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R Coleman

Publications and source records attributed to R Coleman.

At least 325 records · Page 18Linked to original sources

Evidence that biosynthesis of phosphatidylethanolamine, phosphatidylcholine, and triacylglycerol occurs on the cytoplasmic side of microsomal vesicles.

Experiments were performed to localize the hepatic microsomal enzymes of phosphatidylcholine, phosphatidylethanolamine, and triacylglycerol biosynthesis to the cytoplasmic or lumenal surface of microsomal vesicles. Greater than 90 percent of the activities of fatty acid-CoA ligase (EC 6.2.1.3), sn-glycerol 3-phosphate acyltransferase (EC 2.3.1.15), lysophosphatidic acid acyltransferase, diacylglycerol acyltransferase (EC 2.3.1.20), diacylglycerol cholinephosphotransferase (EC 2.7.8.2), and diacylglycerol ethanolaminephosphotransferase (EC 2.7.8.1) was inactivated by proteolysis of intact microsomal vesicles. The phosphatidic acid phosphatase (EC 3.1.3.4) was not inactivated by any of the protease tested. Under conditions employed, <5 percent of the luminal mannose-6-phosphatase (EC 3.1.3.9) activity was lost. After microsomal integrity was disrupted with detergents, protease treatment resulted in a loss of >74 percent of the mannose-6-phosphatase activity. The latency of the mannose-6-phosphatase activity was not affected by protease treatment. Mannose-6-phosphatase latency was not decreased by the presence of the assay components of several of the lipid biosynthetic activities, indicating that those components did not disrupt the microsomal vesicles. None of the lipid biosynthetic activities appeared latent. The presence of a protease-sensitive component of these biosynthetic activities on the cytoplasmic surface of microsomal vesicles, and the absence of latency for any of these biosynthetic activities suggest that the biosynthesis of phosphatidylcholine, phosphatidylethanolamine, and triacylglycerol occurs asymmetrically on the cytoplasmic surface of the endoplasmic reticulum. The location of biosynthetic activities within the transverse plane of the endoplasmic reticulum is of particular interest for enzymes whose products may be either secreted or retained within the cell. Phosphatidylcholine, phosphatidylethanolamine, and triacylglycerol account for the vast majority of hepatic glycerolipid biosynthesis. The phospholipids are utilized for hepatic membrane biogenesis and for the formation of lipoproteins, and the triacylglycerols are incorporated into lipoproteins or accumulate within the hepatocyte in certain disease states (14). The enzymes responsible for the biosynthesis of these glycerolipids (Scheme I) from fatty acids and glycerol-3P have all been localized to the microsomal subcellular fraction (12, 16, 29, 30). Microsomes are derived from the endoplasmic reticulum and are sealed vesicles which maintain proper sidedness. (11, 22). The external surface of these vesicles corresponds to the cytoplasmic surface of the endoplasmic reticulum. Macromolecules destined for secretion must pass into the lumen of the endoplasmic reticulum (5, 23). Uncharged molecules of up to approximately 600 daltons are able to enter the lumen of rat liver microsomes, but macromolecules and charged molecules of low molecular weight do not cross the vesicle membrane (10, 11). Because proteases neither cross the microsomal membrane nor destroy the permeability barrier of the microsomal vesicles, only the enzymes and proteins located on the cytoplasmic surface of microsomal vesicles are susceptible to proteolysis unless membrane integrity is disrupted (10, 11). By use of this approach, several enzymes and proteins have been localized in the transverse plane of microsomal membranes (11). With the possible exception of cytochrome P 450, all of the enzymes and proteins investigated were localized asymmetrically by the proteolysis technique (11). By studies of this type, as well as by product localization, glucose-6-phosphate (EC 3.1.3.9) has been localized to the luminal surface of microsomal vesicles (11) and of the endoplasmic reticulum (18, 19). All microsomal vesicles contain glucose-6-phosphatase (18, 19) which can effectively utilize mannose-6-P as a substrate, provided the permeability barrier of the vesicles has been disrupted to allow the substrate access to the active site located on the lumenal surface (4). An exact correspondence between mannose- 6-phosphate activity and membrane permeability to EDTA has been established (4). The latency of mannose-6-phosphatase activity provides a quantitative index of microsomal integrity (4.) Few of the microsomal enzymes in the synthesis of phosphatidylcholine, phosphatidylethanolamine, and triacylglycerol have been solubilized and/or purified, and little is known about the topography of these enzymes in the transverse or lateral planes of the endoplasmic reticulum. An asymmetric location of these biosynthetic enzymes on the cytoplasmic or lumenal surface of microsomal vesicles may provide a mechanism for regulation of the glycerolipids to be retained or secreted by the cell, and for the biogenesis of asymmetric phospholipid bilayers. In this paper, we report investigations on the localization of all seven microsomal enzymes (Scheme I) in the biosynthesis of triacylglycerol, phosphatidylcholine, and phosphatidylethanolamine, using the protease technique with mannose-6-phosphatase serving as luminal control activity. The latency of these lipid biosynthetic enzymes was also investigated, using the latency of mannose-6-phosphatase as an index of microsomal integrity.

