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Esterolytic activities of rat intestinal mucosa. 1. Characterization, cellular distribution and subcellular localization of a glycerol-ester hydrolase.

The preferential cellular distribution in the villus tip and the subcellular localization in the endoplasmic reticulum of an intestinal glycerol-ester hydrolase from rat mucosa are described. The enzyme is shown not to be from either pancreatic or bacterial origin; it catalyzes the hydrolysis of short- and medium chain triglycerides and of p-nitrophenylacetate. Contrarily to the specificity found for the pig intestinal lipase (Serrero, Négrel and Ailhaud, 1975), no activity is detectable against acylCoA; a thiolester hydrolase different from the glycerol-ester hydrolase was demonstrated after differential solubilization and chromatographic separation. A high proportion of glycerol-ester hydrolase is present in the intestinal lumen; its possible complementary role in lipid degradation is discussed.

Aging

Different subcellular localization of neurotensin-receptor and neurotensin-acceptor sites in the rat brain dopaminergic system.

The subcellular localization of neurotensin-receptor sites (NT2 sites) and neurotensin-acceptor sites (NT1 sites) was studied in rat caudate-putamen by isopycnic centrifugation in sucrose density gradients. [3H]Neurotensin binding to NT2 sites occurred as a major peak at higher sucrose densities, colocalized with [3H]dopamine uptake, and as a small peak at a lower density; whereas binding to NT1 sites occurred as a single large peak at an intermediate density. 6-Hydroxydopamine lesions of the median forebrain bundle resulted in a total loss of NT2 sites in the caudate-putamen but did not affect NT2 sites in the nucleus accumbens and the olfactory tubercle. NT1 sites were not affected. Kainic acid injections into the rat caudate-putamen led to a partial decrease of NT1 sites in this region 5 days later. After a few weeks they returned to normal. Therefore NT2 sites are probably associated with presynaptic nigrostriatal dopaminergic terminals in the caudate-putamen but not in the nucleus accumbens and the olfactory tubercle. A possible association of NT1 sites with glial cells is suggested.

Animals

Subcellular localization of two long-chain acyl-coenzyme-A synthetases in Candida lipolytica.

Studies have been made on the subcellular localization of two long-chain acyl-coenzyme-A synthetases as well as glycerolphosphate acyltransferase and the acyl-CoA-oxidizing system in Candida lipolytica grown on oleic acid. Acyl-CoA synthetase I is distributed among different subcellular fractions, including microsomes and mitochondria where glycerolphosphate acyltransferase is located. On the other hand, acyl-CoA synthetase II is localized in microbodies where the acyl-CoA-oxidizing system is located. These results support our previous conclusion that acyl-CoA synthetase I is responsible for the production of acyl-CoA to be utilized for the synthesis of cellular lipids, while acyl-CoA synthetase II provides acyl-CoA that is exclusively degraded via beta-oxidation.

Candida

Ion microscopy: a new approach for subcellular localization of labelled molecules.

Secondary ion mass spectroscopy (SIMS) was used to obtain images representing the intracellular distribution of molecules labelled with carbon 14. Deoxyadenosine labelled with carbon 14 was added to a cultured human fibroblast cell medium, and the intracellular distribution of this molecule was studied using three different SIMS instruments: the CAMECA IMS 3F and SMI 300 ion microscopes and the UC-HRL scanning ion microprobe. Carbon 14 distribution images obtained by this method show that deoxyadenosine U-C14 is present in the cytoplasm as well as the nucleus, with a higher concentration in the nucleoli. Our study clearly demonstrates that ion microscopy is well suited for carbon 14 detection and localization at the subcellular level, permitting a wide variety of microanalytical tracer experiments.

Adult

Study of the subcellular localization of 59Fe and iron-binding proteins in the duodenal mucosa of pregnant and nonpregnant rats.

