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Structural changes by sulfoxidation of phenothiazine drugs.

The side-chain conformations of psychoactive phenothiazine drugs in crystals are different from those of biologically inactive ring sulfoxide metabolites. This study examines the potential energies, molecular conformations and electrostatic potentials in chlorpromazine, levomepromazine (methotrimeprazine), their sulfoxide metabolites and methoxypromazine. The purpose of the study was to examine the significance of the different crystal conformations of active and inactive phenothiazine derivatives, and to determine why phenothiazine drugs lose most of their biological activity by sulfoxidation. Quantum mechanics and molecular mechanics calculations demonstrated that conformations with the side chain folded over the ring structure had lowest potential energy in vacuo, both in the drugs and in the sulfoxide metabolites. In the sulfoxides, side chain conformations corresponding to the crystal structure of chlorpromazine sulfoxide were characterized by stronger negative electrostatic potentials around the ring system than in the parent drugs. This may weaken the electrostatic interaction of sulfoxide metabolites with negatively charged domains in dopamine receptors, and cause the sulfoxides to be virtually inactive in dopamine receptor binding and related pharmacological tests.

Antipsychotic Agents

Hepatic disposition and biliary excretion of the organic cations thiazinamium and thiazinamium sulfoxide in rats.

The disappearance from plasma and the excretion in bile of the monoquaternary thiazinamium (administered as the iodide) and one of its polar metabolites, thiazinamium sulfoxide (also administered as the iodide), were studied in the rat after intravenous injection to obtain more information on hepatic transport mechanisms for organic cations. Both compounds exhibited an extremely rapid plasma disappearance, partly due to a rapid liver uptake. After injection of thiazinamium iodide and thiazinamium sulfoxide iodide, 36 and 47%, respectively, of the administered dose were excreted in bile during 1 hr. TLC analysis of the bile showed at least two unidentified polar metabolites in addition to thiazinamium sulfoxide and only 3.8% unchanged thiazinamium after administration of thiazinamium iodide. The same metabolites were found after injection of thiazinamium sulfoxide iodide. Urinary excretion and intestinal secretion were 18 and 12%, respectively, for thiazinamium sulfoxide iodide and 27 and 9%, respectively, of the dose for thiazinamium iodide. It is concluded that, in spite of unequal physicochemical features, thiazinamium iodide and thiazinamium sulfoxide iodide differ only slightly in hepatic uptake and metabolism.

Animals

Human leukotriene C4 synthase expression in dimethyl sulfoxide-differentiated U937 cells.

Leukotriene C4 (LTC4) synthase was highly expressed in the human U937 monoblast leukemia cell line when differentiated into monocyte/macrophage-like cells by growth in the presence of dimethyl sulfoxide. The specific activity of LTC4 synthase in differentiated cells (399.0 +/- 84.1 pmol of LTC4 formed.min-1.mg-1) was markedly higher (10-fold; p less than 0.001) than in undifferentiated U937 cells (39.9 +/- 16.7 pmol of LTC4 formed.min-1.mg-1) or freshly isolated blood monocytes (21.5 +/- 4.8 pmol of LTC4 formed.min-1.mg-1). The increase in LTC4 synthase activity following dimethyl sulfoxide-induced differentiation was substantially higher than the increase observed for other proteins involved in leukotriene biosynthesis. LTC4 synthase activity was unaffected in U937 cells differentiated by growth in the presence of phorbol 12-myristate 13-acetate. The HL-60 myeloblast leukemia cell line expressed higher LTC4 synthase levels when differentiated into either neutrophil-like or macrophage-like cells by growth in the presence of dimethyl sulfoxide or phorbol 12-myristate 13-acetate (respectively), but reached a specific activity comparable only to undifferentiated U937 cells. Human LTC4 synthase was found to be a unique membrane-bound enzymatic activity completely distinct from alpha, mu, pi, theta, and microsomal glutathione S-transferases, as determined by differential detergent solubilization, chromatographic separation, substrate specificity, and Western blot analysis. An 18-kDa polypeptide was specifically labeled in membranes from dimethyl sulfoxide-differentiated U937 cells using azido 125I-LTC4, a photoaffinity probe based on the product of the LTC4 synthase-catalyzed reaction. Photolabeling of the 18-kDa polypeptide was specifically competed for by LTC4 (greater than 50% at 0.1 microM) but not by 100,000-fold higher concentrations of reduced glutathione (10 mM). Elevation of both the level of the specifically photolabeled 18-kDa polypeptide and of LTC4 synthase specific activity occurred concomitantly with dimethyl sulfoxide differentiation of U937 cells. We conclude that differentiation of U937 cells into monocyte/macrophage-like cells by growth in the presence of dimethyl sulfoxide results in high levels of expression of LTC4 synthase activity. Human LTC4 synthase is a unique enzyme with a high degree of specificity for LTA4 and may therefore be dedicated exclusively to the formation of LTC4 in vivo. An 18-kDa membrane polypeptide, specifically labeled by a photoaffinity derivative of LTC4, is a candidate for being either LTC4 synthase or a subunit thereof.

