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G Dallner

Publications and source records attributed to G Dallner.

At least 163 records · Page 9Linked to original sources

Distribution of newly synthesized DT-diaphorase in rat liver.

The distribution, synthesis, transport, and glycosylation of rat-liver DT-diaphorase has been investigated. The enzyme could be isolated using specific antibodies, mainly from the soluble supernatant but also from microsomal vesicles, Golgi membranes, and mitochondria. 40% of the microsomal enzyme was located in the lumen or on the interior side of the membrane, the rest remaining as an integral non-extractable part of the membrane. Synthesis of DT-diaphorase takes place on both free and bound ribosomes, although it was found to be transported in a sequential manner from the rough to the smooth endoplasmic reticulum and also subsequently to the mitochondria. The rough and smooth microsomal DT-diaphorase contains covalently bound carbohydrate, but no sugar moiety could be detected bound to the cytoplasmic form of the enzyme.

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Fractionation of isolated liver cells after disruption with a nitrogen bomb and sonication.

Hepatocytes from rat liver were prepared by perfusion with collagenase, and rough and smooth microsomes and mitochondria were prepared after cell disruption. By applying 1000 lb/in2 (1 lb/in2 = 6.9 kPa) in a nitrogen bomb followed by decompression, 75% of the cells were disrupted after four consecutive treatments. Intact mitochondria, and rough and smooth microsomes with little contamination were prepared from the homogenate. A more rapid disruption was attained by a short sonication with a low output, thus increasing the efficiency of homogenization. The microsomal subfractions prepared from this homogenate were comparable to those obtained after decompression. Sonication resulted in smooth microsomes, which exhibited a higher contamination with non-microsomal membranes. These, however, were partly removed by additional centrifugation with a discontinuous sucrose gradient containing divalent cations.

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Compartmentalization of phosphatidylethanolamine in microsomal membranes from rat liver.

Microsomal membranes from rat liver were treated with the cross-linking reagent 1,5-difluoro-2,4-dinitrobenzene (DFDNB). Experimental work showed that at a probe concentration of 0.75 mM all free phosphatidylethanolamine (PE) and phosphatidylserine (PS) were found as dinitrophenyl derivatives: 29% of PE was in monomeric form, 9% dimeric, 2% interacted with PS, and 63% cross-linked to protein. PS showed a greater percent in monomeric and dimeric form and only 31% was cross-linked to protein. The cross-linking pattern of PE was clearly different from that pattern which is present in the inner mitochondrial and erythrocyte membranes. In vivo labeling of PE with [(3)H]glycerol and [(3)H]ethanolamine followed by phospholipase A(2) treatment of isolated microsomes established a heterogeneous labeling pattern during the first 2 hours. During this period, the specific activity of the phospholipase A(2)-sensitive compartment was considerably higher. The differential distribution of radioactivity after in vivo labeling in the part of the PE which reacted with increasing concentrations of DFDNB also indicated compartmentalization. After in vivo labeling with the precursors, the time course of the specific radioactivity demonstrated an initial high labeling, almost exclusively in the monomeric form, followed by a later appearance of the label in the protein-bound PE. The experiments indicate that the biosynthesis of PE takes place in a compartment that is more accessible to surface probes and that the labeled molecules are transferred in a time-dependent process to a second compartment where the lipid is not available for phospholipase A(2) action but is available for cross-linking to protein.-Valtersson, C., and G. Dallner. Compartmentalization of phosphatidylethanolamine in microsomal membranes from rat liver.

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Enrichment of the intracellular dolichol pool in isolated liver cells.

Isolated hepatocytes were incubated with egg lecithin liposomes containing dolichol(C55), dolichol(C95), and dolichol phosphate(C55) in order to enrich intracellular membranes with these polyprenols. After incubation, the lipids were recovered from various membrane fractions and from the supernatant. The highest concentration was found in the microsomes. A part of the dolichol in microsomes, as well as in other fractions, was phosphorylated. This phosphorylation is mediated by the CTP-specific kinase that is present only on the outer surface of the microsomes and uses alpha-saturated polyprenols as substrates. The isolated microsomes enriched with dolichol in vivo exhibited increased lipid and protein glycosylation upon incubation with nucleotide sugars and it was demonstrated that the increased lipid glycosylation was due to transfer of the sugar to the exogenous incorporated dolichol.

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Synthesis of membrane glycoproteins.

Glycoprotein synthesis is a central function of the endoplasmic reticulum and dolichol phosphates play an important role in the establishment of the core part of the oligosaccharide chain. Dolichol metabolism requires the cooperative action of several intracellular organelles and disturbance in the metabolism is one of the factors behind changes in glycosylation reactions during chemical carcinogenesis. The glycoproteins synthesized in the endoplasmic membranes also appear to enter to the cytoplasm for further transport to various intracellular membranes.

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Isolation of peroxisomes from rat liver using sucrose and Percoll gradients.

Peroxisomes were isolated from the livers of both control and clofibrate-treated rats. Two procedures, one with a sucrose gradient, and a second with Percoll gradients, were utilized. The Percoll procedure allowed contamination of the isolated peroxisome fraction on protein basis, by lysosomes (8%), by mitochondria (5%) and by microsomes (2%). The peroxisome fraction isolated by the sucrose gradient showed no significant contamination with mitochondria, but the fraction contained 13% microsomes. In addition to established peroxisomal enzymes, the isolated peroxisomes also contained cytochrome b5, NADH-cytochrome c reductase and NADPH-isocitrate dehydrogenase. The peroxisomal membranes were also separated from the content, and they were found to have a relatively high phospholipid/protein ratio (0.55).

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Possible involvement of fatty acid binding protein in peroxisomal beta-oxidation of fatty acids.

The localization of beta-oxidation of fatty acids in isolated peroxisomes from rat liver was investigated. The enzyme system is soluble in the luminal compartment and carnitine does not appear to be involved in the transfer of the CoA derivatives through the peroxisomal membrane. Experiments involving proteolysis, inhibitors and competitive inhibition suggest that a fatty acid binding protein is responsible for the carrier process. This carrier protein seems to be present in increased amounts both in the supernatant and in the peroxisomes after clofibrate induction.

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