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Biomedical subjects

R M Bell

Publications and source records attributed to R M Bell.

At least 19 recordsLinked to original sources

Changes in bioactive lipids, alkylacylglycerol and ceramide, occur in HIV-infected cells.

The mass levels of bioactive lipids known to modulate signal transduction or to possess other biological activities were measured in HIV-infected CEM cells. The levels of diacylglycerol, an activator of protein kinase C, as well as of alkylacylglycerol were elevated. A more drastic increase was observed in the ceramide levels after HIV-infection, whereas sphingosine levels were hardly influenced. Interestingly, the magnitude of the changes was related to the infection time, being higher at 8 days after infection then at 4 days. The possible role of these lipids in the cytopathic effects of HIV-infection is discussed. In addition, an improved methodology to quantitate simultaneously diacylglycerol and alkylacylglycerol in crude lipid extracts, based upon their phosphorylation by E. coli diacylglycerol kinase, is presented.

Cell Line

Supplementation of the phosphatidyl-L-serine requirement of protein kinase C with nonactivating phospholipids.

The mechanism of protein kinase C (PKC) activation by phosphatidyl-L-serine (PS) is highly specific and occurs with high cooperativity [Lee, M.-H., & Bell, R. M. (1989) J. Biol. Chem. 264, 14797-14805]. To further investigate the multiplicity and specificity of PS cofactor requirement, some of the PS molecules present in Triton X-100 mixed micelles were substituted with nonactivating phospholipids devoid of required amino or carboxyl functional groups. The ability of these phospholipids to spare or reduce the mole percent of PS required was determined. Addition of phosphatidyl-(3-hydroxypropionate) (PP) or phosphatidate (PA) reduced the mole percent of PS required for maximal activity from 10 to 4 mol %, and also reduced the cooperativity of activation with PS. In contrast, phosphatidylethanolamine did not alter the dependence on PS. Phosphatidylethanol (P-Et) reduced the PS requirement to 2-4 mol % and cooperatively less efficiently than PP or PA. Phosphatidylglycerol and phosphatidylinositol resemble P-Et in their ability to reduce PS requirements and cooperativity. Therefore, it appears that the ability of phospholipids to substitute for PS in PKC activation depends on the negative charge in the phospholipid head group and the efficiency of substitution appears to be directly related to the negative charge density. The presence of two acyl groups within the phospholipid cofactor proved important since lyso-PS and lyso-PA replaced a portion of PS molecules required less efficiently than P-Et. Sodium oleate and sodium dodecyl sulfate behaved like lyso-PS. When other anionic lipids are present, approximately four molecules of PS per micelle are required for maximal PKC activity.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals

The regulatory domain of protein kinase C coordinates four atoms of zinc.

Protein kinase C (PKC) was found to be a zinc metallo-enzyme. Atomic absorption measurements on the intact enzyme indicated that four zinc atoms (4.2 +/- 0.5) were bound per PKC alpha molecule. Similar stoichiometric ratios were determined for PKC beta II and PKC gamma, other PKC isoforms individually expressed in the baculovirus-insect cell expression system, as well as for purified rat brain PKC. By trypsin treatment of PKC alpha, a 32-kDa lipid binding regulatory and a 50-kDa catalytic domain were generated that were subsequently completely separated by gel filtration in the presence of Triton X-100/phosphatidylserine mixed micelles. Zinc was present at levels significantly above background in fractions that contained the 32-kDa fragment and displayed phorbol ester binding activity. Lipid association and phorbol ester binding did not lead to displacement of zinc from the protein. The stoichiometry determined for this fragment (4.7 +/- 0.9) suggested that zinc was bound exclusively within the lipid binding regulatory domain of intact PKC. Furthermore, this stoichiometry is consistent with zinc being coordinated between 6 cysteine residues in a structural motif related to the Zn(II)2Cys6 binuclear cluster identified in the GAL4 transcriptional factor (Pan, T., and Coleman, J.E. (1990) Proc. Natl. Acad. Sci. U.S.A. 87, 2077-2081).

Amino Acid Sequence

Elevated ceramide levels in GH4C1 cells treated with retinoic acid.