Animals↗

The exocrine pancreas in triamcinolone-treated mice. A light and electron microscopy study.

6-week-old ICR strain female mice were given between 16 and 21 daily injections of the synthetic glucocorticoid, triamcinolone diacetate (8 mg/kg body weight). Portions of their pancreas were examined by light and electron microscopy and compared with untreated littermate controls. Despite marked variability from animal to animal and lobule to lobule, triamcinolone treatment induced increased zymogen depletion and also the development of large basal vacuoles in many acinar cells. At the ultrastructural level, acinar cells show pronounced mitochondrial swelling, which in many instances is accompanied by the development of myelin whorls. The number of cells with distended granular endoplasmic reticulum is increased as is the number of atrophying cells and cells apparently undergoing disintegration. In addition, there are indications of marked activation of interlobular perivascular macrophages which show marked vacuolation. Our observations suggest that pancreatic acinar cells show cytological changes as a result of experimental hypercorticoidism.

Animals↗

Ultrastructure of parathyroid glands in triamcinolone-treated mice.

6 weeks old ICR strain mice were given 21 daily injections of the synthetic glucocorticoid, triamcinolone diacetate (8 mg/kg body weight) and their parathyroid glands were examined by light and electron microscopy and compared with untreated litter-mate controls. Parathyroid glands are composed of a single basic cell type, but some cells are electron-dense ('dark' cells) and some less dense ('light' cells). There is considerable variability in numbers of light and dark cells from gland to gland. Following triamcinolone treatment the cells are arranged more in whorls, and there is a relative increase in the numbers of 'light' cells, which become more elongated, with pronounced nucleoli, and develop in many cases marked cytoplamsic vacuolation. Some cells show accumulations of lipid droplets. Interdigitations between adjacent cells become more complex, and the numbers of atrophic cells increase. The significance of the various cell conditions is considered. The ultrastructural appearances suggest that parathyroid gland cellular activity is stimulated in response to the drug-induced hypercorticoidism, but no overall glandular hypertrophy is found.

Animals↗

Phospholipid synthesis in isolated fat cells. Studies of microsomal diacylglycerol cholinephosphotransferase and diacylglycerol ethanolaminephosphotransferase activities.

Diacylglycerol cholinephosphotransferase (EC 2.7.8.2) and diacylglycerol ethanolaminephosphotransferase (EC 2.7.8.1) activities were investigated in microsomes from isolated rat fat cells. Assays based on the conversion of CDP-[14C]choline of CDP-[14C]ethanolamine to phosphatidylcholine or phosphatidylethanolamine utilized ethanol-dispersed diacylglycerols and 1 to 5 microng of protein. Cholinephosphotransferase and ethanolaminephosphotransferase activities had similar dependences on MgCl2 and pH, and were inhibited similarly by CaCl2, organic solvents, Triton X-100, Tween 20, and dithiothreitol. Ethylene glycol bis(beta-amino-ethyl ether)-N,N,N',N'-tetraacetic acid stimulated both activities similarly. With 1,2-dioleoyl-sn-glycerol, the cholinephosphotransferase activity had an apparent Km for CDP-choline of 23.9 micronM and a V max of 8.54 nmol/min/mg. CDP-ethanolamine and CDP were competitive inhibitors of the cholinephosphotransferase activity (apparent Kl values of 227 micronM and 360 micronM, respectively). With 1,2-dioleoyl-sn-glycerol, the ethanolaminephosphotransferase activity had an apparent Km of 18.3 micronM for CDP-ethanolamine and a V max of 1.14 nmol/min/mg. CDP-choline appeared to be a noncompetitive inhibitor of the ethanolaminephosphotransferase activity (apparent Kl of 1620 micronM). Inhibition of the ethanolaminephosphotransferase activity by CDP appeared to be of a mixed type. The dependences on diacylglycerols containing fatty acids 6 to 18 carbons in length were investigated...

Adipose Tissue↗

Topographical dissection of sheep erythrocyte membrane phospholipids by taurocholate and glycocholate.

