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Biomedical subjects

R M Bell

Publications and source records attributed to R M Bell.

At least 55 records · Page 3Linked to original sources

Two distinct Raf domains mediate interaction with Ras.

A key event for Ras transformation involves the direct physical association between Ras and the Raf-1 kinase. This interaction promotes both Raf translocation to the plasma membrane and activation of Raf kinase activity. Although substantial experimental evidence has demonstrated that Raf residues 51-131 alone are sufficient for Ras binding, conflicting observations have suggested that the Raf cysteine-rich domain (residues 139-184) may also be important for interaction with Ras. To clarify the role of the Raf cysteine-rich domain in Ras-Raf binding, we have compared the ability of two distinct Raf fragments to interact with Ras using both in vitro Ras binding and in vivo Ras inhibition assays. First, we determined that both Raf sequences 2-140 and 139-186 (designated Raf-Cys) showed preferential binding to active, GTP-bound Ras in vitro. Second, we observed that Raf-Cys antagonized oncogenic Ras(Q61L)-mediated transactivation of Ras-responsive elements and focus-forming activity in NIH 3T3 cells and insulin-induced germinal vesicle breakdown in Xenopus laevis oocytes in vivo. This inhibitory activity suggests that Raf-Cys can interact with Ras in vivo. Taken together, these results suggest that Ras interaction with two distinct domains of Raf-1 may be important in Ras-mediated activation of Raf kinase activity.

3T3 Cells↗

The Saccharomyces cerevisiae phosphatidylinositol-transfer protein effects a ligand-dependent inhibition of choline-phosphate cytidylyltransferase activity.

The Saccharomyces cerevisiae protein SEC14p is required for Golgi function and cell viability in vivo. This requirement is obviated by mutations that specifically inactivate the CDP-choline pathway for phosphatidylcholine biosynthesis. The biochemical basis for the in vivo relationship between SEC14p function and the CDP-choline pathway has remained obscure. We now report that SEC14p effects an in vivo depression of CDP-choline pathway activity by inhibiting choline-phosphate cytidylyltransferase (CCTase; EC 2.7.7.15), the rate-determining enzyme of the CDP-choline pathway. Moreover, this SEC14p-mediated inhibition of CCTase was recapitulated in vitro and was saturable. Finally, whereas the SEC14p-dependent inhibition of CCTase in vitro was markedly reduced under assay conditions that were expected to increase levels of phosphatidylinositol-bound SEC14p, assay conditions expected to increase levels of phosphatidylcholine-bound SEC14p resulted in significant potentiation of CCTase inhibition. The collective data suggest that the phosphatidylcholine-bound form of SEC14p effects an essential repression of CDP-choline pathway activity in Golgi membranes by inhibiting CCTase and that the phospholipid-binding/exchange activity of SEC14p represents a mechanism by which the regulatory activity of SEC14p is itself controlled.

Carbon Radioisotopes↗

Effect of lipid-derived second messengers on electrophysiological taste responses in the gerbil.

Integrated chorda tympani (CT) recordings were made to salty, sour, sweet, bitter, and glutamate tastants before and after a 4-min application of modulators of lipid-derived second messenger systems. The modulators included two membrane-permeable analogues of DAG, 1-oleoyl-2-acetyl glycerol (OAG) and dioctanoyl glycerol (DiC8); thapsigargin, which releases Ca++ from intracellular stores; ionomycin, a calcium ionophore; lanthanum chloride, an inorganic calcium channel blocker; nifedipine, a dihydropyridine calcium channel blocker; quinacrine diHCl, a phospholipase A2 antagonist; melittin, a phospholipase A2 agonist; and indomethacin, which decreases the release of prostaglandins by inhibiting the enzyme cyclo-oxygenase. The main findings were: OAG (125 microM) and DiC8 (100 microM) blocked the responses of several bitter compounds while enhancing the taste response to several sweeteners. Lanthanum chloride blocked all responses, which may be due to the fact that it blocks tight junctions. Quinacrine (1 mM) suppressed several bitter responses while enhancing the response to several sweeteners. The enhancement of sweet taste responses by DAG analogues suggests that there is cross-talk between the adenylate cyclase system and one (or more) pathways involving lipid-derived second messengers in taste cells.

