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Inositol derivatives down-regulate c-myc inducing growth arrest without differentiation.

Cyclitol derivatives that are structurally related to myo-inositol induce growth arrest without differentiation in human promyelocytic leukemia (HL60) cells. An early effect is the rapid down-regulation of c-myc mRNA levels. This was observed also in several mouse and human lines carrying either normal or rearranged myc. The mRNA levels of a constitutive mouse myc construct transfected into HL60 were not affected at the same time. Uridine and thymidine incorporation were significantly decreased by the cyclitol treatment. These effects partly resemble those of certain differentiation inducers and those of hexachlorcyclohexane, another myo-inositol analogue. This new group of agents offers a novel approach to studying control mechanisms involving c-myc.

Blotting, Northern↗

C1q binding to mitochondria: a possible artefact?

Mitochondrial preparations, obtained from human tonsils and from rat spleen, liver, heart, and kidney tissues, bound [125I]C1q with affinities of 10(7)-10(8)M-1. The binding of C1q was not affected by treatment of the mitochondrial preparations with pronase, trypsin, or phospholipase D, but it was lowered 5-6-fold following treatment of the mitochondria with DNase and RNase. Binding of C1q to mitochondrial preparations was also greatly diminished by limited chemical modification of C1q with cyclohexane-1,2-dione. It is suggested that the reported binding of C1q to mitochondria may have arisen from the protein binding to DNA and/or RNA contaminating the mitochondrial preparations.

Animals↗

Involvement of arginine residues in inhibition of protein synthesis by ricin A-chain.

Modifications of arginine residues in ricin A-chain with phenylglyoxal (PGO) and 1,2-cyclohexanedione (CHD) caused a marked loss in its inhibitory activity on cell-free protein synthesis. The loss of activity caused by modification with PGO was much faster than the loss of total arginine residues. More than 90% activity was lost with PGO modification of about three arginine residues. Regeneration of arginine residues from the CHD-modified residues resulted in complete recovery of the activity. These results strongly suggest the involvement of definite arginine residue(s) in A-chain activity. Analysis of the peptides, produced by peptic digestion of the [14C]PGO-modified A-chain, showed that some of the six arginine residues in the N-terminal region of A-chain react with PGO faster than other arginine residues.

Amino Acid Sequence↗

Inhibition of the mitochondrial tricarboxylate carrier by arginine-specific reagents.

The effect of arginine-specific reagents on the activity of the partially purified and reconstituted tricarboxylate carrier of the inner mitochondrial membrane has been studied. It has been found that 1,2-cyclohexanedione, 2,3-butanedione, phenylglyoxal and phenylglyoxal derivatives inhibit the reconstituted citrate/citrate exchange activity. The inhibitory potency of the phenylglyoxal derivatives increases with increasing hydrophilic character of the molecule. Citrate protects the tricarboxylate carrier against inactivation caused by the arginine-specific reagents. Other tricarboxylates, which are not substrates of the carrier, have no protective effect. The results indicate that at least one essential arginine residue is located at the substrate-binding site of the tricarboxylate carrier and that the vicinity of the essential arginine(s) has a hydrophilic character.

Animals↗

The effect of inhibition of both diacylglycerol metabolism and phospholipase A2 activity on superoxide generation by human neutrophils.

A 'cocktail' consisting of an inhibitor of diacylglycerol kinase (R59022, 10 microM), an inhibitor of diacylglycerol lipase (RHC80267, 10 microM), and an inhibitor of phospholipase A2 (either 100 microM indomethacin, or 100 microM sodium meclofenamate) markedly enhanced superoxide production by human neutrophils stimulated with post-receptor stimuli, fluoride and gamma-hexachlorocyclohexane. On the other hand, the response to the C3b/Fc receptor stimulus, opsonized zymosan, was marginally decreased whilst that to the Fc receptor stimulus, aggregated IgG, was virtually unaffected. Since the inhibitors used are deemed to inhibit the main routes of arachidonate production, these results call into question the role of arachidonate in the transduction of O2- generation by post-receptor stimuli, but support a role for arachidonate in receptor-mediated transduction.

Cyclohexanones↗

A G-protein mediates secretagogue-induced gap junctional channel closure in pancreatic acinar cells.

Using the double whole-cell patch-clamp technique, we determined that dialysis of cell pairs by GTP[S] potentiated electrical uncoupling induced by extracellular addition of carbamylcholine (CCh). An inhibitor of diglyceride lipase, RHC 80267, further potentiated CCh/GTP[S]-induced junctional channel closure, probably by accumulation of diacylglycerol. Moreover, the protein kinase C inhibitor polymyxin B completely blocked uncoupling elicited by CCh/GTP[S]. These results provide the first evidence suggesting that gap junction channel closure by cholinergic stimulation is mediated by a G-protein, which acts by increasing phosphatidylinositol biphosphate breakdown and protein kinase C activity.

Animals↗

SC-0051, a 2-benzoyl-cyclohexane-1,3-dione bleaching herbicide, is a potent inhibitor of the enzyme p-hydroxyphenylpyruvate dioxygenase.

