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O Rådmark

Publications and source records attributed to O Rådmark.

At least 37 records · Page 2Linked to original sources

On the induction of 5-lipoxygenase expression and activity in HL-60 cells: effects of vitamin D3, retinoic acid, DMSO and TGF beta.

Induction of 5-LO activity in DMSO differentiated HL-60 cells, by the serum protein TGF beta, was partially dependent on the presence of serum lipids (Steinhilber, D., Hoshiko, S., Grunewald, J., Rådmark, O., and Samuelsson, B. (1993) Biochim. Biophys. Acta 1178, 1-8). Here we demonstrate that the serum lipid fraction can be substituted by picomolar concentrations of 1,25-dihydroxyvitamin D3 (VD3). A high concentration of VD3 (24 nM) gave a 4-fold induction of 5-LO mRNA, a 14-fold increase in 5-LO protein, and a 38-fold upregulation of the 5-LO activity of intact HL-60 cells after differentiation in the presence of DMSO and serum proteins for 4 days. Also VD3 alone gave a substantial upregulation of 5-LO protein expression and activity. On the other hand, TGF beta alone was a poor inducer of the 5-LO pathway, the presence of a differentiation inducer (retinoic acid, DMSO or VD3) was required. The most prominent induction of 5-LO protein expression and activity in cell homogenates and intact cells was observed when VD3 and TGF beta were combined.

Arachidonate 5-Lipoxygenase↗

Stabilization of purified human 5-lipoxygenase with glutathione peroxidase and superoxide dismutase.

Human 5-lipoxygenase (5LO) becomes very unstable after purification. Commonly used methods for protein stabilization could not prevent this inactivation. However, addition of small amounts of glutathione peroxidase (0.15 micrograms/ml) and superoxide dismutase (1 microgram/ml) to the solution of purified 5LO (300-500 micrograms/ml) stabilized the enzyme during storage. The protected 5LO maintained full activity for at least 12 days at 25 degrees C, while 50% of the activity was lost within 10 h without protection. Glutathione peroxidase alone also preserved the activity of 5-lipoxygenase; however, the effect declined rapidly in the absence of superoxide dismutase. 2-Mercaptoethanol was the most efficient hydrogen donor substrate for glutathione peroxidase in the protection of 5LO. Catalase was less effective as a stabilizing agent, and ebselen, a synthetic glutathione peroxidase-mimicking compound, did not protect 5LO. Since many metal ion binding proteins are susceptible to H2O2 inactivation, this method could be useful also for the stabilization of other proteins.

Arachidonate 5-Lipoxygenase↗

Identification and subcellular localization of leukotriene A4-hydrolase activity in human epidermis.

The purpose of this study was to determine whether normal human epidermis could produce leukotriene B4 (LTB4) from leukotriene A4 (LTA4) ex vivo, and to localize this LTA4-hydrolase activity. Epidermis obtained by suction blister technique incubated with human polymorphonuclear cells, resulted in a 54% increase in LTB4 formation when compared to polymorphonuclear cells incubated alone. Furthermore, human epidermis transformed exogenous LTA4 into LTB4, and this reaction obeyed Michaelis-Menten kinetics with an apparent Km of 6 microM. Subcellular fractionation of homogenized epidermis localized the LTA4-hydrolase activity mainly in the 105,000 x g supernatant fraction (cytoplasmic fraction). This activity was inhibited by two inhibitors of LTA4-hydrolase (bestatin and captopril). Western blot analysis of the 105,000 x g fraction of homogenized epidermis and cultured keratinocytes supported the presence of a LTA4-hydrolase. Thus, normal human epidermis possesses LTA4-hydrolase activity which can transform exogenous LTA4 and polymorphonuclear cell-derived LTA4 into LTB4. The identification of LTA4-hydrolase in the cytoplasmic fraction of human epidermis indicates that epidermal cells may play a more active role in the enzymatic process leading to formation of the proinflammatory compound LTB4 than previously expected.

Blotting, Western↗

Serum factors regulate 5-lipoxygenase activity in maturating HL60 cells.

