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Biomedical subjects

F Aberg

Publications and source records attributed to F Aberg.

17 recordsLinked to original sources

Metastasis-associated mts1 (S100A4) protein in the developing and adult central nervous system.

We have found recently that white matter astrocytes in the spinal cord constitutively express immunoreactivity for Mts1 (S100A4) protein and that this expression is up-regulated ipsilaterally after sciatic nerve or dorsal root injury. Here, we have studied the expression pattern of Mts1 throughout the rat central nervous system (CNS). We found Mts1 immunoreactivity in myelinated tracts such as the olfactory tract, optic nerve, corpus callosum, internal capsule, fimbria, and spinal cord funiculi but not in cerebellar white matter. Mts1-immunoreactive (IR) cells were consistently astrocytic (glial fibrillary acidic protein positive). In addition to myelinated tracts, Mts1 immunoreactivity was also present in a few nonmyelinated or poorly myelinated areas, such as pituitary gland, olfactory bulb, and around the lateral ventricle. Based on location, three Mts1-IR astrocyte groups were distinguished: 1) astrocytes at the surfaces of the CNS, i.e., adjacent to the cerebrospinal fluid, organized perpendicularly to the bundles of axonal tracts; 2) astrocytes located in parallel to, and inserted between, axonal bundles; and 3) clusters of astrocytes around the lateral ventricle and in the olfactory bulb. We further analyzed the relationship between Mts1 immunoreactivity and the development of CNS fiber tracts by combining staining for Mts1 and myelin basic protein (MBP). Mts1 immunoreactivity appeared postnatally in recently myelinated areas. During the development of corpus callosum and the optic tract, Mts1 immunoreactivity was concentrated at the frontier of myelination. The developmental expression pattern suggests a role of Mts1-IR astrocytes in the maturation of myelinated fiber tracts. The preferential localization of Mts1 to the subpial region in the mature CNS suggests that Mts1 participates in astrocyte-mediated CNS-cerebrospinal fluid exchange.

Age Factors↗

Free malondialdehyde determination in rat brain tissue by capillary zone electrophoresis: evaluation of two protein removal procedures.

Two procedures for the determination of underivatised, free malondialdehyde in rat brain tissue have been evaluated. Both procedures are based on capillary zone electrophoresis (CZE) and UV detection at 267 nm and differ only with respect to the protein removal step, for which ultrafiltration or precipitation with acetonitrile have been employed. The total analytical processes include sample homogenisation, addition of antioxidant, protein removal, and separation and detection in the CZE system, and take less than 20 min. The CZE buffer consists of 10 mM borax and 0.5 mM CTAB at pH 9.3. The malondialdehyde peak reaches the detector about 3 min after injection as one of the very first peaks in the electropherogram. The limit of detection (3 S/N) is 0.2 microM, corresponding to 4 fmol for an injection volume of 20 nl. The method is fast, reproducible and has a large linear range, spanning 0-200 microM.

Animals↗

Determination of malondialdehyde in rat brain by capillary zone electrophoresis.

A method for determination of malondialdehyde with capillary electrophoresis using UV detection at 267 nm has been developed. The buffer system consisted of 10 mM borax and 0.5 mM CTAB at pH 9.3. Malondialdehyde migrated as the first peak in the electropherogram at 2.6 min. Limit of detection was 1.2 microM corresponding to 7.8 pg. Malondialdehyde was determined before and after stimulating lipid peroxidation with the addition of ferrous ammonium sulphate to homogenates of rat brain tissue. Proteins were precipitated by boiling and removed from the brain homogenates with centrifugation. No further pretreatment was made before injecting the homogenates on the CE system. Non-precipitated homogenates could also be analyzed, but this required washing of the capillary with 0.1 M NaOH before introduction of the next sample.

Animals↗

Gemfibrozil-induced decrease in serum ubiquinone and alpha- and gamma-tocopherol levels in men with combined hyperlipidaemia.

