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Biomedical subjects

B Hennig

Publications and source records attributed to B Hennig.

At least 91 records · Page 5Linked to original sources

Linoleic acid-induced endothelial cell injury: role of membrane-bound enzyme activities and lipid oxidation.

High plasma levels of linoleic acid (18:2) may injure endothelial cells, resulting in decreased barrier function of the vascular endothelium. The effects of linoleic acid on endothelial barrier function (transendothelial movement of albumin), membrane-bound enzyme activities, and possible autooxidation of linoleic acid under experimental conditions were studied. The exposure of endothelial monolayers to 18:2 for 24 hr at 60, 90, and 120 microM fatty acid concentrations caused a significant increase in transendothelial movement of albumin, with maximum albumin transfer at 90 microM. Fatty acid treatment resulted in the increased appearance of cytosolic lipid droplets. Activities of the membrane-bound enzymes, angiotensin-converting enzyme (ACE), and Ca(2+)-ATPase increased steadily with increasing time of cell exposure to 90 microM 18:2, reaching significance at 24 hr. Treatment of endothelial cultures with up to 120 microM 18:2 did not cause cytotoxicity, as evidenced by a nonsignificant change in cellular release of [3H]-adenine. Incubation of 18:2-supplemented serum-containing culture media with 1000 microM 18:2 at 37 degrees C for up to 48 hr did not result in formation of autooxidation products. These results suggest that 18:2 itself, and not its oxidation products, plays a major role in disrupting endothelial barrier function.

Animals↗

Effect of oxysterol-enriched low-density lipoprotein on endothelial barrier function in culture. Low-density lipoproteins.

High levels of plasma low-density lipoproteins (LDL) are known to be a risk factor for developing coronary artery disease although the specific mechanism involved is unknown. It may be related to effects of oxidized lipid components of LDL on vascular endothelial barrier function (EBF). This study addressed the hypothesis that LDL-associated products of cholesterol oxidation, oxysterols, decrease EBF resulting in increased penetration of blood components such as LDL into the arterial wall. LDL from human volunteers and rabbits was enriched with cholesterol or cholestan-3 beta,5 alpha,6 beta triol (Triol) by in vitro incubation. Exposure of cultured vascular endothelial cell monolayers to LDL enriched with Triol reduced EBF, measured as an increase in transendothelial albumin transfer, whereas cholesterol enrichment, like un-enriched LDL, had no effect on EBF. In a second experimental series, rabbits were gavaged with 100 mg of cholesterol or Triol/kg body weight, and LDL was isolated from serum 24 h after gavage. As was seen with the in vitro experiments, Triol-enriched LDL markedly decreased EBF. Similarly, LDL from cholesterol-gavaged rabbits reduced EBF, while LDL from vehicle treated rabbits had no effect. These results suggest that LDL-associated oxysterols are detrimental to normal barrier function of the vascular endothelium. Disruption of this barrier function may serve as an initiating factor in atherosclerotic lesion formation.

Albumins↗

Oxysterols, cholesterol biosynthesis, and vascular endothelial cell monolayer barrier function.

A spectrum of cholesterol oxidation derivatives (oxysterols) is generated in food products exposed to heat or radiation in the presence of oxygen. One of these derivatives (cholestan-3 beta,5 alpha,6 beta-triol) was shown to compromise the selective barrier function of cultured vascular endothelial cell monolayers, an action that may initiate atherosclerotic lesion formation. This study sought to investigate the relationship of cholesterol synthesis inhibition by several naturally occurring oxysterols to depression of vascular endothelial cell monolayer barrier function, determined as an increase in albumin transfer across cultured endothelial monolayers. All oxysterols tested caused a variable time- and dose-dependent elevation in trans-endothelial albumin transfer, and they were also able to inhibit cholesterol biosynthesis to varying degrees. Pure cholesterol was without effect on both counts. The correlation between the increase in albumin transfer related to oxysterol exposure and the ability of oxysterols to suppress cholesterol biosynthesis was, however, poor. Moreover, mevinolin, a water-soluble competitive inhibitor of cholesterol synthesis, reduced the rate of cholesterol synthesis to 0.9% of control but did not significantly increase albumin transfer. Cholestan-3 beta,5 alpha,6 beta-triol caused a 660% elevation in albumin transfer while cholesterol synthesis remained at 11% of control. We conclude that changes in endothelial barrier function caused by exposure to the oxysterols examined, but not pure cholesterol, are probably related to factors other than the well-known action of cholesterol biosynthesis inhibition. These findings may have implications in the development of atherosclerosis.