5-Lipoxygenase activity in DMSO-differentiated HL60 cells is regulated by human serum. The serum effect depended on the differentiation state of the cells. For a stimulatory effect to occur, it was required that the cells had been treated with DMSO before addition of serum. After this regimen, the HL60 cells acquired the same high 5-LO activity as found for human neutrophils isolated from peripheral blood (about 9-times higher than for HL60 cells treated only with DMSO). On the other hand, when serum was added together with DMSO and present during the entire differentiation period (seven days), or withdrawn after the first four days, the 5-LO activity did not increase. 5-LO activity of HL60 cells covaried with the expression of the CD14 molecule, a marker for myeloid cell maturation which was recently identified as a receptor for the complex of LPS and LPS-binding protein. These serum effects on 5-LO activity were only observed for intact cells. The prominent increase in 5-LO activity induced by serum was not concomitant with similar changes in the expression of 5-LO or 5-LO-activating protein (FLAP), as judged from analyses of immunoreactive protein and mRNA. Also, the high 5-LO activity induced by serum was rather insensitive to the drug MK886 under our standard assay conditions, which included addition of exogenous arachidonic acid (40 microM). The results indicate that additional cellular components of importance for 5-LO activity in HL60 cells become operative after serum treatment, and that mere expression of 5-LO and FLAP is insufficient for high 5-LO activity in intact cells.

Arachidonate 5-Lipoxygenase↗

Transforming growth factor beta upregulates 5-lipoxygenase activity during myeloid cell maturation.

Transforming growth factor beta (TGF beta) increased the arachidonate 5-lipoxygenase (5-LO; EC 1.13.11.34) activity in HL-60 cells induced to granulocytic differentiation by dimethyl sulfoxide. The presence of a factor in human serum that caused a similar increase was recently demonstrated. Several observations indicate that the serum factor consists of isoforms of TGF beta. Heat-treated serum and TGF beta both resulted in approximately 10-fold increased 5-LO activity of HL-60 cells, antiserum to TGF beta neutralized the 5-LO-increasing activity in serum, and physical properties of the serum factor (lipophilic nature, alkaline pI, stability to heat and acid) coincided with those of TGF beta. The pattern of activity of native and heat-treated sera is compatible with activation of a latent form of TGF beta in serum. This activity was specific for TGF beta, since none of several other cytokines could increase 5-LO activity in differentiating HL-60 cells. However, granulocyte/macrophage-colony-stimulating factor (GM-CSF) and tumor necrosis factor alpha enhanced the effect of TGF beta. The most prominent effects of TGF beta, whether alone or together with GM-CSF, were observed for 5-LO activity in intact cells (10-fold or 30-fold induction, respectively). 5-LO protein levels were less affected (up to 2- or 5-fold, respectively, as judged from Western blots). There was no appreciable effect of TGF beta, or a combination of TGF beta and GM-CSF, on 5-LO mRNA expression.

5-Lipoxygenase-Activating Proteins↗

A heat stable serum factor upregulates 5-lipoxygenase activity in HL-60 cells, modulation by TNF alpha or GM-CSF.

5-Lipoxygenase (5-LO) activity in differentiating HL-60 cells was upregulated by a heat stable protein in human serum. Hematopoietic cytokines were evaluated for this effect on 5-lipoxygenase activity, none of the compounds tested could replace serum. However, TNF alpha or GM-CSF were able to augment the effect of heat treated serum, giving 5-LO activities that (per cell) were higher than for granulocytes isolated from peripheral blood. The serum factor primarily upregulated 5-LO activity. The amounts of 5-LO protein, or mRNA for 5-LO or 5-lipoxygenase activating protein (FLAP), were less affected.

5-Lipoxygenase-Activating Proteins↗

Molecular cloning of a 12-lipoxygenase cDNA from rat brain.