Ceramide is produced in HL 60 cells in response to 1 alpha,25-dihydroxy vitamin D3 (vitamin D3) (Okazaki et al. (1989) J. Biol. Chem. 264, 19076-19080). HL 60 cell differentiation can be mimicked by cell permeable ceramides (Okazaki et al. (1990) J. Biol. Chem. 265, 15823-15831). Vitamin D3 like other thyroid-steroid hormones binds to a member of the steroid hormone family. We sought to investigate whether agonists other than vitamin D3 which exert their effects through members of the steroid receptor family affect cellular ceramide levels. Treatment of GH4C1 cells with 10 microM all-trans retinoic acid for 8 h caused a 230% increase in cellular ceramide content. This concentration of retinoic acid also inhibited cell proliferation as measured by [3H]thymidine incorporation. Under these conditions, a 35% decrease in sn-1,2-diacylglycerol mass occurred, but no change in sphingomyelin, sphingosine or phosphatidylcholine mass was observed. To determine the mechanism of increased ceramide production by 10 microM retinoic acid, cells were labeled with [3H]palmitic acid. After a 2 h period, a 4-fold increase in the incorporation of palmitate into ceramide was observed. Hydrolysis of the labeled ceramide to sphingosine and free fatty acid demonstrated that only 6% of the label was recovered in the sphingosine backbone of cells treated with retinoic acid, whereas 20% of the label was recovered in the sphingosine backbone of cells treated with vehicle alone. The data are consistent with retinoic acid causing an increase in cellular ceramide levels in GH4C1 cells through an increase in sphingosine N-acylation.

Animals

Inhibition of sphingosine kinase in vitro and in platelets. Implications for signal transduction pathways.

Sphingosine kinase was partially purified and characterized from rat brain microsomes. A new assay, utilizing octyl-beta-D-glucopyranoside and sphingosine mixed micelles, was developed to quantitate formation of the sphingosine-1-phosphate product. The assay was proportional with respect to time and protein, displayed Michaelis-Menten kinetics, and was subject to surface dilution in regard to the sphingosine substrate. Investigations into substrate specificity showed that the enzyme is specific for the erythro-enantiomers of sphingosine and dihydrosphingosine. Neither of the threo-enantiomers were phosphorylated in this system, but both were found to be potent competitive inhibitors of sphingosine kinase activity. Human platelet sphingosine kinase activity displayed substrate and inhibitor specificities similar to the rat brain enzyme. A mixture of DL-threo-dihydrosphingosine competitively inhibited sphingosine kinase activity in a dose dependent manner in isolated platelets. DL-Threo-dihydrosphingosine caused a prolongation of the inhibition of thrombin-induced protein kinase C-dependent 40 (47)-kDa protein phosphorylation in platelets. D-, L-, or DL-Threo-dihydrosphingosine may be useful as a tool to investigate D-Erythrosphingosine metabolism and the function of sphingosine-1-phosphate in signal transduction processes.

Animals

Stepping through the drug use sequence: longitudinal scalogram analysis of initiation and regular use.

Using a new technique for tracing the sequence of use over time, this study examined the pattern of drug involvement among 4,145 West Coast adolescents over the 4-year span from Grades 7-10. During the period covered, the mid- to late 1980s, we found no evidence that cocaine has become a gateway drug. However, the data provided some support for treating cocaine initiation as a separate stage that precedes the onset of hard drugs other than pills. The analysis also showed that increased involvement with legal drugs constitutes an important step in the transition to hard drug use for most adolescents. Weekly alcohol use followed marijuana use and preceded use of all other illicit drugs for Hispanic, White, and Black youth. However, it followed use of hard drugs for Asians. Weekly smoking formed a distinct stage between initial use of pills and other hard drugs for non-Hispanic Whites. The results underscore the importance of prevention efforts aimed at curbing the transition to regular use of alcohol and cigarettes, as well as their initial use.

Adolescent

Complications of nonoperative management of blunt hepatic injuries.