Animals↗

Induction of peroxisomal enzymes in cultured porcine endothelial cells by the hypolipidemic drug ciprofibrate.

The purpose of this study was to determine if the hypolipidemic peroxisome proliferator ciprofibrate, which induces peroxisomes in the liver, can induce peroxisomes in cultured porcine pulmonary endothelial cells. Ciprofibrate was added at three concentrations to cell cultures for a 6-day period. The induction of peroxisomes in the cells was detected by determining total peroxisomal beta-oxidation and peroxisomal catalase activity. The addition of ciprofibrate was found to increase peroxisomal enzyme activities in a dose-dependent manner, with the highest activity being reached at 1000 microM ciprofibrate. Ciprofibrate also caused an increased transfer of albumin across endothelial cells cultured on micropore filters. This study shows that peroxisomal enzyme activities can be induced by ciprofibrate in endothelial cells, which may have implications in diseases mediated by vascular injury.

Animals↗

Aging and endothelial barrier function in culture: effects of chronic exposure to fatty acid hydroperoxides and vitamin E.

As the endothelium ages it may become more susceptible to damage by atherogenic plasma components such as toxic lipid oxidation products. Vitamin E (vit E) might prove to be anti-atherogenic by reducing oxidative injury. This study investigated the effects of age and chronic exposure to fatty acid hydroperoxides (OFA) and/or vit E on endothelial barrier function (EBF) and cell growth characteristics. Chronic exposure to 5 microM OFA for 40 passages resulted in an age-related decrease in EBF, while supplementation of OFA-treated cultures with 25 microM vit E protected against the OFA-mediated decrease in EBF, independent of cell age. Vit E treatment alone had no significant effect on EBF relative to control cultures. No changes in growth characteristics, i.e., total DNA or protein per culture, were noted, regardless of treatment, although total DNA per culture decreased with increasing culture passage. These results suggest that chronic oxidative stress decreases EBF, predisposing the artery to infiltration by blood components and subsequent atherogenesis and that vit E delays cumulative changes in EBF related to chronic OFA exposure.

Aging↗

Effect of vitamin E on linoleic acid-mediated induction of peroxisomal enzymes in cultured porcine endothelial cells.

Linoleic acid decreases endothelial barrier function in culture. We hypothesize that the mechanism may involve induction of peroxisomes, with subsequent generation of hydrogen peroxide, and that vitamin E may protect against barrier function loss by preventing the induction of peroxisomal enzymes. To investigate this hypothesis, we exposed cultured endothelial cells to 0 or 90 mumols/L linoleic acid [18:2(n-6)], with or without 25 mumols/L supplemental vitamin E, for 5 d. The induction of peroxisomes by linoleic acid exposure was determined by measuring cellular peroxisomal beta-oxidation and catalase activity. Vitamin E alone had no effect on beta-oxidation or catalase activity, whereas linoleic acid exposure significantly increased both compared with control values. Vitamin E supplementation prevented induction of peroxisomal beta-oxidation and catalase activity by 18:2. In contrast, cell enrichment with vitamin E had no effect on 18:2-induced accumulation of cytoplasmic lipid-like droplets. These results confirm our hypothesis that the protective effects of vitamin E against fatty acid-mediated endothelial cell injury may be due in part to the ability of vitamin E to prevent the induction of peroxisomal beta-oxidation enzymes and thus the formation of excess hydrogen peroxide.

Animals↗

Monokine-induced lung injury in rats: similarities to monocrotaline-induced pneumotoxicity.

