustard.

Animals

Source of ethane in expirate of rats ventilated with 100% oxygen.

Ethane in alveolar expirate may have its source in organs other than the lung and be transported to the lung for elimination. We determined ethane production rates in rats (group I) ventilated with hydrocarbon-free air (HFA) before and after exsanguination. To determine whether the lung is the source of increased ethane production during exposure to 100% O2, we measured ethane in the expirate of nine exsanguinated, Sprague-Dawley rats (group II) mechanically ventilated with HFA and then with 100% O2. In all nine animals, ethane elimination rates on 100% O2 increased compared with HFA values. In five of the nine rats, HFA ventilation was reinstated after O2 (group III). In all five, ethane elimination fell with HFA ventilation compared with the value on 100%. Six rats with circulation intact were ventilated with HFA and then 100% O2 (group IV). Ethane production rate for group IV animals breathing HFA was not significantly different from the exsanguinated animals in group II while ventilated with HFA. The mean increase in ethane production for the group II animals was not significantly different from the group IV animals. Lung slices from four other rats (group V) were incubated in saline at 37 degrees C with FeCl2 (10 mg) added to enhance free radical formation. Paired lung samples from the same rat were incubated with either HFA or 100% O2. Headspace gas was analyzed chromatographically for ethane at 120 min. Mean ethane in the O2 samples was higher than for HFA. Rat lung tissue is the main source of increased ethane production during 100% O2 exposure.

Animals

Metabolism of ethane and pentane to carbon dioxide by the rat.

The pulmonary excretion rates of ethane and pentane have been used as indices of lipid peroxidation. This use assumes that exhalation of these hydrocarbons is directly related to their formation rate. This is true only if the elimination (metabolism plus nonpulmonary excretion) of ethane and pentane are constant in the presence of alterations in lipid peroxidation. However, the in vivo metabolic elimination profile for pentane is unknown and it has not been established with certainty that ethane is metabolized in vivo. Radiolabeled [14C]ethane and pentane were used to study the disposition of these hydrocarbons when injected into an enclosed chamber system containing a rat. The ethane and pentane concentrations in chamber air measured as 14C radioactivity were in general agreement with more selective measurements based on GC analysis. Pentane was cleared from chamber air at a much faster rate than ethane. Approximately 50 and 19.8% of the total radioactivity added to the chamber as [14C]pentane or [14c]ethane, respectively, was recovered as carbon dioxide at the end of 8 hr. The fraction of total radioactivity recovered in urine was 7.6 and 1.0% for the pentane and ethane experiments, respectively. These results indicate unequivocally that both ethane and pentane are metabolized in the intact rat.

Animals

Protection against carbon tetrachloride-induced lipid peroxidation in the rat by dietary vitamin E, selenium, and methionine as measured by ethane evolution.

Dietary vitamin E, selenium (Se), and methionine were tested for their ability to inhibit carbon tetrachloride (CCL4)-induced lipid peroxidation. Peroxidation, in vivo, was monitored by the evolution of ethane, an autoxidation product of omega-3-unsaturated fatty acids. Weanling rats were fed a basal diet low in vitamin E, Se, and sulfur-containing amino acids, or diets individually supplemented with these factors. After 3 to 7 weeks, the rats were injected with CCL4 (ip) and ethane was collected for 9 hours. Cumulative ethane evolution was increased by CCl4 in all groups. Vitamin E, Se, and methionine reduced ethane evolution from CCl4-treated rats by 82%, 74%, and 60%, respectively. The toxicity of CCl4 was decreased in correlation with ethane evolution. Thus, methionine and Se, probably by maintaining intracellular glutathione and glutathione peroxidase, protected against CCl4-induced lipid peroxidation, as did vitamin E. Substitution of cod liver oil, which is rich in omega-3-unsaturated fat, for lard in the basal diet increased CCl4-induced ethane evolution six-fold. Relative inhibition by the dietary supplements was not changed. Thus, the feeding of cod liver oil greatly increased ethane production which facilitated the detection and measurement of lipid peroxidation in vivo.

Animals

Ethane production rate in vivo is reduced with dietary restriction.