Animals↗

Effects of reporting methods on infant mortality rate estimates for racial and ethnic subgroups.

Estimation of infant mortality rates for racial and ethnic subgroups has been plagued by uncertainties. Yet policymakers need accurate estimates to allocate resources toward the goal of reducing infant mortality. The authors compared hospital discharge records and death certificate information to birth certificate information from the California Birth Cohort (years 1985-1987) and 1986 Annual Hospital Discharge Abstract. They found discrepancies in infant mortality rates between reporting methods and underreporting of some non-White groups. Infant mortality rates based on death certificates underestimated non-White mortality, particularly for Native Americans and East Asians. Compared to infants who died soon after birth, larger discrepancies in reported race and ethnicity between birth certificates and death certificates for infants who died later also indicated possible errors in hospital reporting methods. These findings extend prior research that documents that standard methods of reporting infant mortality underestimate non-White mortality rates.

Bias↗

Ceramide quantitation: evaluation of a mixed micellar assay using E. coli diacylglycerol kinase.

The phosphorylation of ceramide solubilized in octylglucoside/phosphatidylglycerol mixed micelles by E. coli diacylglycerol kinase was evaluated. Ceramide containing non-hydroxy fatty acids appeared to be phosphorylated quantitatively over a broad range from 25 to 2000 pmoles. If a 2-hydroxy fatty acid was present in the ceramide molecule, phosphorylation was not quantitative. When applied to cellular lipid extracts, TLC of the phosphorylated products is needed to separate ceramide-phosphates from the other labelled compounds (i.e. phosphatidate and lysophosphatidate) and revealed the presence of ceramides containing long and very long chain fatty acids. The mass levels of these ceramides in different cultured cells varied between 0.2 to 0.6 mol% (normalized to phospholipids). Changes in these levels were observed under different stress conditions such as heat treatment or addition of DMSO or detergents to the cell cultures.

Animals↗

Identification of discrete segments of human Raf-1 kinase critical for high affinity binding to Ha-Ras.

A critical event in a signal transduction pathway downstream of receptor tyrosine kinases is the physical association of GTP-liganded Ras with the serine/threonine kinase, Raf-1. The binding of Raf-1 to Ras results in translocation of the kinase to the plasma membrane and facilitates its activation by an unknown mechanism. A deletion mutagenesis approach was employed to elucidate critical sequences in Raf-1 necessary for binding to Ras and to resolve seemingly contradictory data in the literature. While an N-terminal fragment consisting of residues 2-130 of Raf-1 was able to bind Ras, residues 131-147 were found to be critically important for conferring high affinity binding to Ras. Surprisingly, a second domain between residues 52-64 was an essential element for Raf-Ras interaction, although it did not appear to form an independent binding site for Ras. These findings may prove useful for the design of peptides or peptidomimetic drugs for the modulation of Raf-Ras interaction in neoplastic disorders.

Base Sequence↗

Studies employing Saccharomyces cerevisiae cpt1 and ept1 null mutants implicate the CPT1 gene in coordinate regulation of phospholipid biosynthesis.

The Saccharomyces cerevisiae CPT1 and EPT1 genes are structural genes encoding sn-1,2-diacylglycerol choline phosphotransferase and sn-1,2-diacylglycerol choline/ethanolamine phosphotransferase, respectively. Incorporation of 32Pi into phosphatidylcholine, phosphatidylethanolamine, and phosphatidylserine in wild type and ept1 strains was decreased in the presence of exogenous inositol. In contrast, inositol did not affect 32Pi incorporation into phospholipid in cpt1 or cpt1ept1 strains. In membranes isolated from wild type and ept1 strains grown in the presence of inositol or inositol/choline, the CPT1-derived cholinephosphotransferase activities were reduced 40-50 and 65%, respectively. Inositol-dependent reductions in CPT1 derived choline-phosphotransferase activity correlated with transcript levels in both wild type and ept- backgrounds. The ethanolaminephosphotransferase activity of the EPT1 gene product in wild type cells was reduced 40% by exogenous inositol alone and 50% by inositol/choline. In the cpt1 strain, however, the ethanolaminephosphotransferase activity was unaffected by exogenous inositol or inositol/choline. The inositol-dependent reduction of ethanolaminephosphotransferase activity observed in wild type cells correlated with reduced levels of EPT1 transcripts; in the cpt1 strain, EPT1 transcript levels were not affected by inositol. These results indicate that 1) a functional CPT1 gene or gene product is required for inositol-dependent regulation of phospholipid synthesis; 2) the enzyme activities of both the CPT1 and EPT1 gene products are repressed by inositol and inositol/choline, and require an intact CPT1 gene; 3) inositol mediates its regulatory effects on phospholipid synthesis via a transcriptional mechanism.