Previous studies have shown that abnormal alveolar macrophages and biological activity resembling the macrophage-derived mediator interleukin-1 (IL-1) can be detected in bronchoalveolar lavage fluid from rats with monocrotaline-induced lung injury and pulmonary hypertension. To determine if monokines might play a pathogenic role in this model, the present study evaluated the effects of a murine monokine preparation enriched in IL-1 bioactivity on selected events characterizing the early pneumotoxic response to monocrotaline, including pulmonary edema and protein extravasation, pulmonary vascular hyperreactivity, and enhanced lung tissue activity of the rate-limiting enzyme in polyamine biosynthesis, ornithine decarboxylase (ODC). Intravenous injection of the monokine preparation containing 200 units/kg IL-1 (quantified by lymphocyte activating factor assay) into intact rats produced pulmonary edema within 3 hr manifested by increases in the lung wet-to-dry weight ratio and in the extent of pulmonary albumin extravasation. The edema had resolved within 24 hr of monokine administration as indicated by a return to control levels of the wet-to-dry weight ratio and albumin extravasation index. The monokine preparation also increased the transfer of albumin across monolayers of cultured porcine pulmonary vascular endothelial cells. While salt solution-perfused rat lungs isolated from animals treated 3 hr previously with the monokine preparation were hyporesponsive to angiotensin II, preparations derived from animals treated 24 hr previously were markedly hyperresponsive to the vasoconstrictor actions of the peptide. Pressor responses to potassium chloride and prostaglandin F2a were unaffected by exposure to the monokine preparation. Lung ODC activity in monokine-exposed animals did not differ from control at 3, 6, or 24 hr after treatment. In contrast, a 24-hr exposure of cultured pulmonary vascular endothelial cells to the monokine preparation increased ODC activity approximately 100-fold. These observations indicate that a monokine preparation containing IL-1 bioactivity causes transient pulmonary edema and pulmonary vascular hyperreactivity and increases ODC activity in pulmonary vascular endothelial cells. Because the monokine preparation mimics certain aspects of monocrotaline-induced pneumotoxicity in the rat, it is reasonable to postulate that monokines could play a pathogenic role in this and similar animal models of lung injury and pulmonary hypertension.

Animals↗

Effects of serum type on growth and permeability properties of cultured endothelial cells.

Serum is frequently added to defined basal media as a source of certain nutrients and macromolecular growth factors essential for cell growth. The many different sera commercially available may not be equally suitable for all cell types. The effects of four sera, fetal bovine serum (FBS), calf bovine serum (CS), equine serum (ES-1), and plasma-derived equine serum (ES-2), on growth and permeability properties of cultured porcine endothelial cells were determined. The rate of DNA synthesis, measured as [3H]thymidine incorporation, reached a peak at around 24 h, regardless of serum type, and was most marked with ES-1- or ES-2-treated cells. However, when estimated by total DNA, FBS, CS, or ES-1 treatment resulted in greater cell proliferation than ES-2. Based on protein synthetic rate and total cell protein, both FBS and CS appeared to be most growth supporting. At 72 h after cell plating, albumin passage across cultured endothelial monolayers was elevated in ES-1- and ES-2-treated cells compared with FBS- or CS-treated cells. "Leaky" cell monolayers were most marked with ES-1-treated cells. Cells grown in ES-2- and particularly in ES-1-enriched media were larger and more spindle-shaped compared with the typical cobblestone appearance of cells cultured in media enriched with either FBS or CS. These data suggest that CS, but not ES-1 or ES-2, is an excellent substitute for FBS to support desirable growth properties of macrovascular endothelial cells in culture.

Animals↗

Linoleic acid and linolenic acid: effect on permeability properties of cultured endothelial cell monolayers.

High circulating plasma levels of free fatty acids may injure endothelial cells, resulting in decreased barrier function of the vascular endothelium. The effect of media supplementation with varying concentrations of either linoleic (C18:2 omega 6) or linolenic acid (C18:3 omega 3) on albumin transfer across cultured endothelial monolayers was studied. A 24-h cell exposure to linoleic but not linolenic acid resulted in a concentration dependent and largely reversible increase in albumin transfer. Both fatty acids and in particular linolenic acid incorporated into cellular phospholipids. In contrast, only supplementation with linoleic but not linolenic acid resulted in an increased incorporation of this fatty acid into cell triglycerides. Similarly, only total cell triglyceride content increased after incubation with linoleic- but not with linolenic-enriched media. These results indicate that cellular enrichment with linoleic but not linolenic acid causes cellular perturbations that may be implicated in atherosclerosis.