Dietary restriction without malnutrition prolongs life and has a beneficial effect on age-related diseases and metabolic derangements. To test the effect of food restriction on ethane production rate, ethane exhalation was measured in rats with partial food restriction. Ethane production rate in room air in rats fed 60% of food consumed by ad libitum-fed animals for 2 wk was significantly reduced (3.50 +/- 0.25 vs. 5.21 +/- 0.34 pmol.min-1.100 g body wt-1, P less than 0.01). In 100% oxygen, ethane production in food-restricted rats was not different from that of ad libitum-fed rats (21.81 +/- 1.25 vs. 19.57 +/- 1.89 pmol.min-1.100 g-1). Fifteen hours of fasting compared with ad libitum feeding reduced ethane production modestly in room air (4.37 +/- 0.45 vs. 5.21 +/- 0.34 pmol.min-1.100 g-1) and more significantly in 100% oxygen (12.37 +/- 0.78 vs. 19.57 +/- 1.89 pmol.min-1.100 g-1). Thus, in 100% oxygen, 15 h of fasting, compared with ad libitum feeding, resulted in an approximately 40% decrease in ethane production rate. It is concluded that short-term food restriction significantly reduces ethane exhalation rate in rats when measured in room air.

Animals

Ethane production rates and minute ventilation.

Ethane quantitated in the expired alveolar gas is a noninvasive measure of free radical activity. This method has been criticized for lack of control of minute ventilation (VE) in spontaneously breathing animals, although ethane, which is poorly soluble in tissues, should not be affected by changes in VE. We measured ethane elimination rates in six strain 13 guinea pigs (GP13) during spontaneous room air breathing and in six room air breathing, pentobarbital-anesthetized, tracheostomized, externally warmed, mechanically ventilated GP13s at various levels of VE. In the ventilated animals, weight0.75/VE (metabolic activity corrected for VE) was a linear function of arterial CO2 tension (PaCO2) drawn from arterial line (r = 0.72, P less than 0.005). However, weight0.75/VE did not correlate with ethane elimination rates (r = 0.12, not significant). The mean (+/- SD) ethane elimination rates in the spontaneously breathing animals was 3.15 +/- 0.96 pmol.min-1.100 g-1 and was not significantly different from the mean rate in the mechanically ventilated animals (3.11 +/- 1.37) over a range of VE's. These data demonstrate that ethane elimination rates are not affected by changes in VE and are unaffected by pentobarbital anesthesia.

Animals

Heightened susceptibility of fish oil polyunsaturate-enriched neoplastic cells to ethane generation during lipid peroxidation.

We have studied the generation of volatile hydrocarbons by fatty acid-modified L1210 leukemia cells in tissue culture as a measure of lipid peroxidation. There was considerable generation of ethane, and this was dependent on cell number and Fe2+ concentration; it was eliminated by antioxidants and augmented by ascorbic acid. The assay was sensitive and reproducible; ethane was detected when as little as 0.03% of the cellular n-3 (omega-3) fatty acids were peroxidized. To gain further understanding we used a lipid modification model that allows study of cells enriched with fatty acids of different degrees of unsaturation. The quantity of ethane generated was greatest by cells modified with fatty acids of the n-3 family, and there was a high direct correlation of percentage of n-3 fatty acids contained in cellular lipids with peroxidation as measured by ethane generation. Ethane generation was more sensitive in detecting peroxidation than loss of polyunsaturated fatty acids. We conclude that lipid-supplemented leukemic cells produce ethane, and that the rate of generation is a sensitive, quantitative, and highly useful measure of lipid peroxidation when small amounts of iron are present.

Animals

Breath ethane: a specific indicator of free-radical-mediated lipid peroxidation following reperfusion of the ischemic liver.

A major component of the organ injury mediated by toxic oxidants, such as seen following reperfusion of the ischemic liver, is due to the peroxidation of polyunsaturated fatty acids, especially of cell membranes. We utilized the measurement of exhaled breath ethane, a metabolic product unique to oxidant-mediated lipid peroxidation, as a noninvasive indicator of this process in swine liver subjected to warm ischemia/reperfusion. Under rigorously controlled anesthesia conditions, pig livers were subjected to 2 h of warm total ischemia, followed by reperfusion in situ. Expired air was collected and its ethane content quantitated by a novel gas chromatographic technique. The time course of breath ethane generation correlated closely with the appearance of hepatocellular injury as measured by impairment of Factor VII generation and other measures of liver integrity. Moreover, the administration of the specific superoxide free radical scavenger, superoxide dismutase (SOD), significantly attenuated both the elaboration of ethane and the hepatocellular injury. These findings not only provide confirmation of the previously reported link between hepatocellular injury by free radicals generated at reperfusion, but also establish the use of expired breath ethane analysis as a sensitive, specific, and noninvasive indicator of the injury process in real time.