BACKGROUND: Low blood levels of antioxidants are associated with an increased risk of developing coronary artery disease. Lipophilic antioxidants are transported in lipoproteins, and hypolipidaemic therapy may therefore alter their blood concentrations. METHODS: The present randomized, placebo-controlled cross-over study of 21 men with combined hyperlipidaemia examines whether 10-12 weeks of gemfibrozil treatment affects the serum concentrations of the antioxidants ubiquinone-10 or alpha- or gamma-tocopherol. RESULTS: Gemfibrozil treatment lowered plasma triglycerides and both total and very low-density lipoprotein (VLDL)-cholesterol (P < 0.001 for all by ANOVA), whereas high-density lipoprotein (HDL)-cholesterol increased (P < 0.001). The median serum levels of ubiquinone-10 decreased from 1.30 mumol L-1 (interquartile range 0.87-1.71 mumol L-1) with placebo to 0.76 mumol L-1 (0.66-0.95) with gemfibrozil treatment (P < 0.001). Corresponding levels for alpha- and gamma-tocopherol were: 68.5 mumol L-1 (51.1-84.7) vs. 40.8 mumol L-1 (30.3-55.0) and 8.6 mumol L-1 (5.2-16.7) vs. 4.3 mumol L-1 (3.5-7.0) respectively (P < 0.001 for both). The decrease in serum antioxidants was also evident when standardized for total cholesterol (P < 0.05) or LDL-cholesterol (P < 0.001). Normolipaemic control subjects had significantly lower antioxidant levels than placebo-treated patients: ubiquinone 0.63 mumol L-1 (0.41-1.05), alpha-tocopherol 34.3 mumol L-1 (27.3-45.6) and gamma-tocopherol 3.2 mumol L-1 (2.5-4.2) (P < 0.001 for all). The association of antioxidants with lipoprotein lipids was further established by positive correlations between the levels of antioxidants and those of total cholesterol (r = 0.64, P < 0.001) or total triglycerides (r = 0.71, P < 0.001). CONCLUSION: Gemfibrozil treatment of men with combined hyperlipidaemia reduces serum antioxidant levels to the levels seen in healthy normolipidaemic men. The mechanisms and the relevance of this finding remain unclear and need to be addressed in further studies.

Adult↗

Trypanosoma cruzi infection in tumor necrosis factor receptor p55-deficient mice.

Tumor necrosis factor receptor p55 (TNFRp55) mediates host resistance to several pathogens by allowing microbicidal activities of phagocytes. In the studies reported here, TNFRp55-/- mice infected with the intracellular parasite Trypanosoma cruzi showed clearly higher parasitemia and cumulative mortality than wild-type (WT) controls did. However, gamma interferon (IFN-gamma)-activated macrophages from TNFRp55-/- mice produced control levels of nitric oxide and killed the parasite efficiently in vitro. Trypanocidal mechanisms of nonphagocytic cells (myocardial fibroblasts) from both TNFRp55-/- and WT mice were also activated by IFN-gamma in a dose-dependent way. However, IFN-gamma-activated TNFRp55-/- nonphagocytes showed less effective killing of T. cruzi than WT control nonphagocytes, even when interleukin 1beta (IL-1beta) was added as a costimulator. In vivo, T. cruzi-infected TNFRp55-/- mice and WT mice released similar levels of NO and showed similar levels of IFN-gamma mRNA and inducible nitric oxide synthase mRNA in their tissues. Instead, increased susceptibility to T. cruzi of TNFRp55-/- mice was associated with reduced levels of parasite-specific immunoglobulin G (IgG) (but not IgM) antibodies during infection, which is probably linked to abnormal B-cell differentiation in secondary lymphoid tissues of the mutant mice. Surprisingly, T. cruzi-infected TNFRp55-/- mice showed increased inflammatory and necrotic lesions in several tissues, especially in skeletal muscles, indicating that TNFRp55 plays an important role in controlling the inflammatory process. Accordingly, levels of Mn2+ superoxide dismutase mRNA, a TNF-induced enzyme which protects the cell from the toxic effects of superoxide, were lower in mutant than in WT infected mice.

Animals↗

Increases in tissue levels of ubiquinone in association with peroxisome proliferation.

Rats were treated with various peroxisome proliferators and concomitant changes in ubiquinone levels were monitored. In addition to clofibrate and di(2-ethylhexyl)phthalate, acetylsalicylic acid, 2-ethylhexanoic acid, thyroxine and dehydroepiandrosterone were used as proliferators. Administration of these compounds increased the contents of ubiquinone in liver and, to some extent, in kidney and muscle. No change in corresponding valued for heart or brain were observed. The treatments did not influence cholesterol levels, but increased the amounts of dolichol in the liver to various extents. Treatment of rats with the catalase inhibitor aminotriazole increased the ubiquinone levels in kidney, heart and muscle but not in liver. Comparison of peroxisomal fatty acid beta-oxidation with ubiquinone amounts in liver homogenates after treatment with a number of peroxisome proliferators demonstrated a direct correlation between these two parameters. Subcellular fractionation of liver after peroxisome proliferation revealed that the ubiquinone level was increased in mitochondria and lysosomes which are the main compartments for this lipid, but an increase was also observed in both peroxisomes and microsomes. The increase in hepatic ubiquinone after treatment with various types of proliferators was related to the decrease in blood cholesterol level. These results show that the volume of the peroxisomal compartment and the ubiquinone content in animal tissues are interrelated.