A cDNA encoding an arachidonate 12-lipoxygenase from rat brain was obtained by polymerase chain reaction cloning. Primers specific for porcine leukocyte 12-lipoxygenase cDNA were used to isolate the initial polymerase-chain-reaction product (395 bp). The final sequence of the rat 12-lipoxygenase cDNA coding region (1989 bp) was verified by analysis of several separate polymerase-chain-reaction products. The open reading frame corresponded to a protein of 662 amino acid residues, with a calculated molecular mass of 75,305 Da. Also the rat 12-lipoxygenase contained the six conserved histidines, characteristic for all cloned lipoxygenases. It displayed the highest degree of identity to porcine leukocyte 12-lipoxygenase (71%) and to human 15-lipoxygenase (75%), with less resemblance to human platelet 12-lipoxygenase (59%) or rat leukocyte 5-lipoxygenase (41%). The recombinant enzyme was expressed in Escherichia coli and incubated with arachidonic acid. Primarily 12-lipoxygenase (but also some 15-lipoxygenase) enzyme activity was obtained. A part of the brain 12-lipoxygenase cDNA was used as probe in Northern blots. A 2.7-kb mRNA was more abundant in RNA from rat leukocytes, lung, and aorta, than in RNA from rat brain. Sequencing of parts of the corresponding cDNAs (from leukocytes and lung), and comparison to the brain 12-lipoxygenase sequence, indicated that these mRNAs from the different rat tissues were identical.

Amino Acid Sequence↗

Iron content of human 5-lipoxygenase, effects of mutations regarding conserved histidine residues.

Recombinant human 5-lipoxygenase was expressed in Escherichia coli and purified to more than 95% homogeneity by ammonium sulfate precipitation and agarose-ATP column chromatography. The specific activity of the purified enzyme was 21-28 mumol/mg, as assessed by the generation of 5-hydro(pero)xyeicosatetraenoic acid. The iron content was analyzed by graphite furnace atomic absorption spectrophotometry for six preparations of the enzyme. The average value of the iron content was 0.86 mol/mol (iron/protein) with a range of 0.74-1.15 mol/mol. All lipoxygenases that have been sequenced contain 6 conserved histidine residues. Mutants of 5-lipoxygenase, with substitutions of these 6 conserved histidines, were purified and analyzed. Mutants H372Q and H550Q had no detectable enzyme activity and were also practically devoid of iron. Three mutants regarding His367 (H367Q, H367N, and H367S) were all inactive but had partial iron contents (0.5, 0.2, and 0.5 mol/mol, respectively). Finally, the mutated proteins H362Q, H390Q, and H399Q displayed reduced enzyme activity but contained similar amounts of iron as non-mutated 5-lipoxygenase. We conclude that histidines 372 and 550 constitute two of the iron ligands in 5-lipoxygenase. Also His367 is necessary for the enzyme activity, but this residue is not crucial for binding of iron.

Arachidonate 5-Lipoxygenase↗

Leukotriene A4 hydrolase: abrogation of the peptidase activity by mutation of glutamic acid-296.

The metal-binding motif in the sequence of leukotriene A4 (LTA4) (EC 3.3.2.6), a bifunctional zinc metalloenzyme, contains a glutamic acid that is conserved in several zinc hydrolases. To study its role for the two catalytic activities, Glu-296 in mouse leukotriene A4 hydrolase was replaced by a glutamine or alanine residue by site-directed mutagenesis. Wild-type and mutated cDNAs were expressed four or five times in Escherichia coli, and the resulting proteins were purified to apparent homogeneity. With respect to their epoxide hydrolase activities--i.e., the conversion of LTA4 into leukotriene B4--the mutated enzymes [Gln296]LTA4 hydrolase and [Ala296]LTA4 hydrolase exhibited specific activities of 1070 +/- 160 and 90 +/- 30 nmol of LTB4 per mg of protein per min (mean +/- SD; n = 4 or 5), respectively, corresponding to 150% and 15% of unmutated enzyme. In contrast, when the mutated proteins were assayed for peptidase activity toward alanine-4-nitroanilide, they were found to be virtually inactive (less than or equal to 0.2% of unmutated enzyme). To serve as a positive control, we also replaced Ser-298 with an alanine residue, which resulted in a protein ([Ala298]LTA4 hydrolase) with catalytic properties almost indistinguishable from the wild-type enzyme. Substitution of Glu-296 by glutamine or alanine was also carried out with human LTA4 hydrolase, and the mutated human enzymes displayed specific activities similar to the corresponding mouse proteins. Zinc analyses of the purified mouse and human proteins confirmed that the mutations did not significantly influence their zinc content. In conclusion, the results of the present study indicate a direct catalytic role for Glu-296 in the peptidase reaction of LTA4 hydrolase, where it presumably acts as a base to polarize water, whereas its function, if any, is apparently not essential in the epoxide hydrolase reaction.