Animals↗

Tumor necrosis factor alpha-induced pulmonary vascular endothelial injury.

Tumor necrosis factor alpha (TNF-alpha) mediates components of the acute-phase response, stimulates granulocyte metabolism, and induces endothelial cell surface changes. We studied whether human recombinant TNF-alpha (rTNF-alpha) could increase pulmonary edema formation and pulmonary vascular permeability. Rabbits preinfused with 125I-albumin were administered rTNF-alpha or saline. Animals were sacrificed, and lung wet/dry weight ratios as well as bronchoalveolar lavage fluid and plasma 125I activities were determined. rTNF-alpha increased lung wet/dry weight ratios by 151% (P less than 0.02) and bronchoalveolar lavage fluid/plasma 125I activity ratios by 376% (P less than 0.01) compared with values for saline controls. Electron microscopy of lung sections demonstrated endothelial injury, perivascular edema, and extravasation of an ultrastructural permeability tracer. To demonstrate that rTNF-alpha could directly increase pulmonary vascular endothelial permeability in vitro, we studied albumin transfer across cultured porcine pulmonary artery endothelial cell monolayers. rTNF-alpha induced time-dependent dose-response increments in transendothelial albumin flux in the absence of granulocyte effector cells. These observations suggest that rTNF-alpha can provoke acute pulmonary vascular endothelial injury in vivo as well as in vitro.

Animals↗

Protective effects of vitamin E in age-related endothelial cell injury.

Age is strongly correlated to the onset of atherosclerotic lesion formation in humans. This may be associated with an age-related increase in the susceptibility of the vascular endothelium to oxidative injury. Such injury may result in altered endothelial function as a barrier to plasma components, such as cholesterol-rich lipoprotein remnants. To investigate this hypothesis, the relationship between endothelial cell culture age, susceptibility to oxidative injury and protection against this injury by the nutrient/antioxidant vitamin E on endothelial barrier function (transfer of albumin across endothelial monolayers) was examined. An acute 24 h exposure to 30 microM linoleic acid hydroperoxide resulted in increased albumin transfer at all cell passages tested (up to passage 50). Pre-enrichment of cells with 25 microM vitamin E always protected endothelial cells against oxidized fatty acid-induced cell injury, independent of cell age. In comparison, patterns of total cell protein and DNA were not markedly influenced by experimental treatments, although age-related declines in total DNA were noted. These data suggest that the possible correlation between age and the onset of atherosclerosis may be in part related to a decrease in endothelial barrier function due to oxidative stress, permitting more blood components to enter the arterial wall. Furthermore, vitamin E may protect endothelial cells against oxidant-mediated vascular injury.

Aging↗

Lipid peroxidation and endothelial cell injury: implications in atherosclerosis.

Vascular endothelial cells, which play an active role in the physiological processes of vessel tone regulation and vascular permeability, form a border separating deeper layers of the blood vessel wall and cellular interstitial space from the blood and circulating cells. Damage or dysfunction of endothelial cells may reduce the effectiveness of the endothelium to act as a selectively permeable barrier to plasma components, including cholesterol-rich lipoprotein remnants. This may be involved in the etiology of atherosclerosis. Experimental evidence indicates that free radical-mediated lipid peroxidation can induce endothelial cell injury/dysfunction. Reactive oxygen species, including peroxidized lipids capable of initiating cell injury, may be generated within endothelial cells, be present in plasma components, or be derived from neutrophils or other blood-borne cells. Lipid peroxidation could initiate or promote the process of atherosclerotic lesion formation by directly damaging endothelial cells, and by enhancing the adhesion and activation of neutrophils and the susceptibility of platelets to aggregate. Endothelial cell injury by lipid hydroperoxides also could increase the uptake of LDL into the vessel wall. These events and other cellular dysfunctions may individually or collectively initiate and/or help to sustain the development of atherosclerosis.

Arteriosclerosis↗

Effects of low fat diets differing in degree of fat unsaturation on plasma lipids, lipoproteins, and apolipoproteins in adult men.

