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The effects of fasting or hypoxia on rates of protein synthesis in vivo in subcellular fractions of rat heart and gastrocnemius muscle.

We measured rates of protein synthesis in vivo in subcellular fractions (soluble, myofibrillar and stromal fractions) of the heart and the gastrocnemius from rats after fasting or under hypoxic conditions (i.e. atmospheres containing 5% or 10% O2). Such interventions are known to inhibit protein synthesis under some circumstances. The recovery of tissue protein after fractionation was 80-100%. The proportions of protein present in the soluble and stromal fractions were different in the two muscles. The rates of protein synthesis in the myofibrillar and stromal fractions were less than those for total mixed tissue protein, whereas the rate for soluble protein was greater. Both fasting and moderate hypoxia (10% O2 for 24 h) inhibited protein synthesis in the gastrocnemius. In this tissue, the synthesis of the myofibrillar fraction was apparently the most sensitive to inhibition, and this resulted in some significant increases in the soluble-fraction/myofibrillar-fraction protein-synthesis rate ratios. In the heart, fasting inhibited protein synthesis, but moderate hypoxia (10% O2 for 24 h) did not. The rate of protein synthesis in the cardiac myofibrillar fraction was again more sensitive to fasting than were the rates in the other fractions, but it was not as sensitive as that in the gastrocnemius. Under severely hypoxic conditions (5% O2 for 1 or 2 h), protein synthesis was decreased in all fractions in both tissues. These results suggest that the rates of protein synthesis in these relatively crude subcellular fractions vary.

Animals↗

Stabilization of ascorbic acid and norepinephrine in vitro by the subcellular fractions of rat cerebral cortex.

The effect of various subcellular fractions of rat cerebral cortex on the autoxidation of ascorbic acid and norepinephrine in a physiological salt solution, pH 7.4, was investigated. The rate of the two reactions was determined spectrophotometrically at 265 and 480 nm, respectively. The cytoplasmic, microsomal, crude mitochondrial fractions and a soluble phase of mixed subcellular origin (100,000 g supernatant) were tested in an assay system in which the final dilution of the cellular components was in the 10(3) to 10(6) range. The samples were heat-treated (30 min at 100 degrees C) and dialyzed (50,000 mol.wt. cut-off) prior to analysis. The preparations produced approximately 80% inhibition at 10(3)-fold dilution and marginal inhibition at 10(5)-fold dilution, except the microsomal preparation, which was a considerably weaker inhibitor in the norepinephrine autoxidation test. The study shows that all three major subcellular compartments of the rat cerebral cortex have macromolecules with a high level of heat-stable autoxidation-inhibiting activity.

Animals↗

Cholesterol metabolism in myelin and other subcellular fractions of rat brain.

For many years the bulk of myelin in adult brain was believed to be metabolically stable, although some metabolic activity of a small myelin fraction, especially in the gray matter of the brain, was recognized. We have attempted to compare the composition of myelin fractions isolated from two different areas of the brain. No differences in chemical composition were observed. We have also investigated the metabolism of cholesterol in myelin and other subcellular fractions from the two areas. Both young (16-day-old) and adult rats were used. Results show an uptake of radioactive cholesterol by all subcellular fractions of the brain, including myelin, in both young and adult animals, with ultimate uniform distribution of the radioactive sterol and its persistence in all uniformly labeled subcellular fractions of the brain. On the basis of these results we suggest that there is a pool of cholesterol in the brain from which all metabolizing structures, including myelin, draw their cholesterol supplies. There is continuous exchange of cholesterol between the brain pool and the blood. The rate of this exchange may be related to the rate of blood flow through the tissue.

Acetates↗

Recombinant antibodies against subcellular fractions used to track endogenous Golgi protein dynamics in vivo.

Generation of specific antibodies against enriched subcellular fractions is a powerful strategy to identify and characterize cellular components. We show that recombinant antibodies can be selected in vitro by phage display against complex subcellular fractions, namely microtubule-binding proteins and Golgi stacks. This technique has allowed us to overcome many limitations of the classical animal-based approach and generate cell biology-compliant antibodies. In addition, we show that intracellular expression of GFP-tagged recombinant antibodies can reveal the dynamics of endogenous proteins in vivo. Endogenous Giantin is very static and outlines the Golgi in living cells. It accumulates neither onto Golgi-derived tubules upon Brefeldin A treatment before Golgi disappearance, nor onto de novo formed Golgi mini-stacks upon microtubule depolymerization, and remains instead on the 'old' pericentriolar Golgi. This suggests that, in contrast to other Golgi matrix proteins, endogenous Giantin is very stably associated with the Golgi and does not efficiently recycle to the ER. Altogether, we show that the antibody phage display technique represents an efficient alternative to rapidly generate versatile antibodies that represent new tools to study protein function.