Amino Acid Sequence↗

On the expression and regulation of 5-lipoxygenase in human lymphocytes.

The expression of arachidonate 5-lipoxygenase (arachidonate:oxygen 5-oxidoreductase, EC 1.13.11.34) and the 5-lipoxygenase-activating protein (FLAP) genes in human tonsillar B cells and lymphoblastoid B-cell lines was demonstrated at the transcriptional level by reverse transcription-PCR analysis. Also, five lymphoblastoid T-cell lines were investigated and found to express the FLAP gene but not the 5-lipoxygenase gene, suggesting that the transcriptional regulation of these two genes is different. Western blot analysis of the cytosolic proteins from a lymphoblastoid B-cell line with an antiserum raised against purified human leukocyte 5-lipoxygenase revealed an immunoreactive band that comigrated with recombinant human 5-lipoxygenase. Intact B cells produced very low amounts of leukotriene B4 and 5-hydroxyeicosatetraenoic acid upon stimulation with the calcium ionophore A23187 and arachidonic acid, in comparison to the amounts formed by sonicates of these cells. However, preincubation of intact lymphoblastoid B cells with the glutathione-depleting agents azodicarboxylic acid bis(dimethylamide) or 1-chloro-2,4-dinitrobenzene prior to the addition of the calcium ionophore A23187 and arachidonic acid led to similar amounts of leukotriene B4 as were formed by sonicated cells. In contrast, the glutathione synthesis inhibitor buthionine sulfoximine diminished the cellular level of glutathione by greater than 90% but did not influence the production of leukotriene B4 or 5-hydroxyeicosatetraenoic acid in intact cells. These results demonstrate that certain drugs affecting the redox status can stimulate the cryptic 5-lipoxygenase activity in intact lymphoblastoid B cells but that the mechanism of this activation is unclear and appears not to be directly related to intracellular glutathione levels.

5-Lipoxygenase-Activating Proteins↗

Mutagenesis of some conserved residues in human 5-lipoxygenase: effects on enzyme activity.

Recombinant human 5-lipoxygenase (arachidonate:oxygen 5-oxidoreductase, EC 1.13.11.34) was expressed in Escherichia coli. In incubations of E. coli supernatants with arachidonic acid, 5-hydroxy-7,9,11,14-eicosatetraenoic acid and leukotriene A4 were formed, while incubation with 8,11,14-eicosatrienoic acid gave 8-hydroxy-9,11,14-eicosatrienoic acid. Six conserved histidine residues in 5-lipoxygenase were subjected to site-directed mutagenesis. Exchanges of His-367, -372, or -551 gave mutants for which no enzyme activities were detectable. On the other hand, exchanges of His-362, -390, or -399 gave mutants that were enzymatically active, but less so than the nonmutated control. For two of these (exchanges of His-390 or -399), the activities of the mutants were dependent on the expression temperature. Thus, the histidines in the first group (His-367, -372, -551) were crucial for 5-lipoxygenase activity, possibly because of a function of these residues as metal ligands. Mutagenesis aimed at two other conserved elements in 5-lipoxygenase, Gln-558 and the C terminus, gave mutated proteins with only a small residual activity (substitution of Gln-558), or with no detectable activity (deletion of six C-terminal amino acids), indicating that these regions are important for the function of 5-lipoxygenase.