The subcellular localization of intraduodenally administered 59Fe has been studied in control, pregnant, and nonpregnant rats absorbing iron at different rates. Binding of iron to the particulate fractions of mucosal homogenates produced by centrifugation at 500, 10,000, and 100,000 X g did not vary among groups despite significant alterations in iron transport rates. Study of the 10,000 X g supernatant fluid showed that increased iron transport in iron-deficient and day 20- to 21-pregnant rats was associated with an increase in 59Fe binding to a particulate fraction of the mucosal homogenate. Although only 10 to 15% of the total mucosal 59Fe was present in the 100,000 X g supernatant in all groups, significant differences were demonstrated, among groups in the binding of iron to the three proteins present in this supernatant fraction. The proteins have been identified as ferritin, transferrin, and a protein of lower molecular weight than transferrin. Increased iron absorption was associated with a reduction in ferritin 59Fe binding and an increase in 59Fe bound to protein 3. Conversely, reduced iron absorption, was associated with increased ferritin 59Fe content and decreased protein 3 59Fe content. By studying day-21 pregnant rats 5 and 18 hr posthysterectomy it was possible to demonstrate a 12- to 18-hr delay in the intestinal mucosal protein response to alterations in the stimulus to iron absorption.

Animals

Subcellular localization of polluting metals in roadside earthworms exposed to traffic exhaust gases.

The aim was to make a subcellular localization of metals in tissue from lumbricid earthworms exposed to environmental pollution. Scanning transmission electron microscopy in combination with energy dispersive X-ray microanalysis of tissue fixed in glutaraldehyde only, and with no electron staining, was used. Zinc was registered in the metachromatic mucous granules of the epidermal cells, and zinc, iron and lead in the chloragosomes of the chloragocytes suggesting that metal may be excreted together with the slime or stored in chloragosomes. Relatively few metal nuclear inclusions were encountered probably due to the fact that some metal leaks out during the preparation process. A comparison is made with a chemical analysis of cellular fractions (Talberg, 1977).

Animals

Subcellular localization of tobramycin and vancomycin given alone and in combination in proximal tubular cells, determined by immunogold labeling.

The subcellular localization of tobramycin and vancomycin in the renal cortices of rats was determined with ultrathin sections by immunogold labeling. Four groups of four rats each were treated for 10 days with saline (NaCl, 0.9%), tobramycin at dosages of 20 mg/kg of body weight per 12 h intraperitoneally, vancomycin at dosages of 25 mg/kg/12 h subcutaneously, or the combination tobramycin-vancomycin. On day 11, the animals were killed, and cubes of renal cortex were fixed overnight in phosphate-buffered glutaraldehyde (0.5%), dehydrated in ethanol, and embedded in Araldite 502 resin. Ultrathin sections were made and incubated with sheep antitobramycin antibody followed by protein A-gold (15-nm diameter) complex or rabbit antivancomycin antibody followed by gold (30-nm diameter)-labeled goat anti-rabbit antibody. For the double labeling, incubations were made on opposite sides of the grid. Tobramycin was detected over the lysosomes of proximal tubular cells, but the labeling was concentrated into small areas in the matrix of the lysosomes. Vancomycin was seen over the lysosomes of proximal tubular cells and was distributed uniformly throughout the matrix of the lysosomes. In rats treated with tobramycin-vancomycin, both drugs were still detected in lysosomes of proximal tubular cells. It is concluded that tobramycin and vancomycin accumulate in lysosomes of proximal tubular cells throughout 10 days of treatment and that vancomycin has no effect on the subcellular distribution of tobramycin.

Animals

Subcellular localization of low-abundance human immunodeficiency virus nucleic acid sequences visualized by fluorescence in situ hybridization.

Detection and subcellular localization of human immunodeficiency virus (HIV) were investigated using sensitive high-resolution in situ hybridization methodology. Lymphocytes infected with HIV in vitro or in vivo were detected by fluorescence after hybridization with either biotin or digoxigenin-labeled probes. At 12 hr after infection in vitro, a single intense signal appeared in the nuclei of individual cells. Later in infection, when cytoplasmic fluorescence became intense, multiple nuclear foci frequently appeared. The nuclear focus consisted of newly synthesized HIV RNA as shown by hybridization in the absence of denaturation and by susceptibility to RNase and actinomycin D. Virus was detected in patient lymphocytes and it was shown that a singular nuclear focus also characterizes cells infected in vivo. The cell line 8E5/LAV containing one defective integrated provirus revealed a similar focus of nuclear RNA, and the single integrated HIV genome was unequivocally visualized on a D-group chromosome. This demonstrates an extremely sensitive single-cell assay for the presence of a single site of HIV transcription in vitro and in vivo and suggests that it derives from one (or very few) viral genomes per cell. In contrast, productive Epstein-Barr virus infection exhibited many foci of nuclear RNA per cell.

Cell Nucleus

Subcellular localization of prolactin in the anterior pituitary cells of the female Japanese house bat, Pipistrellus abramus.