Base Sequence↗

Phosphatidylcholine biosynthesis in Saccharomyces cerevisiae. Regulatory insights from studies employing null and chimeric sn-1,2-diacylglycerol choline- and ethanolaminephosphotransferases.

The Saccharomyces cerevisiae CPT1 and EPT1 genes encode distinct choline- and choline/ethanolaminephosphotransferases, respectively. In vitro, each gene product accounts for 50% of the measurable choline-phosphotransferase activity. Strains containing null mutations in the CPT1 and EPT1 loci were used to investigate the function of each gene product in vivo. The CPT1 gene product was responsible for 95% of phosphatidylcholine (PC) synthesis via the CDP-choline pathway in vivo. The EPT1 gene product accounted for only 5% of PC synthesis in vivo. Chimeric CPT1/EPT1 enzymes with diacylglycerol and CDP-aminoalcohol specificities both similar and distinct from the parental enzymes were used to determine the specific segments of the CPT1/EPT1 gene products required to restore PC synthesis to cpt- cells in vivo. Only chimeras expressing the CDP-aminoalcohol specificity region of CPT1 were capable of PC synthesis via the CDP-choline pathway in vivo. Analysis of phospholipids extracted from wild type, cpt-, and ept- cells labeled with 32Pi indicated an intact CPT1 gene product was required for the pleiotropic regulation of phospholipid synthesis by inositol. Chimeric CPT1/EPT1 enzymes expressed in a cpt- background mapped the regulatory region of the CPT1 gene product required for the inositol-dependent regulation of phospholipid synthesis to the CDP-aminoalcohol binding domain of CPT1. Strains harboring dysfunctional cholinephosphotransferase enzymes also displayed decreased levels of choline uptake, suggesting that a feedback loop exists to coordinate choline uptake with ongoing PC biosynthesis. The data also implicate the CPT1 gene product in PC biosynthesis from an endogenous source of choline derived from turnover of PC via the phosphatidylserine-dependent route for PC synthesis.

Choline↗

Chimeric enzymes. Structure-function analysis of segments of sn-1,2-diacylglycerol choline- and ethanolaminephosphotransferases.

The Saccharomyces cerevisiae CPT1 and EPT1 genes represent structural genes that encode distinct choline- and choline/ethanolaminephosphotransferases, respectively. To explore the function of linear segments of these enzymes, a series of 14 EPT1-CPT1 chimeric gene constructs and the parental wild-type genes were expressed in a cpt1 ept1 double null mutant background completely devoid of phosphoamino alcohol transferase activity. Eleven of the chimeric genes expressed functional enzymes. The CDP-amino alcohol and sn-1,2-diacylglycerol (DAG) substrate specificities and essential phospholipid cofactor requirements of the parental and chimeric enzymes were investigated using a mixed micellar assay system. Chimeric enzymes exhibited a pattern of CDP-amino alcohol affinities that defined a structural domain sufficient to confer CDP-amino alcohol specificity. When wild-type enzymes were investigated using a chemically defined series of DAGs, each possessed a distinct characteristic pattern of utilization. Chimeric enzymes exhibited DAG acyl chain specificity profiles that either conformed to parental wild-type patterns or represented novel substrate specificities. Correlation of these outcomes with their underlying structural modifications permitted the assignment of an internal, linear region of 218 amino acids sufficient to confer DAG acyl chain specificity; this region contained three predicted transmembrane segments. Neither wild-type enzyme showed significant acyl chain selectivity with respect to phospholipid activation when a homologous series of chemically defined phosphatidylcholines were employed, suggesting that enzyme recognition of the fatty acyl moieties of the DAG substrate and phospholipid activator is fundamentally different. Analysis of chimeric enzymes dependence on phospholipid activators suggested the involvement of discontinuous protein segments participating in the interaction with phospholipid cofactors.