Cell Differentiation

Effect of repeated doses of albendazole on enantiomerism of its sulfoxide metabolite in goats.

Five adult Saanen goats were dosed orally 3 times with albendazole (2.5 mg/kg of body weight) at 24-hour intervals, and blood samples were taken by jugular venapuncture at standardized intervals. Plasma was analyzed to determine concentrations of S-oxidation metabolites, and a chiral column was used for enantiomeric discrimination of the sulfoxide metabolite of albendazole. Marked changes were evident between the first and subsequent plasma profiles concerning, on one hand, the proportions of sulfoxide and sulfone metabolites concentrations and, on the other hand, the enantiomeric balance of sulfoxide metabolite. These correlated phenomena may be explained by the following arguments: the enzyme responsible for sulfoxidation is mainly a flavine-containing monooxygenase, whereas the enzyme responsible for sulfonation is a cytochrome-dependent monooxygenase; the latter, but not the former, is induced by albendazole; the enantioselectivities of both enzymic systems are opposite, the flavine produces the (+) sulfoxide, whereas the cytochromes can use as a substrate, specifically, the (-) sulfoxide.

Albendazole

Effects of levomepromazine, chlorpromazine and their sulfoxides on isolated rat atria.

The effects of levomepromazine, chlorpromazine and their sulfoxides were studied on spontaneously beating and on electrically driven rat atria in vitro. Levomepromazine, chlorpromazine and levomepromazine sulfoxide produced a dose-dependent decrease in the work index of spontaneously beating atria and in the contractile force of electrically driven atria, while chlorpromazine sulfoxide was relatively inactive in these respects. At higher concentrations, levomepromazine sulfoxide caused a pronounced increase in the threshold for electrical stimulation and the effective refractory period. Compared to chlorpromazine, levomepromazine looses less of its cardio-depressive effect through sulfoxidation.

Animals

Inhibition of the human erythrocyte calcium pump by dimethyl sulfoxide.

The action of dimethyl sulfoxide on the human red cell Ca2+ pump was studied in inside-out vesicles. In a high-K+ medium at pH 7.6, the organic solvent inhibited both Ca2+ transport and ATP hydrolysis. Half-maximal effect was obtained with about 2% (v/v). At or below 10% dimethyl sulfoxide, the inhibition was overcome by adding inorganic phosphate or oxalate. In the absence of organic solvent, Ca2+ efflux from Ca(2+)-loaded vesicles consisted of a slow and a fast component whilst in its presence, there appears additionally a leakage component. The size of the latter depended markedly on dimethyl sulfoxide concentration, being about 3% at that level where Ca2+ uptake was half-maximally inhibited. ATP hydrolysis was more sensitive to dimethyl sulfoxide (10%) when free Ca2+ was increased within the millimolar level than when it was raised within the micromolar range. On the other hand, raising Ca2+ with organic solvent greatly stimulated ATP synthesis through ATP-Pi exchange, without reaching saturation. The results suggest that dimethyl sulfoxide blocks the red cell Ca2+ pump by increasing the affinity of the Ca2+ translocating site at the releasing step. They also show that at high concentrations, this solvent increases Ca2+ permeability.