We investigated the subcellular localization of PRL and GH in the pituitary gland of the female Japanese house bat by the double immunolabeling procedure using the protein A-gold method combined with electron microscopy and demonstrated a seasonal alteration in the distribution of PRL within the cells. The seasonal changes were related to the different phases of the bats' reproductive cycles. Mammosomatotrophs (MS cells) containing both PRL and GH were constantly present throughout the reproductive cycles of the female bats and they were remarkably hypertrophied during pregnancy. The distribution pattern of PRL and GH within the MS cells was extremely variable owing to the different phases of reproductive cycles of the bats. We divided MS cells into the following four types: the cell containing 1) only mixed granules containing both PRL and GH, 2) both mixed and PRL granules, 3) mixed, PRL and GH granules, 4) both mixed and GH granules. While pure PRL-containing cells were observed in pregnant and lactating bats, they were not observed in bats obtained during prehibernation, midhibernation, and arousal periods. These results suggest that MS cells in the female bats hypertrophy during pregnancy and that some of them may be transformed into PRL-producing cells.

Animals

Subcellular localization of retinoids, retinoid-binding proteins, and acyl-CoA:retinol acyltransferase in rat liver.

Studies were conducted to define the subcellular localization of endogenous retinoids (vitamin A), retinoid-binding proteins, and acyl-CoA:retinol acyltransferase (ARAT) in liver and to determine whether their distributions were affected by hepatic vitamin A content. Quantitative subcellular fractionation techniques were used. Rats were fed purified diets either containing or lacking vitamin A to obtain animals with total retinoid stores ranging from 0.5 to 172 micrograms of retinol equivalent per gram of liver. Liver homogenates were fractionated by differential centrifugation to yield nuclear (N), mitochondrial-lysosomal (ML), microsomal (P), and high-speed supernatant (S) fractions. N, ML, and P were washed two more times by resuspension and centrifugation to remove constituents bound nonspecifically. S was further resolved into "floating lipid" and underlying "cytosol" by prolonged ultracentrifugation. The distributions of marker constituents were not affected by vitamin A status. Most of the retinyl ester in the liver was recovered in the S fraction where it was entirely (greater than 95%) associated with floating lipid. About half of the total free retinol was also recovered in the S fraction, but it was mostly (2/3) associated with cytosol per se. A substantial portion (30%) of the free retinol was recovered in the 3 X -washed microsomal (P) fraction. Sufficient binding capacity for retinol was present in both P (as retinol-binding protein) and S (as cellular retinol-binding protein) to quantitatively account for the amounts of free retinol present in the two fractions. ARAT activity in the liver was distributed among the subcellular fractions in a manner identical with an endoplasmic reticulum marker enzyme (NADPH-cytochrome C reductase).(ABSTRACT TRUNCATED AT 250 WORDS)

Acyltransferases

Subcellular localization of UDP-glucuronyltransferase by differential centrifugation. Changes produced by pretreatment of rats with secretin, glucagon, vasoactive intestinal polypeptide and phenobarbitone.

Subcellular fractionation of liver homogenates from treated rats was carried out in order to study the mechanism of action of the gastrointestinal polypeptides on glucoronidation. Rats were treated for 90 min with an intravenous infusion of secretin (0.4 cU/h/100 g body weight), glucagon (100 micrograms/h/100 g body weight) and vasoactive intestinal polypeptide (VIP) (300 ng/h/100 g body weight); controls were sham-treated rats. For comparison, another group of animals was treated with a daily injection of phenobarbitone (10 mg/kg), a well-established enzyme inducer. Treatment with the different polypeptides produced minor changes in the subcellular localization of the enzyme. The bulk of activity was always recovered in the microsomal fraction, as identified by both differential centrifugation and the enrichment in specific activity of glucose-6-phosphatase, esterase and NADPH-cytochrome c reductase. Secretin produced a specific increase of bilirubin glucuronidation, more evident in all nuclear fractions. Glucagon increased both bilirubin and p-nitrophenol glucuronidation in all subcellular fractions. VIP had a selective action on p-nitrophenol conjugation of similar extent in nuclear and microsomal fractions. The type of changes observed is suggestive of physicochemical modifications occurring into the cell, perhaps at the membrane environment of different organelles, able to modify the overall conjugation of different substrates by the cell.

Animals

Subcellular localization of angiotensin-converting enzyme in the human alveolar macrophage.