Amino Alcohols↗

The regulatory region of protein kinase C gamma. Studies of phorbol ester binding to individual and combined functional segments expressed as glutathione S-transferase fusion proteins indicate a complex mechanism of regulation by phospholipids, phorbol esters, and divalent cations.

The regulatory domain of protein kinase C gamma (PKC gamma) contains the following functional elements which can interact with lipids: the pseudosubstrate motif within the first variable region (V1), cysteine-rich domains, Cys1 and Cys2 which contain zinc and bind phorbol dibutyrate (PDBu)/diacylglycerol, and the calcium-dependent lipid binding domain (CaLB). The function of individual or combined segments of the regulatory domain was investigated, using glutathione S-transferase (GST) fusion proteins and mixed micellar or liposomal assays. GST-Cys1 and GST-Cys2 bound PDBu with comparable affinity (Kd = 14-17 nM). GST-Cys1Cys2 yielded a protein with a PDBu binding affinity of 3.4 nM, in the presence of calcium, similar to that of intact PKC gamma (Kd = 2.6 nM). The phosphatidylserine (PS) dependence of PDBu binding was highly cooperative for all fusion proteins tested with Hill numbers (n) lying in the range of 3.5-4.8, similar to values obtained for intact PKC gamma. While Hill numbers were similar under all conditions, the PS concentration necessary for half-maximal PDBu binding was dependent upon the nature and presence of divalent cations. The PS requirement was lowest in the presence of calcium for GST-Cys1, GST-Cys2, and GST-Cys1Cys2 (Km for PS = 11, 14, and 12 mol %, respectively) but still significantly above the value for intact PKC gamma (5.4 mol %). The data establish Cys1 and Cys2 as independent PDBu binding domains that are modulated by divalent cations. While PDBu binding affinity to a GST-V1Cys1 fusion protein (Kd = 36 nM) was comparable to that of GST-Cys1, the CaLB domain dramatically reduced PDBu binding affinity of GST-Cys2CaLB (Kd = 912 nM). This effect of the CaLB domain on PDBu binding to Cys2 suggests that PDBu/diacylglycerol binding to native PKC gamma may occur at Cys1 and that the Cys2 domain may serve another regulatory function.

Amino Acid Sequence↗

Growth-dependent regulation of cellular ceramides in human T-cells.

The role of ceramide, a putative lipid second messenger in the regulation of cell growth, was investigated in T-lymphocytes. An inverse relationship between the cellular concentrations of ceramide and the proliferative capacity of human T-lymphocytes was observed for cells treated with either interleukin-2 or phorbol ester plus ionomycin. The same relationship between cellular ceramide concentrations and DNA synthesis also was observed for cells derived from a cultured T-cell line, the Jurkat T-cells. Alternative approaches for modulating the cellular ceramide concentrations were employed to determine the relationship between sphingolipids and cell growth. Treatment of normal T-lymphocyte cultures with exogenous cell-permeable ceramide analogues or sphingosine stereoisomers decreased DNA synthesis. A similar effect was seen with stearylamine. Cells treated with D,L-threo-1-phenyl-2-decanoylamino-3-morpholino-1-propanol, an inhibitor of UDP-glucosyl:ceramide transferase, accumulated cellular ceramide concentrations and had decreased DNA synthesis. These results define a correlation between the concentration of cellular ceramides and the capacity of T-lymphocytes to proliferate. However, the addition of bacterial sphingomyelinase to the T-cell medium caused an increase in ceramide concentrations (presumably at the plasma membrane), which did not affect cell growth. These results support the hypothesis that functionally distinct pools of ceramide may reside within the T-cell.

Cell Division↗

Phosphatidylcholine biosynthesis via the CDP-choline pathway in Saccharomyces cerevisiae. Multiple mechanisms of regulation.