1. Glycocholate and taurocholate removed significant amounts of membrane phospholipid from intact sheep erythrocytes before lysis of the cells occurred. The pre-lytic extract was enriched in sphingomyelin and correspondingly depleted in phosphatidylserine, phosphatidylinositol and phosphatidylethanolamine when compared to the original membrane. 2. In contrast, the phospholipid profiles of glycocholate and taurocholate extracts of unsealed ghosts, made at the same bile salt concentrations, were similar to that of the whole membrane. 3. These observations are related to the topography of the phospholipids in the membrane and to some aspects of bile formation.

Animals↗

Permeability characteristics of erythrocyte ghosts prepared under isoionic conditions by a glycol-induced osmotic lysis.

A detailed study has been made of the permeability characteristics of human erythrocyte ghosts prepared under isoionic conditions by a glycol-induced lysis (Billah, M.M., Finean, J.B., Coleman, R. and Michell, R.H. (1976) Biochim. Biophys. Acta 433, 45-54). Impermeability to large molecules such as dextran (average molecular weight 70 000) was restored immediately and spontaneously after each of the 5-7 lyses that were required to remove all of the haemoglobin. Permeabilities to smaller molecules such as MgATP2-, [3H]inositol and [14C]choline were initially high but could be greatly reduced by incubation at 37 degrees C for an hour. The extent of such resealing decreased as the number of lyses to which the ghosts had been subjected increased. Both removal of haemoglobin and permeabilities to small molecules were affected significantly by pH, CA3+ concentrations and divalent cation chelators. Maximum resealing was achieved in ghosts prepared in the basic ionic medium (130 mM KCl, 10 nM NaCl, 2 mM MgCl2, 10 mM N-2-hydroxyethylpiperazine-N'-2-ethanesulphonic acid (HEPES)) at pH 7.0 (0 degrees C) and with a calcium level around 10(-5) M. Acidic pH facilitated the removal of haemoglobin whilst the presence of divalent cation chelators showed down its release. Retention of K+ by ghosts leaded with K+ during the first lysis and subsequently incubated at 37 degrees C was substantial but lation chelators slowed down its released. Retention of K+ by ghosts loaded with K+ during the first lysis and subsequently incubated at 37 degrees C was substantial but little K+ could be retained within the haemoglobin-free ghosts. Permeability of the ghosts to K+ after one lysis was affected by temperature, pH, Ca2+ concentrations and by the presence of divalent cation chelators.

Adenosine Triphosphate↗

Effects of different bile salts upon the composition and morphology of a liver plasma membrane preparation. Deoxycholate is more membrane damaging than cholate and its conjugates.

1. Rat liver plasma membrane preparations were incubated with various bile salts at 0 or 37 degrees C. the bile salts caused the removal of various amounts of proteins, membrane enzymes and phospholipids; the extent and nature of these losses, and the morphological changes which accompanied them, varied with the detergent used. 2. Cholate, taurocholate and glycocholate removed appreciable amounts of protein from the saline-washed membranes, and considerable amounts of both phospholipids and the membrane enzymes, 5-nucleotidase, alkaline phosphatase, alkaline phosphodiesterase 1 and L-leucyl-beta-naphtylamidase. These losses were greater at 37 that at 0 degrees C. The material remaining contained membrane-like profiles, many of vesicular form, even when the preparation was almost completely devoid of phospholipids. 3. Deoxycholate, both at 0 and 37 degrees C, removed more protein, membrane enzymes and phospholipids than did cholate and its conjugates. The material remaining was mainly granular and unorganised and the only remaining features were structures resembling the nexus, and occasional desmosomes. 4. Deoxycholate, a dihydroxy bile salt, therefore appears to cause greater perturbation of membrane structure than the trihydroxy bile salt, cholate, and its conjugates. The results may have implications for the effects of bile salts upon the membranes of liver cells during bile salt secretion and the production of bile.

Animals↗

Preabsorptive vs. postabsorptive control of ethanol intake in C57BL/6J and DBA/2J mice.

Experimentally naive male mice of both strains were exposed to a two-bottle choice situation (ethanol vs. water) and their drinking behavior was observed during the first hour. DBA/2J mice developed a significant avoidance of 2% or 10% ethanol during the first 10 min. At 15 and 60 min following introduction of the bottles, no DBA mouse exhibited more than a 6 mg% blood ethanol level while all of the C57BL mice exceeded this concentration. Significant postabsorptive effects in the DBA mice seem unlikely at these very low blood ethanol values. Animals of both strains were examined for their ability to form lithium-induced conditioned taste aversions to 2% ethanol or 15% sucrose solutions. DBA mice readily formed conditioned aversions to both solutions, but the C57BL strain significantly avoided only the sucrose. C57BL mice appear to have difficulty in discriminating the 2% ethanol from distilled water. The neural sensitivity to ethanol was examined in both strains using the sleep time test and the grid test. C57BL mice were significantly more sensitive than DBA mice in both tests.