The present investigation was performed in order to elucidate the subcellular localization of angiotensin-converting enzyme (ACE) in human alveolar macrophages. A pure population of alveolar macrophages was obtained by centrifugal elutriation of bronchoalveolar lavage (BAL) fluid from seven sarcoid patients. The cells were homogenized by sonication and the postnuclear supernatant was fractionated on a discontinuous sucrose gradient. Fractions of particulate material were collected and characterized by marker enzymes. The distribution pattern of ACE closely resembled that of NADPH-cytochrome-c-reductase and sialyltransferase, markers of the endoplasmic reticulum and the Golgi complex, respectively, indicating a common localization. This localization is compatible with synthesis taking place in the alveolar macrophage.

Adult

Subcellular localization of functionally differentiated microtubules in squid neurons: regional distribution of microtubule-associated proteins and beta-tubulin isotypes.

The subcellular localization of microtubule proteins in the neurons of squid (Doryteuthis bleekeri) was immunologically studied using monoclonal antibodies against the microtubule proteins. We found that (1) the squid neurons contained three kinds of high-molecular-weight microtubule-associated proteins [MAP A of approximately 300 kilodaltons (kD), MAP B of 260 kD, and axolinin of 260 kD] and two kinds of beta-tubulin isotypes (beta 1 and beta 2); (2) the cell body of the squid giant neuron contained MAP A, MAP B, and the two beta-tubulin isotypes (beta 1 and beta 2); (3) axolinin and the beta 1 isotype were present exclusively in the peripheral axoplasm of the giant axon; and (4) a small amount of axolinin, MAP A, and the beta 1 isotype was found in the insoluble aspect of the central axoplasm, whereas the soluble aspect of the central axoplasm contained an abundant amount of MAP A along with the modified form of the beta 1 isotype. The regional difference of the distribution of the microtubule protein components may explain the differences in stability among axonal microtubules. Microtubules in the soluble aspect of the central axoplasm are sensitive to any treatment with colchicine, cold temperature, and high ionic strength but those both in the insoluble aspect of the central axoplasm and in the peripheral axoplasm are highly insensitive to the treatment.

Animals

Lipolytic enzymes in bovine thyroid tissue. I. Subcellular localization, purification and characterization of acid phospholipase A1.

In mammalian cells the catabolism of membrane phosphoglycerides proceeds probably entirely through a deacylation pathway catalysed by phospholipase A and lysophospholipase (Wise & Elwyn, 1965). In the initial attack of diacylphosphoglycerides by phospholipase A two enzymatic activities with different positional specificities have been distinguished: phospholipase A1 (phosphatidate 1-acyl hydrolase EN 3.1.1.32) and phospholipase A2 (phosphatidate 2-acyl hydrolase EN 3.1.1.4) (Van Deenen & De Haas, 1966). Studies on these intracellular phospholipases were mainly concerned with their subcellular localization. Only occasionally more detailed enzymatic investigations have been conducted on them, in contrast to export phospholipases e.g. from snake venom, bee venom and porcine pancreas, which have been extensively investigated (Brockerhoff & Jensen 1974a). In a previous paper (De Wolf et al., 1976a), the presence of phospholipase A1 and phospholipase A2 activities in bovine thyroid was demonstrated, using 1-[9, 10-3H] stearoyl-2-[1-14C] linoleyl-sn-glycero-3-phosphocholine as a substrate. Optimal activity was observed in both instances at pH 4. Addition of the anionic detergent sodium taurocholate increased the A2 type activity and decreased the A1 type activity suggesting the presence of different enzymes. The lack of influence of Ca2+-ions and EDTA and the acid pH optima could suggest lysosomal localization. In this paper the subcellular distribution of both acid phospholipase activities is described as well as a purification scheme for phospholipase A1. Some characteristics of the purified enzyme preparation are discussed.

Animals

Changes in activity and subcellular localization of alpha-like DNA polymerase during cell cycle of Physarum polycephalum.

Regulation of DNA replication was given attention by examining the subcellular localization of alpha-like DNA polymerase in Physarum polycephalum. The activity per plasmodium increased by 2-fold in the cytoplasm during the G2-phase, and decreased with a concomitant increase in nuclei prior to DNA replication. This would suggest that the enzyme translocates from the cytoplasm to the nucleus, co-ordinately with DNA replication. In nuclei, the nuclear matrix-bound activity increased during the S-phase, but changes did not always parallel the rate of DNA replication. On the other hand, the activity measured without exogenous templates did change with the rate, although the activity was low. It is, therefore, suggested that part of the enzyme binding with the matrix participates in DNA replication.