Multiple mechanisms of regulation in the CDP-choline pathway for phosphatidylcholine (PC) synthesis were revealed by exploring the effects of choline and inositol on this pathway in Saccharomyces cerevisiae. At exogenous choline concentrations below 100 microM, phosphocholine cytidylyltransferase was rate-limiting; at higher choline concentrations the conversion of choline to phosphocholine by choline kinase became rate-limiting. Choline and inositol were found to regulate choline uptake; this established another regulatory mechanism by which PC synthesis is regulated in yeast. Inositol addition did not immediately affect labeled choline uptake or its incorporation into PC in actively dividing cells; however, preculturing the cells in the presence of choline decreased the rate of choline uptake, and this effect was amplified by the concomitant addition of inositol and choline. Additionally, a growth phase dependent effect of inositol supplementation was observed. Inositol addition to stationary phase cells resulted in an increase in choline uptake and subsequent PC production in these cells. This increase was shown to be due to an increase in the rate of choline transport into the cell. In the presence of inositol, choline transport is the main regulatory mechanism controlling flux through the CDP-choline pathway in S. cerevisiae. Inositol supplementation resulted in changes in the levels of enzyme activity detected in vitro. However, the effects observed in vivo correlated exclusively with changes in choline uptake. Choline transporter assays were consistent with these results. Since both the CPT1 and EPT1 gene products catalyze the cholinephosphotransferase reaction in vitro (Hjelmstad, R. H., and Bell, R. M. (1991) J. Biol. Chem. 266, 4357-4365), the effect of inositol on these two separate routes for PC biosynthesis was investigated. The data revealed that only cells harboring a functional CPT1 gene synthesized PC in vivo. These cells (ept1-delta 1::URA3) also displayed an identical mode of regulation in response to inositol as did cells containing an intact EPT1 gene (wild type) indicating there is no requirement for an alternate functional CDP-amino-alcohol pathway for inositol to regulate PC synthesis via the CDP-choline pathway.

Base Sequence↗

The cysteine-rich region of raf-1 kinase contains zinc, translocates to liposomes, and is adjacent to a segment that binds GTP-ras.

Different domains of the serine/threonine kinase, raf-1, were expressed as fusion proteins with glutathione S-transferase (GST) in Escherichia coli and purified to near homogeneity by affinity chromatography. A cysteine-rich domain of raf-1 was found to contain 2 mol of zinc (molar basis), similar to analogous cysteine-rich domains of protein kinase C. GST-fusion proteins, containing the cysteine-rich domain of raf-1, bound to liposomes in a phosphatidylserine-dependent manner. In contrast to protein kinase C, the translocation of raf-1 was not dependent upon diacylglycerol, phorbol ester, or calcium, nor did raf-1 bind phorbol esters. A GST-fusion protein encoding residues 1-147 of raf-1 bound to normal GTP-ras with high affinity, but not to mutant GTP-Ala35 ras; no binding was detected to GDP-ras. The binding of a smaller fusion protein (residues 1-130 of raf-1) was about 10-fold weaker, inferring that a 17-amino acid sequence represents a critical binding determinant in intact raf-1. These residues are adjacent to the amino-terminal end of, and partially extend into, the cysteine-rich domain (amino acids 139-184). A synthetic peptide corresponding to this 17-amino acid sequence blocked the interaction of raf-1 with ras. The function of the cysteine-rich region of raf-1 homologous to protein kinase C is to promote translocation of raf-1 kinase to membranes and to form part of the high affinity binding site for GTP-ras.

Amino Acid Sequence↗

Role of ceramide in mitogenesis induced by exogenous sphingoid bases.

Dihydrosphingosine, an intermediate in the de novo synthesis of ceramide, induced proliferation of Swiss 3T3 cells. The proliferative effects of this lipid were much more potent than those of sphingosine, a break-down product of ceramide. The maximal proliferative response to dihydrosphingosine occurred at relatively low concentrations (1 microM), while sphingosine produced its maximal effect at much higher concentrations (15 microM). The cell-permeable ceramide, N-hexanoylsphingosine (C6-ceramide), which was also a mitogen in these cells (at 1 microM), caused a striking morphological change when added to the cells at concentrations of 5-10 microM. This shape change was reversible with the removal of ceramide. Exogenous dihydrosphingosines and sphingosines have at least two metabolic fates in Swiss 3T3 cells, conversion to ceramide or to sphingosine 1-phosphate. Surprisingly, both the synthetic threo- isomer and the naturally occurring erythro- isomer of dihydrosphingosine and sphingosine (D-erythro-sphingosine, L-threo-sphingosine, DL-threo-dihydrosphingosine, and DL-erythro-dihydrosphingosine) were readily phosphorylated in intact Swiss 3T3 cells. This substrate specificity may be an indication of a sphingosine kinase activity which is distinct from that of platelets or rat brain. Although sphingosine 1-phosphate and ceramide were both produced upon the addition of sphingosine and dihydrosphingosine, no sphingosine 1-phosphate was produced when Swiss 3T3 cells were treated with mitogenic concentrations of C6-ceramide. These data are consistent with the formation of ceramide and not sphingosine 1-phosphate being required for the mitogenesis produced by exogenous sphingoid bases.