Arachidonate 5-Lipoxygenase↗

Purification of two forms of arachidonate 15-lipoxygenase from human leukocytes.

Two different proteins with arachidonate 15-lipoxygenase activity have been purified to near homogeneity from human leukocytes. Both have the same molecular mass (74 kDa) on SDS/PAGE and appear to be equally active with three different fatty acid substrates. The N-terminal amino acid sequences of both forms were identical to the sequence of human reticulocyte 15-lipoxygenase [Sigal, E., Craik, C.S., Highland, E., Grunberger, D., Costello, L.L., Dixon, R.A.F. & Nadel, J.A. (1988) Biochem. Biophys. Res. Commun. 157, 457-464]. The two forms of 15-lipoxygenase could be clearly separated by cation-exchange chromatography. Of particular interest, the relative amounts of the two forms differed markedly between leukocytes obtained from normal donors and leukocytes from an individual with eosinophilia.

Amino Acid Sequence↗

Recombinant mouse leukotriene A4 hydrolase: a zinc metalloenzyme with dual enzymatic activities.

Recombinant mouse leukotriene A4 hydrolase was expressed in Escherichia coli as a fusion protein with ten additional amino acids at the amino terminus and was purified to apparent homogeneity by means of precipitation, anion exchange, hydrophobic interaction and chromatofocusing chromatographies. By atomic absorption spectrometry, the enzyme was shown to contain one mol of zinc/mol of enzyme. Apparent kinetic constants (Km and Vmax) for the conversion of leukotriene A4 to leukotriene B4 (at 0 degree C, pH 8) were 5 microM and 900 nmol/mg per min, respectively. The purified enzyme also exhibited significant peptidase activity towards the synthetic amide alanine-4-nitroanilide. Km and Vmax for this reaction (at 37 degrees C, pH 8) were 680 microM and 365 nmol/mg per min, respectively. Apo-leukotriene A4 hydrolase, prepared by treating the enzyme with 1,10-phenanthroline, was virtually inactive with respect to both enzymatic activities, but could be reactivated by addition of stoichiometric amounts of zinc or cobalt. Exposure of the enzyme to leukotriene A4 resulted in a dose-dependent inactivation of both enzyme activities.

Animals↗

Leukotriene A4 hydrolase: determination of the three zinc-binding ligands by site-directed mutagenesis and zinc analysis.

Three mutants of recombinant mouse leukotriene A4 (LTA4) hydrolase (3.3.2.6) were produced by site-directed mutagenesis on cDNA. The codons corresponding to His-295, His-299, or Glu-318 were replaced by codons encoding tyrosine, tyrosine, and glutamine, respectively. The mutated cDNAs were expressed in Escherichia coli, and the three mutated proteins were purified to apparent homogeneity. None of these mutants contained significant amounts of zinc, as determined by atomic absorption spectrometry, and all of them were practically devoid of both LTA4 hydrolase and peptidase enzyme activities. Nevertheless, the mutated proteins could be positively identified by their immunoreactivities with an antiserum for human LTA4 hydrolase in immunoblot analysis. Site-directed mutagenesis was also carried out on human LTA4 hydrolase cDNA. Codons encoding His-295, His-299, and Glu-318 were replaced by ones encoding tyrosine, leucine, and alanine, respectively, and the three mutants were expressed in E. coli. The LTA4 hydrolase activities of the total soluble proteins produced in these expressions were less than 10% of that obtained for bacteria harboring nonmutated cDNA. In agreement with earlier predictions, our experimental data demonstrate that His-295, His-299, and Glu-318 constitute the three ligands of the intrinsic zinc atom in LTA4 hydrolase. Additionally, the combined loss of enzyme activities and zinc content in the purified mutated mouse proteins, emphasizes the critical role of the zinc atom for catalysis, whereas the virtually identical chromatographic behaviors of the mutated and nonmutated mouse LTA4 hydrolase proteins suggest that the metal is of limited importance for the maintenance of the enzyme tertiary structure.

Amino Acid Sequence↗