Alanine Transaminase

Lipid peroxidation in vivo during vitamin E and selenium deficiency in the rat as monitored by ethane evolution.

Ethane evolution was monitored from vitamin E and selenium (Se)-deficient rats to determine if lipid peroxidation occurs in vivo when these rats develop fatal organ lesions. Weanling rats were fed a vitamin E and Se-deficient, or supplemented, diet for 40 to 90 days. Each was then prefasted for 4 hours and fasting was continued for 24 to 40 hours while ethane was collected. Approximately 50% of the doubly-deficient rats died as a result of fasting. Pathological signs included hematuria, lung hemorrhage, and liver necrosis. Ethane evolution increased exponentially 10 to 20 hours before death and then declined 2 hours before death. Rats that survived (at least 5 days after ethane collection) evolved 7.4+/-1.3 nmoles ethane/100 g body weight/24 hours compared to 100+/-6 for rats that died. Supplementation of the basal diet with vitamin E (200 IU/kg), Se (0.2 ppm, as Na2SeO3), or both, completely prevented mortality and reduced ethane evolution values to 0.4+/-0.2, 3.1+/-0.4, or 0.2+/-0.2, respectively. These experiments indicate that lipid peroxidation occurs in vivo as a result of vitamin E and Se deficiency, and the peroxidation process greatly accelerates during the terminal phase of the fatal disease.

Animals

Oxidation of ethane by an Acremonium species.

Ethane oxidation was studied in ethane-grown resting cells (mycelia) of an Acremonium sp. and in cell-free preparations of such mycelia. From resting cell experiments evidence was found for a pathway of ethane oxidation via ethanol, acetaldehyde, and acetic acid. In vitro studies indicated that ethane-oxidizing activity in such mycelia occurred predominantly in the microsomal fraction of crude homogenates. Microsomal preparations were inactive in the absence of added coenzyme. Marked stimulation of activity was obtained in such preparations with reduced nicotinamide adenine dinucleotide phosphate and to a much lesser degree with nicotinamide adenine dinucleotide phosphate. Ethane oxidation was inhibited by sodium azide and carbon monoxide.

Alcohol Oxidoreductases

Ethane production in copper-deficient rats.

Evidence is accumulating which indicates that copper-deficient animals are prone to oxidative damage. To investigate this possibility further, we measured the production of breath ethane, a hydrocarbon by-product of lipid peroxidation, in copper-deficient rats. Male, weanling Sprague-Dawley rats were fed either a purified diet which was deficient in copper (CuD) or the same diet made sufficient with 5 ppm of copper (CuS). After 33 to 34 days the rats were placed individually in gastight metabolic cages through which ethane-free air or 100% O2 was passed. Expired ethane was absorbed onto cold, activated charcoal, liberated by heating, and measured by gas chromatography. Ethane production rates (pmoles/min/100 g +/- SD) were 3.3 +/- 0.8 (CuS-air), 4.3 +/- 1.4 (CuD-air), 8.3 +/- 2.5 (CuS-O2), and 12.2 +/- 4.3 (CuD-O2). Repeated measures analysis of variance indicated that both copper deficiency (P less than 0.01) and breathing 100% O2 (P less than 0.0001) enhanced ethane production, with no interaction between treatments. This finding complements previous evidence that increased lipid peroxidation occurs in copper-deficient rats.

Animals

Characterization of new bacterial transformation products of 1,1,1-trichloro-2,2-bis-(4-chlorophenyl) ethane (DDT) by gas chromatography/mass spectrometry.