Few, if any, complications have been reported with the nonoperative management of selected hepatic injuries diagnosed by computed tomographic (CT) scan in hemodynamically stable patients. This retrospective study was designed to evaluate complications associated with this form of management. Twenty-six patients (21%) of 128 patients with blunt hepatic injuries were treated nonoperatively over a 3-year period. All patients were hemodynamically stable at the time of admission and had hepatic injuries identified by CT scans of the abdomen. Five patients (19%) developed complications associated with nonoperative therapy. Of these, two patients had minor hepatic injuries (grades 1-2) and three had major (grades 3-5) hepatic injuries. Two patients (one with minor and one with major hepatic injury), developed free intraperitoneal biliary leaks and required operative repair. Three patients (one with minor and two with major hepatic injuries) developed large subcapsular bilomas with resultant hepatic dysfunction. These patients were successfully managed with percutaneous CT-guided drainage. There were no deaths in our study population with nonoperative therapy. The complications of hepatic injuries initially managed by expectant observation were treated operatively or by percutaneous CT-guided drainage. Repeated CT evaluation to follow the progress of liver fracture and the occasional use of hepatobiliary scans for the identification of biliary leaks have proven useful in our experience.

Adolescent

Structural characterization of ordered arrays of sn-glycerol-3-phosphate acyltransferase from Escherichia coli.

Overproduction of the sn-glycerol-3-phosphate acyltransferase in Escherichia coli leads to incorporation of this integral membrane protein into ordered tubular arrays within the cell. Freeze-fracture-etch shadowing was performed on suspensions of partially purified tubules and whole bacteria. This procedure revealed the presence of ridges and grooves defining a set of long-pitch left-handed helical ridges. The long-pitch helices represented chains of acyltransferase dimers. Tubules observed within the cell were often closely packed, with an apparent alignment of grooves and ridges in adjacent tubules. Fracture planes passing through the tubules indicated the presence of a bilayer structure, with some portion of the enzyme being associated with the membrane. The major portion of the enzyme extended from the hydrophilic surface, forming a large globular structure that, in favorable views, displayed a central cavity facing the cytoplasm. Computer analysis of shadowed tubules revealed that the left-handed helices were six stranded, with a pitch of 1,050 A (105.0 nm) and a spacing of 75 A (7.5 nm) between acyltransferase dimers along the chains. Analysis of the predicted secondary structure failed to reveal obvious transmembrane segments, suggesting that very little of the protein was inserted into the bilayer.

Cytoplasm

Protein kinase C contains two phorbol ester binding domains.

A series of deletion and truncation mutants of protein kinase C (PKC) were expressed in the baculovirus-insect cell expression system in order to elucidate the ability of various domains of the enzyme to bind phorbol dibutyrate (PDBu). A PKC truncation mutant consisting of only the catalytic domain of the enzyme did not bind [3H]PDBu, whereas a PKC truncation mutant consisting of the regulatory domain (containing the tandem cysteine-rich putative zinc finger regions) bound [3H]PDBu. Deletion of the second conserved region (C2) of PKC did not abolish [3H]PDBu binding, whereas a deletion of the first conserved region (C1) of PKC, containing the two cysteine-rich sequences, completely abolished [3H]PDBu binding. Additional truncation and deletion mutants helped to localize the region necessary for [3H]PDBu binding; all PKC mutants that contained either one of the cysteine-rich zinc finger-like regions possessed phorbol ester binding activity. Scatchard analyses of these mutants indicated that each bound [3H]PDBu with equivalent affinity (21-41 nM); approximately 10-20-fold less than the native enzyme. In addition, a peptide of 146 amino acid residues from the first cysteine-rich region, as well as a peptide of only 86 amino acids residues from the second cysteine-rich region, both bound [3H]PDBu with high affinity (31 +/- 4 and 59 +/- 13 nM, respectively). These data establish that PKC contains two phorbol ester binding domains which may function in its regulation.

Amino Acid Sequence

Characterization of active and latent forms of the membrane-associated sn-glycerol-3-phosphate acyltransferase of Escherichia coli.