3T3 Cells↗

Characteristics and partial purification of a novel cytosolic, magnesium-independent, neutral sphingomyelinase activated in the early signal transduction of 1 alpha,25-dihydroxyvitamin D3-induced HL-60 cell differentiation.

Treatment of HL-60 cells with a 1 alpha,25-dihydroxyvitamin D3 induces activation of a neutral sphingomyelinase (SMase), resulting in a decrease in sphingomyelin (SM) levels and an increase in ceramide levels in a proposed "sphingomyelin cycle" of cell regulation (Okazaki, T., Bell, R., and Hannun, Y. (1989) J. Biol. Chem. 264, 19076-19080). Cell-permeable synthetic ceramides induce HL-60 cell differentiation toward a monocytic lineage without conversion to sphingosine, suggesting that ceramide is a lipid mediator of cell differentiation (Okazaki, T., Bielawska, A., Bell, R., and Hannun, Y. (1990) J. Biol. Chem. 265, 15823-15831). In this study, we investigated a novel SMase that was activated 2-2.5 h after treatment of cells with 1 alpha,25-dihydroxyvitamin D3. The activated SMase was localized to the cytosolic fraction. It was inhibited by copper, ferric iron, and zinc and showed optimal activity at pH 7.5. A mixed micellar assay was developed for the enzyme, with optimal activity achieved at 12 mol% SM in Triton X-100 mixed micelles and at 20 mol% SM in deoxycholate micelles. The activity was modestly enhanced by phosphatidic acid, phosphatidylserine, or phosphatidylinositol, but not by other major phospholipids. Purification was performed by chromatography on DEAE anion-exchange, Q-Sepharose Fast Flow, hydroxylapatite, sphingosylphosphocholine affinity, and Superose 12 gel filtration columns. Two peaks of activity with molecular masses of 45 and 95 kDa were resolved by gel filtration chromatography on Superose 12. The specific activities of the purified 45- and 95-kDa enzymes were 2780 and 2790 nmol/mg/h, respectively. These data identify a novel cytosolic, magnesium-independent, neutral SMase(s) that is activated during cell differentiation.

Calcitriol↗

A phorbol ester binding domain of protein kinase C gamma. High affinity binding to a glutathione-S-transferase/Cys2 fusion protein.

Cysteine-rich regions of protein kinase C (PKC) are implicated in diacylglycerol-dependent regulation of kinase activity. The second cysteine-rich region (residues 92-173) of PKC gamma was expressed as a fusion protein with glutathione-S-transferase in Escherichia coli and purified to homogeneity by affinity chromatography. This fusion protein displayed high affinity phorbol dibutyrate (PDBu) binding (Kd 23 nM). The phosphatidylserine dependence of PDBu binding was highly cooperative with Hill numbers (near 4.5) similar to those previously reported for PKC gamma (Burns, D. J., and Bell, R. M. (1991) J. Biol. Chem. 266, 18330-18338). The fusion protein specifically bound 4 beta-hydroxy-PDBu but not the 4 alpha-stereoisomer. Furthermore, sn-1,2-dioctanoylglycerol (diC8) stereoselectively competed for PDBu binding. The cysteine-rich region was sufficient for association of the fusion protein to liposome preparations containing phosphatidylserine and phosphatidylcholine. Association was significantly enhanced in a stereospecific manner by the presence of PDBu as well as diC8. These results establish that a single cysteine-rich domain (residues 92-173) of PKC gamma contains regions necessary and sufficient for lipid-dependent stereospecific interactions with PDBu and diC8. Furthermore, the region is sufficient to confer translocation of a fusion protein to liposomes in a PDBu- and diC8-dependent fashion. Thus, a single cysteine-rich region of PKC gamma displays many of the properties characteristic of PKC.

Animals↗