The effects of two low fat diets with differing ratios of polyunsaturated to saturated fatty acids (P/S) on blood lipids, lipoproteins (LP), and apolipoproteins (Apo) were studied in 23 adult men, 30-60 years old, using a crossover design. Both test diets had 25% fat calories with either a P/S of 0.3 (Diet 1) or a P/S of 1.0 (Diet 2) and equivalent amounts of cholesterol. The study consisted of four periods: a 5-week prestudy on self-selected diet (SS), two 6-week test diet periods followed by a second 5-week post-study period on the SS diet. When compared with the SS diet, Diet 2 lowered the mean plasma total cholesterol (TC) by about 20% (P less than 0.01). Low density lipoprotein (LDL) cholesterol was also decreased by about 18% by Diet 2 (P less than 0.01). The high P/S diet did not cause a change in total cholesterol in the high density lipoprotein (HDL) subclass2 (HDL2) when compared to the SS diet. Levels of triglycerides (TG) were slightly reduced in HDL2 but showed a greater reduction in HDL3 in both diets. Phospholipids (PL) were significantly reduced in HDL2 and in HDL3, but the reduction in HDL3 PL was not statistically significant. Apo A-I levels were not changed by either diet when compared with the SS diet, but Apo A-II levels of HDL2 and HDL3 were significantly decreased by the low fat diets, and there was no P/S effect. No other consistent changes in apoprotein levels occurred. Our data suggest that, in men with normal lipid levels, practical dietary changes involving a moderate increase in P/S from 0.3 to 1.0 in a low fat, low cholesterol diet do influence lipoprotein composition and apoprotein distribution in a short time. The reduction in cholesterol in total lipid composition and in LDL lipids which accompanied the reduction of dietary fat and cholesterol are considered to be beneficial.

Adult↗

Tumor necrosis factor-mediated hypoalbuminemia in rabbits.

The serum albumin concentration is used clinically as an indicator of nutritional status and as a prognostic indicator. Critically ill patients, who display many aspects of the acute phase response, frequently have low serum albumin levels upon hospitalization. Cytokines, such as tumor necrosis factor (TNF), mediate many aspects of the acute phase response. One purpose of this study was to determine if TNF administration to healthy well-nourished rabbits could produce hypoalbuminemia. After intravenous administration of saline or TNF, the TNF-treated rabbits experienced significant hypoalbuminemia which was most prominent at 24 h and was partially corrected by 48 h. A second purpose was to evaluate the effects of TNF treatment on transendothelial movement of albumin using an in vitro porcine pulmonary artery-endothelial cell system. Exposure to TNF for 24 h resulted in a dose dependent increase in transendothelial passage of albumin. These data suggest that the mechanisms of hypoalbuminemia frequently observed in critically ill patients can be explained in part by cytokine (TNF)-induced endothelial cell injury, which results in enhanced endothelial permeability to albumin. The hypoalbuminemia observed in many critically ill patients thus may be unrelated to nutritional status, but rather may be related to the patient's underlying disease state.

Albumins↗

Mechanisms and implications of hypoalbuminemia in head-injured patients.

Severely head-injured patients are hypermetabolic/hypercatabolic and exhibit many aspects of the postinjury acute-phase response. These patients have hypoalbuminemia, hypozincemia, hypoferremia, hypercupria, fever, and increased synthesis of acute-phase proteins such as ceruloplasmin and higher C-reactive protein levels. It has been suggested that increased interleukin-1 (IL-1) in the ventricular fluid may be responsible, at least in part, for these metabolic abnormalities. In the present study, serum albumin levels were evaluated throughout an 18-day study period in 62 head-injured patients receiving aggressive nutritional support. Hypoalbuminemia (mean +/- standard error of the mean 3.10 +/- 0.2 gm/dl; normal value 3.5 to 5 gm/dl) was observed upon hospital admission; these albumin levels continued to decrease until 2 weeks postinjury, despite aggressive nutritional support. This hypoalbuminemia may be mediated via altered endothelial permeability properties due to endothelial cell dysfunction caused by cytokines such as IL-1. Transendothelial movement of albumin was assayed using a pulmonary artery endothelial cell culture system. Both a crude macrophage supernatant derived from a murine P388D cell line having IL-1 activity (mIL-1) and human recombinant IL-1 (rIL-1) were tested. The amount of albumin transferred was time- and concentration-dependent, with maximal transfer at 24 hours and 20 U of mIL-1 per 0.5 ml of culture medium. Endothelial permeability changes observed after incubation with mIL-1 were confirmed using rIL-1. Compared to control cultures, 20 U of rIL-1 and 20 U of mIL-1 increased albumin transfer across endothelial monolayers 205% and 459%, respectively. These findings suggest that the mechanism of hypoalbuminemia seen after severe head trauma can be explained in part by IL-1-induced endothelial cell injury, resulting in enhanced endothelial permeability to albumin.