Adenosine Triphosphate

Methionine sulfoxide cytochrome c.

Cytochrome c has been chemically modified by methylene blue mediated photooxidation. It is established that the methionine residues of the protein have been specifically converted to methionine sulfoxide residues. No oxidation of any other amino acid residues or the cysteine thioether bridges of the molecule occurs during the photooxidation reaction. The absorbance spectrum of methionine sulfoxide ferricytochrome c at neutrality is similar to that of the unmodified protein except for an increase in the extinction coefficient of the Soret absorbance band and for the complete loss of the ligand sensitive 695 nm absorbance band in the spectrum of the derivative. The protein remains in the low spin configuration which implies the retention of two strong field ligands. Spin state sensitive spectral titrations and model studies of heme peptides indicate that the sixth ligand is definitely not provided by a lysine residue but may be methionine-80 sulfoxide coordinated via its sulfur atom. Circular dichroism spectra indicate that the heme crevice of methionine sulfoxide ferri- and ferrocytochrome c is weakened relative to native cytochrome c. The redox potential of methionine sulfoxide cytochrome c is 184 mV which is markedly diminished from the 260 mV redox potential of native cytochrome c. The modified protein is equivalent to native cytochrome c as a substrate for cytochrome oxidase and is not autoxidizable at neutral pH but is virtually inactive with succinate-cytochrome c reductase. These results indicate that the major role of the methionine-80 in cytochrome c is to preserve a closed hydrophobic heme crevice which is essential for the maintainance of the necessary redox potential.

Amino Acids

Biologically oriented organic sulfur chemistry. 14. Antiinflammatory properties of some aryl sulfides, sulfoxides, and sulfones.

To extend earlier work, to examine the possibility that certain sulfoxides might serve as counterparts of amines in receptor-site interactions, and to add to the little information available about sulfoxides in medicinal chemistry, sulfoxides were prepared of the general structure XArS(O)C6H4(CHR)nCO2H, together with the sulfides and some of the sulfones. The products were evaluated as antiinflammatory agents by carrageenan-edema inhibition and uv-erythema inhibition. Four of the compounds had activity roughly comparable to aspirin or phenylbutazone in one or the other of these assays (2a-c, 3b). Sulfoxides did not seem especially promising as a class and usually were less active than the corresponding sulfides. The two most interesting compounds in these assays, o-(phenylthio)phenylacetic acid (2b) and its sulfoxide 3b, had no significant activity in adjuvant arthritis. Hydrogen-bonding effects are indicated in certain of the acids by their absence in the corresponding esters.

Animals

Inhibition of dimethyl sulfoxide-stimulated Friend cell erythrodifferentiation by hydrocortisone and other steroids.

Erythrodifferentiation and hemoglobin synthesis in dimethyl sulfoxide-stimulated Friend erythroleukemia cells were inhibited by hydrocortisone (HC) and four other steroids: dexamethasone, deoxycorticosterone, corticosterone, and aldosterone. The effect was specific, because no significant cytotoxicity occurred with any of these compounds at the concentrations that were inhibitory. The mechanism of action of HC was studied in detail. In the absence of dimethyl sulfoxide, it had no effect on hemoglobin levels; but, in the presence of this inducer, the synthesis of heme and globin were each inhibited by approximately 90%. There was no alteration in the synthesis of any major protein other than globin, as determined by gel electrophoresis of cell lysates. The activities of two enzymes in the heme biosynthetic pathway, delta-aminolevulinate dehydratase and uroporphyrinogen-I synthase, were inhibited by 80% and 70%, respectively. Globin mRNA induction was reduced by approximately 90%. This demonstrated that the HC inhibition of globin synthesis occurred at a pretranslational step. The dimethyl sulfoxide-induced single-stranded breaks in DNA, which have been suggested to play a role in Friend leukemia cell differentiation, were reduced in number but not eliminated. HC reduced the dimethyl sulfoxide-stimulation of virus release into the medium by approximately 50%. HC treatment in the absence of dimethyl sulfoxide doubled the production of virus.