Amitrole↗

Influence of dolichol on microsomal membrane functions.

Microsomal membranes from rat liver were extracted with n-pentane in order to remove the lipid products of the mevalonate pathway, dolichol, ubiquinone and cholesterol. Dolichol and cholesterol were subsequently reincorporated into these extracted membranes. Electron microscopic examination demonstrated that extraction did not alter the vesicular membrane structure of the microsomes. The extracted vesicles were permeable to uncharged molecules in the same manner as control microsomes but had an increased permeability for charged molecules. Enzyme denaturation was not observed. The contraction of extracted vesicles was greatly increased when the incubation medium was supplemented with non-penetrating compounds such as polyethylene glycol and was much greater than that of control microsomes. When extracted membranes were reconstituted with dolichol or cholesterol, the original lower degree of contraction was reestablished. The effects of dolichol reincorporation on a number of microsomal enzyme activities were investigated and some limited changes were observed. These results demonstrate that extraction of microsomes with n-pentane and subsequent reincorporation of dolichol is an effective approach for investigating the functions of this lipid. Dolichol and cholesterol both affect microsomal membrane fluidity, but only cholesterol modifies the activities of certain integral microsomal membrane enzymes to a larger extent.

Animals↗

Age-dependent modifications in the metabolism of mevalonate pathway lipids in rat brain.

The levels and rates of biosynthesis of mevalonate pathway lipids in rat brain were investigated during development and aging. Between birth and 18 months of age there are only moderate decreases in the phospholipid and cholesterol contents but an increase in the levels of dolichyl-P and, particularly of dolichol. The amount of ubiquinone is unchanged. The rate of incorporation of [3H]leucine into protein decreases by 10% during the first year, while the incorporation of [3H]glycerol into phospholipids decreases by 20%. The high rates of [3H]mevalonate incorporation into cholesterol and dolichol after birth decreases rapidly. In contrast, the rate of incorporation into ubiquinone is constant. Squalene synthase activity decreases rapidly in the early postnatal period and at 18 months of age this activity is 10-fold lower than immediately after birth. cis-Prenyltransferase activity is also high during the first postnatal month and reaches a constant level at 4 months of age. Significantly, nonaprenyl 4-hydroxybenzoate transferase activity is high during the entire period investigated. The rate of lipid peroxidation does not change during aging. These results demonstrate that brain cholesterol and dolichol exhibit a low rate of turnover during aging, whereas ubiquinone is synthesized at a high rate and exhibits rapid turnover throughout the entire lifespan.

Aging↗

Coenzymes Q9 and Q10 in skeletal and cardiac muscle in tumour-bearing exercising rats.

Physical exercise increases metabolic rate, and induces both adaptational biogenesis of mitochondria in skeletal muscle and an increase in antioxidant capacity. The onset of experimental anorexia and cachexia can be delayed by voluntary exercise. As skeletal muscle is the main target for cancer cachexia, we determined the levels of coenzymes Q9 and Q10 in skeletal muscle from tumour-bearing exercising rats, and compared them to those of sedentary tumour-bearers and controls. Both tumour-bearing groups had increased levels of coenzymes Q9 and Q10 in the anterior tibial muscle (P < 0.05 for exercised animals). In the soleus muscle, only the tumour-bearing exercising animals demonstrated an increase in the levels of both coenzymes (P < 0.05). In cardiac muscle, the presence of tumour and exercise reduced the levels of coenzymes below that of sedentary controls. Exercise counteracted the anaemia in the tumour-bearing host (P < 0.05). In conclusion, the increase in antioxidant capacity in skeletal muscle indicates a defence mechanism in the tumour-bearing hosts which is augmented by physical exercise.

Animals↗

Uptake of dietary coenzyme Q supplement is limited in rats.