The intrinsically active, sn-glycerol-3-phosphate acyltransferase present in membranes prepared from both wild type Escherichia coli and from strains which overproduce the enzyme can be kinetically distinguished from a latent enzyme species which is unmasked by solubilization and reconstitution. Both membrane-associated and solubilized/reconstituted enzyme preparations exhibited cooperativity with respect to sn-glycerol-3-phosphate and palmitoyl-coenzyme A substrates; positive cooperativity in membranes toward palmitoyl-coenzyme A (napp = 4) and negative cooperativity toward sn-glycerol-3-phosphate (napp = 0.75) were significantly altered upon solubilization and reconstitution. Since the degree of alteration increased with the amount of sn-glycerol-3-P acyltransferase present in the membranes, a detergent-dissociable homooligomerization of the sn-glycerol-3-phosphate acyltransferase was considered as an underlying mechanism. This possibility was investigated by changing the protein-to-Triton X-100 ratio of homogeneous enzyme prior to reconstitution and then analyzing the subsequent migration of samples on a Sephacryl S-300 sizing column. The elution positions were consistent with monomeric and dimeric polypeptide bound to micelles of Triton X-100. Hill coefficients for monomeric, reconstituted enzyme preparations were comparable to those obtained for the active, membrane-associated sn-glycerol-3-phosphate acyltransferase. The reduced cooperativity of dimeric, reconstituted enzyme preparations correlated closely to the Hill coefficient values obtained for latent, solubilized/reconstituted sn-glycerol-3-phosphate acyltransferase from membranes of Escherichia coli which overproduce the enzyme. The physiological significance of these findings is discussed.

Cell Membrane

sn-1,2-diacylglycerol choline- and ethanolaminephosphotransferases in Saccharomyces cerevisiae. Nucleotide sequence of the EPT1 gene and comparison of the CPT1 and EPT1 gene products.

The complete nucleotide sequence of the Saccharomyces cerevisiae EPT1 gene, a structural gene encoding an sn-1,2-diacylglycerol ethanolamine- and cholinephosphotransferase (Hjelmstad, R. H., and Bell, R. M. (1988) J. Biol. Chem. 263, 19748-19757), was determined. The 2123-nucleotide extent of DNA sequenced contained an open reading frame encoding 391 amino acids interrupted by an intron near its 5' end. Northern hybridization analysis detected a single 1.4-kilobase transcript. The inferred 44,525-dalton EPT1 gene product exhibited 54% amino acid sequence homology to the cholinephosphotransferase product of the yeast CPT1 gene. Predictive structural analysis of the EPT1 gene product revealed close structural similarity to the CPT1 gene product with respect to membrane topography, features of secondary structure, and transmembrane asymmetry. Regional protein homologies were identified between the EPT1 gene product and several enzymes as well as the nicotinic acetylcholine receptor. Comparative analysis of this set of protein homologies and the related set of protein homologies to the CPT1 gene product permitted identification of a presumptive active site region which contains highly conserved and divergent subregions and a common mononucleotide binding site.

Amino Acid Sequence

sn-1,2-diacylglycerol choline- and ethanolaminephosphotransferases in Saccharomyces cerevisiae. Mixed micellar analysis of the CPT1 and EPT1 gene products.

The Saccharomyces cerevisiae CPT1 and EPT1 genes are structural genes encoding distinct sn-1,2-diacylglycerol choline- and ethanolaminephosphotransferases. A haploid cpt1 ept1 double null mutant lacked detectable choline- and ethanolaminephosphotransferase activity but was viable for growth, establishing that these enzymes are nonessential. The activities of the CPT1 and EPT1 gene products were independently studied in membranes prepared from strains mutant in the cognate locus using mixed micellar assays. Both enzymes absolutely required phospholipid cofactors; half-maximal activation was observed at low mole fractions, suggesting that a small number of phospholipid molecules are required. The activities of the CPT1 and EPT1 gene products were compared with respect to dioleoylglycerol dependence, CDP-aminoalcohol specificity, phospholipid activation, and inhibition by CMP. The EPT1 gene product utilized CDP-ethanolamine, -monomethylethanolamine, -dimethylethanolamine, and -choline to significant extents, while the CPT1 gene product manifested relative specificity for CDP-choline and -dimethylethanolamine. The CPT1 and EPT1 gene products exhibited differing properties with respect to phospholipid activation, but this difference was dependent on the CDP-aminoalcohol substrate. In contrast, the two enzymes could be distinguished on the basis of their dioleoylglycerol dependencies, activation by Mg2+, and CMP inhibition profiles regardless of the CDP-aminoalcohol substrate employed. These studies provide the first definitive kinetic properties of individual choline- and ethanolaminephosphotransferases.

Cytidine Diphosphate