The microbial transformation of DDT, DDD and DDE was studied in Gram-negative strain B-206 and a number of phenolic metabolites were identified as the trimethylsilyl derivatives in the bacterial extracts by gas chromatography/mass spectrometry. The major metabolites of DDT were DDD, DDE, DDMU, 1,1,1-trichloro-2-(2-hydroxy-4-chlorophenyl)-2-(4'-chlorophenyl) ethane, 1,1,1-trichloro-2-(2-hydroxy-4-chlorophenyl)-2-(4'-hydroxyphenyl) ethane, and 1,1,1-trichloro-2,2-bis-(2-hydroxy-4-chlorophenyl) ethane. Conversely, DDD was mainly degraded into DDE, 1,1-dichloro-2-(2-hydroxy-4-chlorophenyl)-2-(4'-chlorophenyl) ethane and 1,1-dichloro-2-(2-hydroxy-4-chlorophenyl)-2-(4'-hydroxyphenyl) ethane. Finally, DDE was transformed into DDMU, 1,1-dichloro-2-(2-hydroxy-4-chlorophenyl)-2-(4'-chlorophenyl) ethylene, 1,1-dichloro-2-(2-hydroxy-4-chlorophenyl)-2-(4'hydroxyphenyl) ethylene and 1-chloro-2-(2-hydroxy-4-chlorophenyl)-2-(4'-chlorophenyl) ethylene. The phenolic metabolites exhibited [M - TMSCl]+., [M - HCl - TMSCl]+. and/or [M - HCl - TMSCl - Me]+ fragment ions which reflect the presence of an ortho hydroxyl group in these molecules. Other mass spectral features used to determine their structure are presented and a metabolic scheme accounting for their formation is proposed.

Bacteria

Effect of dietary vitamin E on expiration of pentane and ethane by the rat.

An analytical method for the measurement of hydrocarbon gases in the breath of rats is described. The method was used to follow the expiration in rat breath of in vivo formed scission products of hydroperoxides. The major products are pentane from the linoleic acid family and ethane from the linolenic acid family. Rats were fed 0, 11 or 40 i.u. vitamin E acetate/kg diet for 7 wk starting at age 21 days. Data obtained by gas chromatographic analysis of breath samples were analyzed by the Mann-Whitney nonparametric U-test. This statistical analysis showed that pentane evolved by the group of rats not supplemented with vitamin E was significantly higher during the period 1-7 wk than that evolved by either of the two supplemented groups of rats. Ethane from the nonsupplemented group was significantly higher than that from the group supplemented with 40 i.u. vitamin E/kg of diet by 5 wk, and significantly high than both supplemented groups by 6 wk. By 7 wk, pentane production was tenfold greater in the non-supplemented group, and ethane was about twofold greater. There was no significant difference between the groups supplemented with 11 and 40 i.u. vitamin E/kg diet for either ethane or pentane. This new technique, which measures scission products from in vivo lipid peroxidation, promises to be useful for application to many experimental areas where lipid peroxidation is expected or known to occur.

Administration, Oral

Ethane and ethylene formation by mitochondria as indication of aerobic lipid degradation in response to wounding of plant tissue.

During aerobic incubation of potato slices or potato mitochondria at acidic pH, ethane and ethylene in a ratio of approx. 50 : 1 are generated from an endogenous substrate. Both ethane and ethylene production are stimulated by the addition of alpha-linolenic acid. Ethane formation from linolenic acid is a radical mechanism dependent on oxygen and is not significantly influenced by mitochondrial electron transport. Ethane production may represent a sensitive marker for membrane damage.

Chloroplasts

Utility of breath ethane as a noninvasive biomarker of vitamin E status in children.

The purpose of our study was to determine if the ethane content of expired air could be a useful index of vitamin E status in children. Eight children with vitamin E deficiency secondary to chronic severe liver disease were studied: six of these children were treated with parenteral vitamin E (2-5 mg/kg/dose every 4-7 d). Measures of vitamin E status pre- and posttherapy were: serum vitamin E, 2 +/- 1 versus 7 +/- 1 micrograms/mL (p less than 0.001); serum vitamin E:total lipids, 0.3 +/- 0.1 versus 1.0 +/- 0.1 mg/g (p less than 0.001); and erythrocyte peroxide hemolysis test, 80 +/- 10 versus 6 +/- 12% (p less than 0.001). Fasting breath ethane in the patients pre- and posttherapy was 78 +/- 10 versus 31 +/- 11 pmol/kg/min (p less than 0.001). Breath ethane correlated negatively with serum vitamin E (p less than 0.042) and serum E:total lipids (p less than 0.004) and positively with the erythrocyte peroxide hemolysis test (p less than 0.003). Values for treated patients did not differ from those for fasted sibling controls (34 +/- 12 pmol/kg/min), postprandial sibling controls (31 +/- 12 pmol/kg/min), and healthy children sampled randomly, in the nonfasted state (21 +/- 14 pmol/kg/min). Breath ethane production in one patient (up to 168 pmol/kg/min) did not normalize after treatment of vitamin E deficiency until her selenium deficiency was corrected as well. We conclude that this noninvasive test can be useful as a screen for vitamin E deficiency in children and for ascertaining response to therapy.(ABSTRACT TRUNCATED AT 250 WORDS)