Animals↗

Distribution of calretinin, calbindin D28k, and parvalbumin in subcellular fractions of rat cerebellum: effects of calcium.

The distribution of calretinin, calbindin D28k, and parvalbumin was examined in subcellular fractions prepared from rat cerebellum and analyzed by immunoblot. Calretinin was also quantified by radioimmunoassay. As expected, all three soluble, EF-hand calcium-binding proteins were predominantly localized in the cytosolic fraction. Calretinin and calbindin D28k were also detected in membrane fractions. Calretinin was more abundant in synaptic membrane than in microsomal fractions. The cerebellar microsomal fraction contained the greatest concentration of membrane-associated calbindin D28k. The association of calretinin and calbindin D28k with membrane fractions was decreased in samples prepared or incubated in low calcium. Quantification of calretinin in subcellular fractions of rat cerebellum revealed a greater amount of calretinin in cytosolic fractions prepared or incubated in low calcium and reduced amounts of calretinin in all membrane fractions incubated in low calcium with the exception of the mitochondrial fraction. These results imply that calretinin and calbindin D28k might have physiological target molecules that are associated with, or are components of, brain membranes.

Animals↗

Metabolism of rofecoxib in vitro using human liver subcellular fractions.

The metabolism of rofecoxib, a potent and selective inhibitor of cyclooxygenase-2, was examined in vitro using human liver subcellular fractions. The biotransformation of rofecoxib was highly dependent on the subcellular fraction and the redox system used. In liver microsomal incubations, NADPH-dependent oxidation of rofecoxib to 5-hydroxyrofecoxib predominated, whereas NADPH-dependent reduction of rofecoxib to the 3,4-dihydrohydroxy acid metabolites predominated in cytosolic incubations. In incubations with S9 fractions, metabolites resulting from both oxidative and reductive pathways were observed. In contrast to microsomes, the oxidation of rofecoxib to 5-hydroxyrofecoxib by S9 fractions followed two pathways, one NADPH-dependent and one NAD+-dependent (non-cytochrome P450), with the latter accounting for about 40% of total activity. The 5-hydroxyrofecoxib thus formed was found to undergo NADPH-dependent reduction ("back reduction") to rofecoxib in incubations with liver cytosolic fractions. In incubations with dialyzed liver cytosol, net hydration of rofecoxib to form 3,4-dihydro-5-hydroxyrofecoxib was observed, whereas the 3,4-dihydrohydroxy acid derivatives were formed when NADPH was present. Although 3,4-dihydro-5-hydroxyrofecoxib could be reduced to the 3,4-dihydrohydroxy acid by cytosol in the presence of NADPH, the former species does not appear to serve as an intermediate in the overall reductive pathway of rofecoxib metabolism. In incubations of greater than 2 h with S9 fractions, net reductive metabolism predominated over oxidative metabolism. These in vitro results are consistent with previous findings on the metabolism of rofecoxib in vivo in human and provide a valuable insight into mechanistic aspects of the complex metabolism of this drug.

Cytosol↗

Hck is activated by opsonized zymosan and A23187 in distinct subcellular fractions of human granulocytes.

Regulation of neutrophil responses is known to involve tyrosine phosphorylation. Hck, a major neutrophil protein-tyrosine kinase, becomes expressed during differentiation of human promyelocytic NB4 cells into neutrophil-like cells. Hck is mainly localized in a secretory granule-enriched cell fraction, but it is also present in a granule-free membrane fraction and the cytosol. Hck is rapidly and transiently activated upon stimulation of differentiated NB4 cells or human neutrophils with serum-opsonized zymosan or the calcium ionophore A23187, but not by phorbol 12-myristate 13-acetate. In NB4 cells, Hck is also weakly activated by fMet-Leu-Phe. Cell fractionation showed that opsonized zymosan and A23187 induce Hck activation in distinct subcellular fractions. Both stimuli activate Hck in the secretory granule-enriched fraction, but only A23187 activates the kinase in the granule-free membrane fraction. Our results suggest that Hck might regulate early signal transduction events induced by opsonized zymosan and A23187, and that the different subcellular fractions of Hck might serve discrete functions, one of which could be regulation of the degranulation response.

