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linoleic acid/отёк

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Страница 1 от 46 полученные результаты

Histopathologic study of adverse effects of linoleic acid on rat lung.

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Linoleic acid administered intravenously was highly toxic to the rat lung. The severity of the toxicity paralleled the dosage administered and was characterized by generalized, irreversible damage to alveolar wall structures. Although evidence of tissue damage was not apparent or minimal by light

Pathophysiologic studies of experimental chronic pancreatitis in rats induced by injection of zein-oleic acid-linoleic acid solution into the pancreatic duct.

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An experimental model of chronic pancreatitis was induced by a retrograde injection of a viscous solution consisting of zein-oleic acid-linoleic acid (0.05 ml/100 g body weight) into the rat pancreatic duct. Histologic and biochemical changes were investigated over a period of 6 months after

Revealing anti-inflammation mechanism of water-extract and oil of forsythiae fructus on carrageenan-Induced edema rats by serum metabolomics.

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Forsythiae Fructus is an important Chinese medicine which shows a significant effect against inflammation. This study aimed to investigate the preventive anti-inflammation mechanism of Forsythiae Fructus by serum metabolomics strategy and compare the difference of the metabolism pathways between

Effect of intravenous eicosapentaenoic acid on cerebral blood flow, edema and brain prostaglandins in ischemic gerbils.

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Eicosapentaenoic acid is converted by cyclo-oxygenase to the prostacyclin, PGI3. Consequently eicosapentaenoic acid might protect the brain from the impairment in cerebral blood flow that follows temporary cerebral arterial occlusion. We studied the effect of 90% pure eicosapentaenoic acid, given

Depletion of hepatic coenzyme A derivatives is one of the markers of the toxicity of orally administered secondary autoxidation products of linoleic acid in rat.

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When 400 mg/rat/day of secondary autoxidation products of linoleic acid was orally administered 3 times to rats, they died at 30-40 h after the third dose. To search the markers of the toxicity of secondary products in vivo, the rats were killed at 24h after the third dose, and conditions of their

Linoleic acid metabolite suppresses skin inflammation and tumor promotion in mice: possible roles of programmed cell death 4 induction.

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(+/-)-13-Hydroxy-10-oxo-trans-11-octadecenoic acid (13-HOA) is one of the lipoxygenase metabolites of linoleic acid (LA) from corn germ. Recently, we reported that this metabolite suppressed the expression of lipopolysaccharide-induced proinflammatory genes in murine macrophages by disrupting

[Linoleic acid emulsion on the peri-lesion skin of venal ulcers. Action and cicatrizant effect. Corpus study].

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The authors present a clinical and documented follow up on the peri-lesion skin in 44 venal blood vessel ulcers which were treated by a hyper-oxygenized fatty acid emulsion. All the elderly in this study belonged to the Number 3 Health Department of the Valencia Sanitary Council. This study's

Exogenous oxidants initiate hydrolysis of endothelial cell inositol phospholipids.

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Oxidants released from inflammatory cells contribute to the pathogenesis of acute inflammatory edema in many models. Chemically produced oxidants can reversibly alter the barrier properties of cultured endothelial and epithelial monolayers. This report examines the effects of nonlytic doses of H2O2

Effect of oral linoleic and gamma-linolenic acid on meibomian gland dysfunction.

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OBJECTIVE To assess the effect of oral linoleic and gamma-linolenic acid, 2 omega-6 essential fatty acids, on meibomian gland dysfunction (MGD). METHODS Fifty-seven patients with MGD (27 men and 30 women) were randomly divided into 3 groups of 19. Group A received tablets containing linoleic acid

Experimental pulmonary fat embolism: computed tomography and pathologic findings of the sequential changes.

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This study was done to demonstrate the computed tomography (CT) and pathologic findings of the sequential changes for experimental pulmonary fat embolism (PFE), and to correlate the CT and pathologic findings of rabbit lung. PFE was induced by an intravenous injection of 0.2 mL linoleic acid in 24

A model for research on the blood-brain barrier disruption induced by unsaturated fatty acid emulsion.

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OBJECTIVE The authors investigated whether fatty acid emulsion affects the blood-brain barrier (BBB), whether disrupted BBB is reversible, and whether the fatty acid emulsion technique may be a model for BBB research. METHODS The fat emulsion was made with 0.05 mL of oleic acid or linoleic acid and

Antioxidant, anti-rheumatic and anti-inflammatory investigation of extract and dicentrinone from Duguetia furfuracea (A. St.-Hil.) Benth. & Hook. f.

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BACKGROUND The preparations of teas and syrups using Duguetia furfuracea have been used in folk medicine to treat rheumatism and back pain. Several rheumatic diseases are anti-inflammatory and are treated with several anti-inflammatories. OBJECTIVE The objective of this work were to evaluate the

Kurosu, a traditional vinegar produced from unpolished rice, suppresses lipid peroxidation in vitro and in mouse skin.

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The in vitro antioxidative activities of various kinds of vinegar were investigated by using a linoleic acid autoxidation model detected by the thiobarbituric acid (TBA) method and the 1,1-diphenyl-2-picrylhydrazyl radical system. An ethyl acetate extract of Kurosu (EK), a vinegar made from

Anti-inflammatory, Antinociceptive, and Antioxidant Activities of Methanol and Aqueous Extracts of Anacyclus pyrethrum Roots.

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Anacyclus pyrethrum (L.) is a plant widely used in Moroccan traditional medicine to treat inflammatory and painful diseases. The objective of the present study was to evaluate the antinociceptive, anti-inflammatory and antioxidant activities of aqueous and methanol extracts of Anacyclus pyrethrum

Transient formation of superoxide radicals in polyunsaturated fatty acid-induced brain swelling.

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The involvement of superoxide free radicals and lipid peroxidation in brain swelling induced by free fatty acids has been studied in brain slices and homogenates. The polyunsaturated fatty acids linoleic acid (18:2), linolenic acid (18:3), arachidonic acid (20:4), and docosahexaenoic acid (22:6)
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