Alcohol Drinking↗

Triacylglycerol synthesis in isolated fat cells. Studies on the microsomal diacylglycerol acyltransferase activity using ethanol-dispersed diacylglycerols.

The acyl-CoA:1,2-diacylglycerol acyltransferase (EC 2.3.1.20) activity of isolated fat cells was predominantly (89%) localized to the microsomal subcellular fraction by assays based on the conversion of 1,2-[3H]diacyl-sn-glycerol to triacylglycerol using 1 to 4 mug of protein. A complementary assay based on the conversion of [3H]palmitoyl-CoA to triacylglycerol was developed. These methods, 100 to 1000 times more sensitive than those previously employed, were used to characterize the microsomal activity. The choice of dispersing agent for addition of diacylglycerol to the reaction mixture was crucial. Addition of diacylglycerol in ethanol resulted in the highest diacylglycerol acyltransferase activity of the methods tested. Tween 20, which has previously been employed as the dispersing agent, severely inhibited the activity. A broad pH optimum from 7.4 to 8.0 was noted and several salts stimulated the activity more than 2-fold. The activity was unstable at temperatures of 28 degrees and above. Dependences on acyl-CoAs containing 6 to 18 carbon atoms were investigated using bacterial diacylglycerol. Acetyl- and butyryl-CoA were not substrates. Highest diacylglycerol acyltransferase activities were observed with decanoyl-CoA and lower activities were noted with longer and shorter saturated chains. Maximal activity with oleoyl-CoA was only 34% of that seen with stearoyl-CoA. No simple relationship between the critical micellar concentrations of the acyl-CoAs employed and diacylglycerol acyltransferase activity was observed. The dependences on diacylglycerols containing fatty acids 6 to 18 carbon atoms in length were investigated with [3H]palmitoyl-CoA. While all the 1,2-diacyl-sn-glycerols tested were substrates, diacylglycerol acyltransferase activity was highest with 1,2-dioleoylglycerol. Maximum activity with the bacterial diacylglycerol was 86% that with 1,2-dioleoylglycerol. The diacylglycerol concentrations required for half-maximal velocity were 20 to 40 muM for long chain diacylglycerols and 2 to 3 muM for short chain diacylglycerols; these were 75- to 750-fold lower than previously reported. Microsomal diacylglycerol acyltransferase specific activities from isolated cells around 50 nmol/min/mg, 10- to 50-fold higher than previously reported from adipose tissue, were typical using dioleoylglycerol and palmitoyl-CoA as substrates. Diacylglycerol acyltransferase specific activities were 17-fold higher in microsomes from isolated fat cells than any other tissue examined. The diacylglycerol acyltransferase appears to have specificity with respect to acyl-CoAs and diacylglycerols, but a definitive interpretation is limited by the lack of data on the physical properties of these substrates in solution under the conditions employed.

Acyltransferases↗

Detergent extraction of erythrocyte ghosts. Comparison of residues after cholate and Triton X-100 treatments.

1. Human erythrocyte ghosts were extracted with individual free and conjugated bile salts and, for comparison, with Triton X-100 under conditions approximating to physiological temperature, pH and tonicity. 2. Treatment with cholate, glycocholate, taurocholate, or with Triton X-100 gave lipid-depleted residues. These could still be seen as ghost-like profiles by phase contrast microscopy. Deopxycholate brought about complete membrane dissolutiom. 3. The cholate residue gave a trilamellar image by electron microscopy and in condensed form gave a smaller membrane repeat than untreated membranes. It had a polypeptide composition representing mainly integral proteins. 4. The Triton X-100 residue had a granular profile in the electron microscope and a polypeptide composition largely representing peripheral proteins.

Bile Acids and Salts↗

Preparation of erythrocyte ghosts by a glycol-induced osmotic lysis under isoionic conditions.

A procedure has been developed for obtaining haemoglobin-free, erythrocyte ghosts under ionic conditions approximating that of the cell cytoplasm. Haemolysis was effected by incorporating glycol into cells suspended in the isoionic medium and then diluting with a large volume of glycol-free medium. The ghosts were of uniform spherical shape throughout the preparative procedure and were impermeable to macromolecules. Analysis of polypeptides by sodium dodecyl sulphate-gel electrophoresis at each stage of preparation and comparison with ghosts prepared under hypo-ionic conditions served to distinguish membrane components from those of cytoplasm.

Cell Fractionation↗