Calcimycin↗

Insulin degradation by isolated fat cells and their subcellular fractions.

Isolated frt cells and purified subcellular fractions of fat cells have been shown to degrade insulin to biologically inactive trichloroacetic-acid-soluble fragments. Further study of this activity has revealed the following characteristics: 1 Most of the insulin-degrading enzymes are intracellular, inaccessible to insulin or trypsin when fat cells are intact. More that 90 per cent of the recovered activity is found in the high-speed supernatant (cytosol) when cell fractionation studies are performed. 2. The plasma membrane contains significant insulin-degradative capacity, as shown by tryptic digestion of intact cells and cell fractionation. 3. The pH optimum of the cell-membrane insulin-degrading site is more acid than that of the cytosol activity, but the tow enzyme systems are similar with regard to substrate specificity, response to metabolic inhibitors, and elution volume of degradation products on gel filtration. 4. The plasma-membrane-degrading activity differs from the specific insulin-binding site with regard to saturation kinetics, optimum temperature, substrate specificity, sensitivity to sulfhydryl-blocking agents, and trypsin snesitivity.

Adipose Tissue↗

Propranolol increases the biosynthesis of phosphatidic acid, phosphatidylinositol and phosphatidylserine in the toad retina. Studies in the entire and subcellular fractions.

1. Intact toad retinas incubated for short periods of time with [2-3H]glycerol were subject to subcellular fractionation. 2. The composition and labeling of glycerolipids were studied in the following subcellular fractions: rod outer segments (ROS), nuclear-photoreceptor inner segment synaptic body (P1), synaptosomal-mitochondrial (P2), microsomal and cytosolic. 3. It was concluded that the biosynthetic de novo route was followed by [2-3H]glycerol in the toad retina since radioactive was located solely in the glycerol backbone of lipids and phosphatidic acid specific activity was the highest. 4. Propranolol produces an increase in the biosynthesis of acidic phospholipids and inhibition in the biosynthesis of zwitterionic lipids in the entire toad retina. The effect was mainly located in microsomes and in the soluble fraction during the first minutes of incubation, being spread afterwards to other fractions. 5. These data are consistent with the view that enzymes of the biosynthesis of glycerolipids are modified in the retinal endoplasmic reticulum by propranolol, providing a useful tool to evaluate the regulation of the pathway.

Animals↗

Leukocyte migration test (LMT) in patients with thyroid disease: the response to human thyroid subcellular fractions.

The response of circulating leukocytes to thyroid subcellular fractions was investigated in 19 patients with Graves' disease, 15 patients with Hashimoto's thyroiditis, 7 patients with toxic adenoma, 19 patients with nontoxic goiter and in 10 healthy students as control subjects. For this purpose, the leukocyte migration test of Soborg and Bendixen was performed against human crude thyroid extract (CTE), cell plasma membranes, nuclei, ribosomes, mitochondria and microsomes. Our results show positive LMT against: 1) CTE in patients with Graves' disease (61 +/- 13, p less than 0.001) and Hashimoto's thyroiditis (65 +/- 11, p less than 0.001) compared to controls (90 +/- 11); 2) cell plasma membranes in patients with Graves' disease (41 +/- 14, p less than 0.001) and Hashimoto's thyroiditis (64 +/- 21, p less than 0.05) compared to controls (88 +/- 19); 3) nuclei in patients with Graves' disease (53 +/- 25, p less than 0.001) and Hashimoto's thyroiditis (53 +/- 23, p less than 0.001) compared to controls (83 +/- 11). Our findings of circulating leukocytes sensitized to cell plasma membranes and nuclear fraction in patients with Graves' disease and Hashimoto's thyroiditis provide the additional information that these patients have a specific defect in immune-surveillance.

Adenoma↗

Specific binding of leukotriene C4 to ileal segments and subcellular fractions of ileal smooth muscle cells.