Aldosterone

High level expression and purification of peptide methionine sulfoxide reductase in Escherichia coli.

The enzyme peptide methionine sulfoxide reductase catalyzes the conversion of methionine sulfoxide residues in proteins to methionine. The 636 nucleotide coding region of the peptide methionine sulfoxide reductase gene has been amplified from a genomic clone using the polymerase chain reaction and the product was subcloned into plasmid pGEX-2T downstream of the glutathione S-transferase gene under control of the tac promoter. Escherichia coli XL1-Blue cells transformed with this plasmid and induced with isopropylthio-beta-galactoside expressed high levels of the fusion protein. The protein was soluble and was purified to homogeneity by affinity binding to a glutathione-agarose resin followed by cleavage of the fusion protein with thrombin. Both the fusion protein and the purified peptide methionine sulfoxide reductase protein showed high peptide methionine sulfoxide reductase activity.

Amino Acid Sequence

Differentiation of a resistant clone of mouse myeloid leukemia cells with dimethyl sulfoxide and ascitic fluid.

Mouse myeloid leukemia line cells, M1, could be induced to differentiate in vitro into macrophages and granulocytes with ascitic fluid of animals bearing various tumors. M1 cells could not be induced to differentiate with dimethyl sulfoxide alone. During the culture of M1 cells, spontaneously appearing cells resistant to factors stimulating differentiation (D-factor) in ascitic fluid were isolated. These resistant cells were more refractile to the toxic action of dimethyl sulfoxide than sensitive cells and grew in culture medium with 1% dimethyl sulfoxide. Although the resistant cells were not induced to differentiate with dimethyl sulfoxide alone, they were sensitized with the aid of dimethyl sulfoxide to undergo differentiation with the D-factor in ascitic fluid.

Animals

Effect of dimethyl sulfoxide on permeability of human skin in vitro.

A diffusion flow cell is described for the continuous monitoring of skin permeability. The technique was used to study the permeability behavior of human skin subsequent to treatment with dimethyl sulfoxide. Such treatment produced an increased penetration rate of tritiated water, which was dependent upon the time of exposure and the concentration of dimethyl sulfoxide applied. Removal of the solvent resulted in partial recovery of barrier capacity. Skin, incubated in vitro in growth medium containing dimethyl sulfoxide, survived only at very low concentrations. Degeneration occurred after a few days in 4.5% dimethyl sulfoxide and much sooner at higher concentrations.

Autoradiography

Effect of dimethyl sulfoxide on phosphoryl transfer catalyzed by yeast hexokinase.

Hexokinase is a phosphotransferase that catalyzes phosphoryl transfer from ATP to glucose much more rapidly than the transfer from ATP to water (i.e., hydrolysis). Dimethyl sulfoxide has opposite effects on these two phosphotransferase activities: it enhances ATP hydrolysis and inhibits glucose phosphorylation. Xylose, a sugar that is non-phosphorylatable by hexokinase, enhances ATPase activity which is additive to activation by dimethyl sulfoxide, indicating that the mechanism of activation by dimethyl sulfoxide is different from that of xylose. These results suggest that it is possible to change the specificity of the enzyme in the presence of dimethyl sulfoxide.

Adenosine Triphosphatases

Alteration of myoblast phenotype by dimethyl sulfoxide.

Application of dimethyl sulfoxide to proliferating L8 myoblasts (an established cell line of rat skeletal muscle) for 72 hr completely prevented fusion and induction of creatine phosphokinase (EC 2.7.3.2) activity (an indicator of muscle differentiation). The growth pattern changed from the usual sheets of randomly oriented cells to flattened, whorled monolayers of elongated fibroblast-like cells. By electron microscopy, rough endoplasmic reticulum increased and extracellular material appeared that had the morphologic and staining characteristics of collagen. After 120 hr in dimethyl sulfoxide-containing medium, the cells secreted about 6 times more collagen than untreated controls. Dimethyl sulfoxide was ineffective when applied to L8 cells just prior to fusion, and effects of dimethyl sulfoxide were not readily reversible unless treated cells were subcultured at low density.

Animals