Adolescent

Are ethane and pentane evolution and thiobarbituric acid reactivity specific for lipid peroxidation in erythrocyte membranes?

Peroxidation of human erythrocyte membranes was followed in vitro with head space analysis of ethane and pentane and a thiobarbituric acid assay in a standardized system liberating free oxygen radicals. Simultaneously, the decrease of the membrane palmitic, linoleic, arachidonic and docosahexaenoic acid was monitored. The recoveries of the peroxidation products of the red cell ghost preparations were compared with those obtained by peroxidation of pure fatty acids. Experiments using purified fatty acids revealed that ethane was preferentially produced from docosahexaenoic and linolenic, and pentane from linoleic and arachidonic acids. Thiobarbituric acid-reactive material (TBAR) was produced from each unsaturated fatty acid tested, but the amount was dependent on the number of carbon chain double bonds. During peroxidation of the erythrocyte ghosts, 72% of ethane and 51% pentane were produced during the first 12 h of incubation, whereas TBAR was produced at a constant rate throughout the 36-h test period. Hydrocarbon and TBAR production were similarly inhibited by desferoxamine (at p less than 0.005 and p less than 0.0001, respectively). The total recoveries of ethane, pentane and TBAR exceeded the amount expected by 7.8-, 1.4- and 5.5-fold, respectively. It was concluded that measurement of pentane is a reliable method to monitor lipid peroxidation during oxidative damage of the erythrocyte membrane.

Erythrocyte Membrane

Lipid peroxidation in acrylonitrile-treated rats, evidenced by elevated ethane production.

The intraperitoneal administration of acrylonitrile (greater than 25 mg kg-1) to rats is associated with an increased production of ethane and a rise of the serum activity of the cytosolic enzyme, sorbitol dehydrogenase. These effects are prevented by pretreatment with vitamin E and the microsomal enzyme inhibitor SKF 525A, but are exacerbated by pretreatment with the microsomal enzyme inducer, phenobarbital. Repeated intraperitoneal administration of acrylonitrile (40 mg kg-1) for four weeks also increases ethane production and serum SDH activity, and produces various morphological changes in liver parenchymal cells (necrosis, increased mitotic activity, increased nucleolar size and myelinic figures in mitochondria) and inhibits the growth of the animals. All these effects are prevented by the administration of vitamin E (190 mg kg-1 i.p., daily) during the last two weeks of treatment. A dose of sodium cyanide (2.5 mg kg-1 i.p.) which leads to a urinary excretion of thiocyanate similar to that found after the intraperitoneal administration of 25 mg kg-1 acrylonitrile, does not stimulate ethane production. This study suggests that the hepatoxicity of acrylonitrile may, at least partly, result from a lipoperoxidation process and is linked with its microsomal oxidative biotransformation.

Acrylonitrile

Determination of ethane and pentane in free oxygen radical-induced lipid peroxidation.

It has been proposed that ethane and pentane reflect free oxygen radical-induced lipid peroxidation. However, methodological difficulties limit the use of these gases for assessment of free oxygen radical activity. In the present report we describe an improved method for the accurate analysis of picomole quantities (greater than or equal to 1 pmol) of ethane and pentane. They are first quantitatively trapped into an adsorbent and then heat-desorbed directly into a capillary column for gas chromatographic quantitation. During oxidation of linolenic (n-3) and linoleic (n-6) acid, ethane and pentane were formed, respectively. Nonstimulated granulocytes formed pentane. Upon addition of phorbol 13-myristate 12-acetate, the generation of pentane was increased by 540%. Addition of superoxide dismutase plus catalase inhibited lipid peroxidation in both a cell-free system and in isolated cells. The present method is useful in the evaluation of free oxygen radical induced damage.

Cell-Free System