A specific high-affinity receptor for leukotriene C4 (LTC4) has been identified on segments of longitudinal smooth muscle from guinea pig ileum, in disrupted cells obtained from the ileal segments, and in subcellular fractions enriched for mitochondrial membranes and plasma membranes, respectively. Specific [3H]LTC4 binding at a fixed input at 4 degrees C reached a plateau at 60 min with each of the four preparations and was greater than 80% reversible after binding reached equilibrium by the introduction of excess unlabeled homoligand. LIGAND analysis demonstrated a single high-affinity receptor on the smooth muscle segments, the disrupted cells, and the subcellular fractions enriched for mitochondrial membranes and for plasma membranes with respective Kd values of 7.6 nM, 1.3 nM, 13 nM, and 8.5 nM. These Kd values overlap with the concentration of LTC4 known to elicit a spasmogenic response in the ileal muscle, indicating that the radioligand recognizes a receptor that mediates the biological response. Competition analysis with disrupted ileal cells and subcellular fractions with a fixed input of LTC4 radioligand and incremental concentrations of the natural sulfidopeptide leukotrienes demonstrated leukotriene D4 (LTD4) to be 1-3 logarithms less active than LTC4 and leukotriene E4 (LTE4) to be essentially inactive. Thus, ileal longitudinal smooth muscle cells possess a high-affinity receptor that is selective for LTC4 and that receptor exhibits both a plasma membrane and subcellular distribution.

Animals↗

Distribution and characteristics of Ca+2-phosphatidylserine-dependent protein kinase C in subcellular fractions and lamellar bodies of adult rabbit lung.

Pulmonary surfactant prevents lung collapse at minimal alveolar diameter. Since surfactant acts extracellularly, secretion is vitally important in regulating the alveolar surfactant levels. Studies with phorbol esters which stimulate protein kinase C (PKC) activity suggest PKC is involved in regulating surfactant secretion. This study was done to characterize PKC activity in adult rabbit lung fractions. Lungs were removed, homogenized and subcellular fractions prepared by centrifugation on a discontinuous sucrose gradient. Calcium-phosphatidylserine-dependent PKC activity was assayed in fractions in the presence of 4 microM phorbol 12-myristate 13-acetate, 1mM EDTA, 8 mole% phosphatidylserine and 1mM Ca2+ by measuring the transfer of 32P from [gamma-32P]ATP to protein. Concurrent assays were done without Ca+2 or PS. Ca+2-PS dependent PKC activity was defined as the difference between the two. Select fractions were incubated with PKC inhibitors sangivamycin, acridine orange or 9-aminoacridine and activity measured. The results showed the majority of the PKC activity was in the cytosolic fraction (87%, specific activity, 142 pmoles/min/mg) but the lamellar bodies also appeared to contain a small amount of PKC activity (approximately 4.0%, 151 pmoles/min/mg). PKC inhibitors were used to examine the characteristics of the enzyme in the microsomal and lamellar body fractions. Sangivamycin was the most potent inhibitor. Some differences in the inhibition characteristics between the lamellar body and microsomal fractions were observed. However using an add-back approach with the lamellar body fraction, indicated that the small quantity of activity in this fraction be attributed to contamination by microsomes. These results indicate that PKC is active in adult rabbit lung subcellular compartments but is probably not associated with the intracellular surfactant storage organelles.

Animals↗

[Distribution of ]1-14C]N-palmitoylethanolamine and its metabolites in subcellular fractions of neuroblastoma C1300 N18].

Distribution in dynamics of [1-14C]N-palmitoyl ethanolamine in the subcellular fractions of neuroblastoma C1300 N18 has been studied. It is shown that distribution dynamics of the label is different depending on subcellular fractions. The level of the label in cytoplasm 15 min after incubation reaches the value which remains constant till the end of the experiment. In the microsomal fraction the label is accumulated with time and becomes maximum at the end of the experiment. The highest amount of the label in the plasma membrane has been found 15 min later and then its amount falls. Parallel with this the amount of free fatty acids grows and then begins to fall simultaneously with an increase of the amount of esterified fatty acids. A considerable amount of the label of fatty acids has been determined 15 min later in the composition of di- and triglycerides of cytosol and microsomal fraction.

Amides↗

Catabolism of leukotriene A4 into B4, C4, and D4 by rat liver subcellular fractions.