Coenzyme Q is an important mitochondrial redox component and the only endogenously produced lipid-soluble antioxidant. Its tissue concentration decreases with aging and in a number of diseases; dietary supplementation of this lipid would fulfill important functions by counteracting coenzyme Q depletion. To investigate possible uptake, rats were administered 12 mumol coenzyme Q10/100 g body wt once daily by gastric intubation. The appearance of coenzyme Q10 in various tissues and blood after 6 h, 4 d or 8 d was studied. The control group of rats received rapeseed-soybean oil (the vehicle in the experimental group). Lipids were extracted with petroleum ethermethanol, and the reduced and oxidized forms of coenzyme Q9 and Q10 were separated and quantified by reversed-phase HPLC. In the plasma, the total coenzyme Q concentration was doubled after 4 d of treatment. Coenzyme Q10 was also recovered in liver homogenates, where, as in the plasma, it was largely in the reduced form. Uptake into the spleen could be to a large extent accounted for by the blood content of this organ. No dietary coenzyme Q10 was recovered in the heart or kidney. The uptake in the whole body was 2-3% of the total dose. Coenzyme Q10 found in the liver was located mainly in the lysosomes. Dietary coenzyme Q10 did not influence the endogenous biosynthesis of coenzyme Q9. This is in contrast to dietary cholesterol, which down-regulates cholesterol biosynthesis. The dietary coenzyme Q10 level in the plasma decreased to approximately 50% after 4 d. These results suggest that dietary coenzyme Q10 may play a role primarily in the blood and that no appreciable uptake occurs into tissues.

Animals↗

Lipid peroxidation of microsomal and mitochondrial membranes extracted with n-pentane and reconstituted with ubiquinol, dolichol and cholesterol.

Microsomes and mitochondria prepared from rat liver were extracted with n-pentane, a procedure which does not denature enzyme proteins. Protein and phospholipid were not extracted, but 75-80% of the total dolichol, 80-100% of the ubiquinone and 85-95% of the cholesterol were removed from both organelles by this procedure. Enzymatic and non-enzymatic lipid peroxidation in microsomes and non-enzymatic peroxidation in mitochondria were strongly inhibited when ubiquinol was reinserted into n-pentane-extracted membranes. When reconstitution with dolichol was performed, lipid peroxidation was increased or unchanged, while cholesterol decreased this activity in a concentration-dependent manner. In reconstitution experiments ubiquinol and dolichol together were less inhibitory than ubiquinol alone, whereas cholesterol accentuated the inhibitory effect of ubiquinol. Reconstitution with dolichols of different lengths, dolichyl esters or with alpha-unsaturated polyprenols further demonstrated that dolichol is not an antioxidant. It appears that mevalonate pathway lipids influence lipid peroxidation in membranes by modifying the properties of the bilayer.

Animals↗

Effects of clofibrate, phthalates and probucol on ubiquinone levels.

Rats were exposed through their diet to clofibrate, di(2-ethylhexyl)phthalate or probucol for 6 weeks and the levels of ubiquinone (UQ), cholesterol and dolichol were monitored in liver, muscle, heart, brain and blood. The levels of UQ-9 and -10 were increased by clofibrate and, in particular by phthalate administration. With the latter agent this increase in liver was fourfold, in muscle was twofold and levels in the heart and blood increased by 20%, whereas there was no change in the brain. Probucol led to a moderate decrease in the level of UQ in liver, muscle and blood, but not in heart or brain. The extent of reduction of UQ was not modified by any of the treatments employed. Probucol did not have any effect on tissue or blood cholesterol levels, whereas clofibrate or phthalate elicited a variable response, including both increases and decreases depending on the tissue analyzed. Phthalate treatment increased the dolichol content to some extent in all tissues and in blood, but the level of this lipid was not modified upon clofibrate or probucol treatment. These results demonstrate that tissue and blood levels of UQ can be increased by exposure to appropriate chemical agents without elevating the concentration of cholesterol.

Animals↗

Regulation of coenzyme Q biosynthesis.

The side-chain moiety of coenzyme Q is synthesized by a trans-prenyltransferase present in microsomes. Condensation of this moiety with the precursor ring takes place in the Golgi system. The enzymes involved, as well as the cytosolic geranylgeranyl-PP synthase, are regulated in an independent fashion. When the size of the farnesyl-PP pool is decreased or increased by employing appropriate inhibitors, the rate of CoQ synthesis is modified accordingly, indicating the dependence of trans-prenyltransferase activity on the level of intracellular substrate concentrations. Administration of peroxisome proliferators elevates CoQ concentrations not only in blood, but also in various tissues. Thus, it may be possible in the future to selectively increase CoQ concentrations in certain organs, without increasing the level of cholesterol.

Alkyl and Aryl Transferases↗

Clofibrate and di(2-ethylhexyl)phthalate increase ubiquinone contents without affecting cholesterol levels.