Binding Sites

Subcellular localization of gamma-aminobutyrate transaminase and glutamate dehydrogenase in adult rat brain. Evidence for at least two small glutamate compartments in brain.

The subcellular localizations of gamma-aminobutyrate transaminase (EC 2.6.1.19) and glutamate dehydrogenase (EC 1.4.1.2) in brain tissue of adult rats were compared with each other and with those of NAD+-isocitrate dehydrogenase (EC 1.1.41) and monoamine oxidase (EC 1.4.3.4; kynuramine as substrate). Crude mitochondrial fractions from brain tissue were centrifuged in continuous sucrose density gradients. gamma-Aminobutyrate transaminase and glutamate dehydrogenase were always found at a higher density than NAD+-isocitrate dehydrogenase and monoamine oxidase. When centrifuged for 1 h at 53 000gav., there was a slight difference between the distribution profiles of glutamate dehydrogenase and gamma-aminobutyrate transaminase. This difference was larger when the centrifugation time was only 15 min. It is concluded that there are subpopulations of brain mitochondria with differing proportions of gamma-aminobutyrate transaminase and glutamate dehydrogenase. The results are discussed in relation to evidence obtained with labelled precursors in vivo that there are at least two small glutamate compartments in adult brain.

4-Aminobutyrate Transaminase

Short-chain fatty acid synthesis in brain. Subcellular localization and changes during development.

Acetyl-CoA synthase (EC 6.2.1.1), Propionyl-CoA synthase (EC 6.2.1.-) and butyryl-CoA synthase (EC 6.2.1.2) were measured in subcellular fractions prepared by primary and density-gradient fractionation from adult rat brain by a method resulting in recoveries close to 100%. Most of the activity of the three enzymes was recovered in the crude mitochondrial fraction. On subfractionation of this crude mitochondrial fraction with continuous sucrose density gradients, most of the activity of the three enzymes was found at a higher density than NAD+-isocitrate dehydrogenase and at about the same density as glutamate dehydrogenase, confirming earlier reported data for acetyl-CoA synthase. The finding that propionyl-CoA synthase and butyryl-CoA synthase had about the same distribution in the gradients as acetyl-CoA synthase adds support to the hypothesis that mitochondria involved in the metabolism of these short-chain fatty acids (all three of which have been shown to result in a rapid and high labelling of glutamine in vivo) form a distinct subpopulation of the total mitochondrial population. The three synthase activities were found to differ from each other in their rate of change and their subcellular localization during rat brain development. This, in combination with the observation that in gradients of adult brain preparations the three activities did not completely overlap, suggests that the three synthase activities are not present in the same proportion to each other in the same subpopulation (s) of mitochondria in the brain.

Acetate-CoA Ligase

Cell proliferation and subcellular localization of alkaline phosphatase activity in rat liver parenchyma during azo dye carcinogenesis.

A combined method of phosphatase histochemistry and (3H)thymidine radioautography was devised to study the subcellular localization of alkaline phosphatase (AP) activiity with changing pattern of cell proliferation in precancerous livers of rats fed dimethylaminoazobenzene. After 50 hr of continuous infusion of (3H)thymidine into the rats, labeled liver tissue were fixed in glutaraldehyde. Sections were incubated for AP activity in a lead citrate medium (pH 9.4) with beta-glycerophosphate as substrate. Light and electron microscopic examinations of radioautographs revealed that focal groups of 3H-labeled hepatocytes within hyperplastic nodules were coincident to hyperbasophilic foci and distinguishable from the surrounding parenchyma, which was sparsely labeled. Proliferative hepatocytes in the foci exhibited enzyme reaction product indicative of AP activity along the entire surface membranes. The surface AP tography was in contrast to that of the surrounding hyperplastic parencyma, in which regenerative hepatocytes showed a normal localization of AP activity at the bile canalicular membranes. The L-phenylalanine-sensitive snd heat-resistant activity of hyperbasophilic hepatocytes was different from that of normal hepatocytes. The surface enzyme differentiation was accompanied by a decrease of cytoplasmic AP. Golgi elements apparently function in the mobilization of AP into the surface membranes. The phenomena of AP alterations might be related to the abnormal control of cell proliferation and cytodifferentiation leading to malignant growth.

Alkaline Phosphatase