[3H]Leukotriene A4 was incubated with various subcellular fractions of rat liver homogenates. After solvent extraction and purification on C18 Sep-Pak cartridges, tritiated products migrating on reversed-phase HPLC with authentic unlabelled leukotriene C4, D4 and B4 were observed. The identity of leukotriene C4 was confirmed through enzymatic conversion into D4 by gamma-glutamyl transpeptidase as well as by bioassay on the rat stomach fundus after HPLC purification. The contractile response to the extracted material was blocked by the SRS antagonist, FPL 55712. Leukotriene B4 synthesis was located in the 100 000 X g supernatant, while C4 synthesis was present in the corresponding pellet. Leukotriene C4 formation was enhanced when reduced glutathione was supplemented in the incubation medium. These results demonstrate the presence in rat liver of various enzymatic steps in leukotriene A4 catabolism.

Animals↗

Epoxidation of plasmalogens: source for long-chain alpha-hydroxyaldehydes in subcellular fractions of bovine liver.

1. Masked long-chain alpha-hydroxyaldehydes were trapped in all subcellular fractions of bovine liver by application of pentafluorbenzyloxime derivatization [van Kuijk, Thomas, Stephens and Dratz (1986) Biochem. Biophys. Res. Commun. 139, 144-149] and quantified via GLC/MS using characteristic ion traces. 2. The chain-length profile of long-chain 2-hydroxyalkanales clearly indicates their relationship to plasmalogens as precursor molecules. 3. The previously postulated existence of alpha-acyloxyplasmalogens as precursor molecules of masked long-chain alpha-hydroxyaldehydes in bovine tissue lipids [Lutz and Spiteller (1991) Liebigs Ann. Chem. 1991, 563-567] was excluded. 4. The constant oxidation rate of plasmalogens in all subcellular fractions provides conclusive evidence for a non-enzymic plasmalogen epoxidation process (probably via hydroperoxy radicals). 5. The high reactivity of alpha-hydroxyaldehydes sheds some doubt on the postulation that plasmalogens protect mammalian cells against oxidative stress as postulated previously [Morand, Zoeller and Raetz (1988) J. Biol. Chem. 263, 11590-11596; Morand, Zoeller and Raetz (1988) J. Biol. Chem. 263, 11597-11606].

Aldehydes↗

[Tetracycline antibiotic interaction with the subcellular fractions of rat liver homogenate].

Binding of tetracyclines, i. e. tetracycline, oxytetracycline, morphocycline, methacycline and doxycycline by subcellular fractions of rat liver homogenates was studied on randombred albino rats. It was shown that the drugs lost their activity to a significant extent on contact with nuclei, mitochondria, microsomes and the fraction mixtures. The mitochondrial fraction bound the highest amounts of the drugs. The binding level of methacycline by the organoids was the highest, while that of morphocycline was the least. Binding of the tetracyclines with the subcellular fractions of the liver was to a certain extent reversible. Accumulation of the antibiotic in the cells may be advantageous from the viewpoint of its effect on the intracellular microbes if possible subsequent dissociation from its complex with organoids is considered. At the same time the mitochondriatropic properties of the tetracyclines may be the basis for their toxic effect on the host cells.

Animals↗

Ca-activated ATPase activity in subcellular fractions of mouse pancreatic islets.

Ca-stimulated ATPase activity has been demonstrated in homogenates of mouse pancreatic islets. On subcellular fractionation Ca-ATPase activity was found in secretory granules, mitochondria, and microsomes, but not in the postmicrosomal fractions. Highest specific activity was found in the granules. In all active subcellular fractions two Km(Ca) values for Ca-ATPase around 7.0 X 10(-6) and 1.8 X 10(-7) M were estimated. Assuming an ATP hydrolysis:Ca pumping ratio of 1:2, the highest capacity for active Ca transport was found in secretory granules and mitochondria. Concentrations of 40 mM or higher of Na and 10(-5) M cyclic AMP inhibited Ca-ATPase in all subfractions. Caffeine at a concentration of 10 mM inhibited Ca-ATPase significantly in secretory granules and microsomes. Also MG-ATPase activity was demonstrated in the various subfractions. This activity was compared with that of Ca-ATPase at identical concentrations of free metal ions and in the absence or presence of various inhibitors. It was concluded that high-affinity Ca-ATPase and Mg-ATPase are two different enzymic entities. Ca-ATPase may tentatively be assumed to participate in active transport of Ca between intracellular compartments and to constitute a Ca-accumulating system which returns the cytosolic free Ca concentration to the resting state after stimulation of the beta-cells by secretagogues. This enzyme may therefore play a significant role in regulation of insulin release.

4-Chloromercuribenzenesulfonate↗