Induction studies were performed on liver, muscle, heart, brain and blood by feeding Sprague-Dawley rats a diet containing a peroxisome proliferator, clofibrate or di(2-ethylhexyl)phthalate. Ingestion of these drugs resulted in an increase in the amount of two different types of ubiquinone homologues UQ9 and UQ10 found in rat. Phthalate proved to be the more effective drug, leading to a highly increased amount of ubiquinone in the liver. Increases were also found in all the above-mentioned organs except the brain. The UQ9 levels were raised to 400, 200, 120 and 120%, of the respective normal values. The antioxidant and hypolipidemic agent, probucol, was used as a control to evaluate whether the increased ubiquinone level constituted a response to the elevated hydrogen peroxide pressure, resulting from the induced increase in fatty acid beta-oxidation. In the presence of probucol, ubiquinone levels were decreased in all the above-mentioned organs except heart and brain. Probucol had limited effects on the amount of cholesterol and did not significantly alter the amount of dolichol. The two peroxisome proliferators differed in their effects on cholesterol, as well as on dolichol levels which was induced by phthalate but not by clofibrate. The possible mechanisms involved, and the importance of low toxicity drugs which could elevate ubiquinone levels in various tissues, are discussed.

Animals↗

Distribution and redox state of ubiquinones in rat and human tissues.

The distribution and redox state of ubiquinone in rat and human tissues have been investigated. A rapid extraction procedure and direct injection onto HPLC were employed. It was found in model experiments that in postmortem tissue neither oxidation nor reduction of ubiquinone occurs. In rat the highest concentrations of ubiquinone-9 were found in the heart, kidney, and liver (130-200 micrograms/g). In brain, spleen, and intestine one-third and in other tissues 10-20% of the total ubiquinone contained 10 isoprene units. In human tissues ubiquinone-10 was also present at highest concentrations in heart, kidney, and liver (60-110 micrograms/g), and in all tissues 2-5% of the total ubiquinone contained 9 isoprene units. High levels of reduction, 70-100%, could be observed in human tissues, with the exception of brain and lung. The extent of reduction displayed a similar pattern in rat, but was generally lower.

Animals↗

Inhibition of lipid peroxidation by ubiquinol in submitochondrial particles in the absence of vitamin E.

The relationship between the antioxidant effects of reduced coenzyme Q10 (ubiquinol, UQH2) and vitamin E (alpha-tocopherol) was investigated in beef heart submitochondrial particles in which lipid peroxidation was initiated by incubation with ascorbate + ADP-Fe3+. These effects were examined after extraction of coenzyme Q10 (UQ-10) and vitamin E from the particles and reincorporation of the same components alone or in combination. The results show that UQH2 efficiently inhibits lipid peroxidation even when vitamin E is absent. It is concluded that UQH2 can inhibit lipid peroxidation directly, without the mediation of vitamin E.

Adenosine Diphosphate↗

Studies on the biosynthesis of polyisoprenols, cholesterol and ubiquinone in highly differentiated human hepatomas.

Surgical samples of human hepatic tissue were analysed morphologically and biochemically and highly differentiated hepatomas were compared with two control groups: morphologically normal liver tissue surrounding the tumour, and tissue from normal livers. In tumour homogenates cholesterol levels were more than twice, ubiquinone levels about half and the concentration of free dolichol about 10% of the control value. The levels of dolichyl phosphate were basically similar, whereas the phospholipid level was slightly lower in the tumours. In microsomes isolated from hepatomas, the level of cholesterol was about 30% higher than the control value. HMG-CoA reductase activity in microsomes isolated from hepatomas was elevated almost 100% in comparison to control. In hepatomas, no major alterations in the compositions of dolichol or dolichyl phosphate could be observed. The relative amounts of alpha-saturated and alpha-unsaturated polyprenols were also basically unaltered in hepatomas. Liver samples were incubated with 3H-mevalonic acid and radioactivity was monitored in polyprenols. With control tissue, incorporation was considerably higher in alpha-unsaturated polyprenols than in their alpha-saturated counterparts. In the tumours the rates of incorporation into both polyprenol fractions were much lower, although still higher in the alpha-unsaturated fraction. Labelling of polyisoprenols containing 19 isoprene residues was higher than that of 20 residues. The pattern of labelling in the polyisoprenyl-P fraction was similar. In hepatomas the incorporation into cholesterol and ubiquinone-10 was about 100% higher and 50% lower respectively compared with control tissue. The results in this study of hepatomas indicate that the levels of various lipids may be influenced not only by the regulatory enzyme HMG-CoA reductase, but also by other enzymes catalysing reactions subsequent to this regulatory point. It is also suggested that levels of cholesterol, ubiquinone and dolichol may be regulated independently subsequent to the branch point at farnesylpyrophosphate.

Carcinoma, Hepatocellular↗