Brain Injuries↗

Effect of vitamin E on oxysterol- and fatty acid hydroperoxide-induced changes of repair and permeability properties of cultured endothelial cell monolayers.

Oxidation products of fatty acids (fatty acid hydroperoxides) or of cholesterol (oxysterols) may be atherogenic by being injurious to the vascular endothelium. Vitamin E may protect cells against such injury by acting as an antioxidant and by regulating cell growth and/or repair. As indices of proliferation and growth/repair, synthesis of DNA [3H]thymidine incorporation) and protein ([3H]leucine incorporation), as affected by exposure to linoleic acid hydroperoxide (18:2-OOH), cholestan-3 beta, 5 alpha, 6 beta-triol (Triol), and/or alpha-tocopherol, was determined in confluent vascular endothelial cell cultures. Cell injury was assessed by measuring the passage of albumin through a cultured endothelial monolayer. Exposure to either Triol or 18:2-OOH significantly increased the rate of albumin transfer across endothelial monolayers. Prior enrichment with vitamin E protected endothelial cells from injury by 18:2-OOH but not Triol. Cell exposure to 25 microM vitamin E increased DNA synthesis compared with control cultures. DNA synthesis was also elevated in 18:2-OOH exposed cells, whereas Triol had no effect on cell replication. Prior cell exposure to vitamin E prevented the marked increase in DNA synthesis seen with 18:2-OOH. Protein synthesis was increased by 18:2-OOH, but not by Triol or vitamin E treatment. These results show that 1) both Triol and 18:2-OOH are cytotoxic, 2) vitamin E stimulates cell proliferation, 3) vitamin E protects cells against 18:2-OOH- but not Triol-induced cell injury (i.e., increased permeability to albumin), and 4) endothelial cell damage initiated by 18:2-OOH, but not Triol, stimulates synthesis of DNA and protein in an attempt to divide and repair the injury.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Cholestan-3 beta,5 alpha,6 beta-triol decreases barrier function of cultured endothelial cell monolayers.

Cholesterol oxidation products (oxysterols) found in foods may be atherogenic, possibly by altering the barrier function of the vascular endothelium. To investigate this hypothesis, endothelial cells were cultured on micropore filters and the effect of cholesterol and the oxysterol cholestan-3 beta,5 alpha,6 beta-triol (Triol) on albumin transfer across cultured vascular endothelial monolayers (ECM) was studied. Exposure to Triol significantly increased albumin transfer across ECM. The effect of Triol on endothelial cell barrier function was time and concentration dependent, with maximum albumin transfer being reached at 20 microM Triol and after a 24-h exposure. Pure cholesterol, on the other hand, did not affect albumin transfer at concentrations as high as 130 microM. Although an increase in albumin transfer across ECM was observed after a 2-h incubation with Triol-enriched media, a 24-h incubation period was necessary to cause a significant release of cellular lactate dehydrogenase (LDH) into the culture media. Morphological perturbations of the cell monolayers were observed at approx. 14-18 h after cell exposure to Triol-enriched media. Enrichment with cholesterol or vitamin E did not prevent the Triol-induced increase in albumin transfer across ECM. These results suggest that exposure to oxidized cholesterol, but not cholesterol, itself, reduces the ability of the endothelium to act as a selectively permeable barrier to plasma components, and that these events may not be prevented by cholesterol or vitamin E.

Albumins↗