Growth inhibition of Lemna gibba plantlets by the bleaching herbicide, SC-0051 (2-(2-chloro-4-methanesulfonylbenzoyl)-1,3-cyclohexanedione)) was alleviated by the addition of homogentisic acid to the growth medium. Homogentisic acid is a key intermediate in the biosynthesis of tyrosine-derived plant quinones as well as in tyrosine metabolism. The herbicide prevented the incorporation of radioactivity from [14C]tyrosine into lipophilic plant metabolites and, in rat liver extracts, the herbicide inhibited the conversion of tyrosine to homogentisic acid. The enzyme p-hydroxyphenylpyruvate dioxygenase (EC 1.13.11.27) from both Zea mays seedlings and liver tissues, was found to be subject to strong inhibition by SC-0051. Inhibition of plant quinone biosynthesis is a new mode of herbicidal action. One of the consequences of quinone depletion in plants by SC-0051. Inhibition of plant quinone biosynthesis is a new mode of herbicidal action. One of the consequences of quinone depletion in plants in vivo is apparently an indirect inhibition of phytoene desaturation. The enzyme phytoene desaturase itself, however, is not afflicted by the herbicide.

4-Hydroxyphenylpyruvate Dioxygenase↗

1,2-Cyclohexanedione modification of arginine residues in egg-white riboflavin-binding protein.

1. Reaction of 1,2-cyclohexanedione with arginine residues of egg white riboflavin-binding protein results in a loss of the binding activity. 2. In borate buffer pH 8.0, with 0.15 M cyclohexanedione, the inactivation proceeds with a pseudo-first-order rate constant 0.084 hr.-1. 3. At least 65% of lost riboflavin binding capacity can be recovered on 12 hr incubation in 0.5 M hydroxylamine pH 7.0. 4. All 5 arginine residues are modified, 2-3 of them seem to react much easier than others. 5. The correlation between modification of arginines and protein inactivation, as analyzed by kinetic and statistical methods, suggests that one of low-reactivity residues is "essential" for riboflavin binding. 6. In the holoprotein, one arginine residue is almost completely protected from 1,2-cyclohexanedione modification. 7. Riboflavin does not dissociate from holoprotein, even on prolongated incubation with the reagent. 8. The protected arginine residue seems to be located in the riboflavin binding pocket of protein macromolecule.

Arginine↗

Effect of 2,3-butanedione on human myeloperoxidase.

1. Myeloperoxidase is inhibited by various diketones that are recognized arginine reagents. 2. Although arginine residues in the enzyme were modified in both the light and the dark, enzyme inactivation occurred only in the presence of light. 3. Under conditions where diketones caused inactivation of myeloperoxidase, spectral studies indicated marked damage to the haem residues of the enzyme. 4. It was concluded that diketones serve simply as photosensitizers of visible light-induced inactivation of myeloperoxidase. 5. Studies on other haemoproteins indicated the great ease with which the presence of diketones sensitized haem residues for photodestruction.

Amino Acids↗

Stimulation of rat peritoneal mast cells enhances uptake of low density lipoproteins by rat peritoneal macrophages in vivo.

The effect of mast cell stimulation on the uptake of low density lipoproteins (LDL) by macrophages was tested in vivo in the peritoneal cavity of the rat, a site known to contain both macrophages and mast cells. The concentration of LDL in the peritoneal cavity was raised by injecting [14C]sucrose-labeled LDL ([14C]sucrose-LDL). In the treated rats, in the absence of mast cell stimulation, the uptake of LDL by the peritoneal macrophages was low. But when the peritoneal mast cells were concomitantly stimulated by intraperitoneal administration of compound 48/80, an agent known to induce mast cell degranulation, the rate of uptake of labeled LDL by macrophages rose by 7-24-fold. The reason for this rise was that exocytosed mast cell granules bound LDL and carried it into macrophages when phagocytosed. Thus, cyclohexanedione treatment of LDL, or injection of avidin along with LDL, 2 measures known to inhibit binding of LDL to mast cell granules, totally prevented the mast cell-dependent uptake of LDL. Furthermore transmission electron microscopic studies with gold-labeled LDL disclosed phagocytosis of LDL-bearing granules by the peritoneal macrophages. This is the first demonstration of a natural proteoglycan being able to enhance the rate of LDL uptake by macrophages in vivo. These observations on the relation between stimulation of mast cells and uptake of LDL by macrophages in vivo may have relevance in other sites where mast cells and macrophages coexist, such as the arterial intima.

Animals↗

Cellular glutathione and the response of adult rat heart myocytes to oxidant stress.

Freshly isolated adult rat heart myocytes contain total glutathione and reduced glutathione (GSH) at levels quite comparable to those in intact rat heart. Total glutathione can be depleted from 11 to 1 nmol/mg protein or less by treatment with cyclohex-2-ene-1-one without effect on either cellular ATP, rod-cell morphology or the integrity of the sarcolemma. Glutathione levels and redox state are not altered significantly when the Ca-tolerant, quiescent cells are subjected to a period of anoxia followed by reoxygenation. This oxygen paradox protocol results in irreversible hypercontracture of the contractile elements into an amorphous mass in the bulk of the cells, but little loss of sarcolemmal integrity. When the myocytes are subjected to an externally applied oxidant stress by the addition of either diamide or t-butylhydroperoxide, GSH is rapidly depleted with accumulation of oxidized glutathione (GSSG. On continued aerobic incubation both of these reagents promote a slower depletion of cellular ATP and a parallel hypercontracture. Cells treated with t-butylhydroperoxide, but not those with diamide, also generate increasing amounts of thiobarbituric acid reactive species as an indication of lipid peroxidation and show a parallel loss of sarcolemmal integrity. It is concluded that respiring myocytes and those subjected to the oxygen paradox do not produce oxygen radicals in sufficient amounts to displace the GSH/GSSG redox poise and depletion of myocyte glutathione per se is not detrimental to the short term survival of the cells. In addition, aerobic myocytes subjected to external oxidant stress can be damaged irreversibly by two pathways, a hypercontracture that correlates with depletion of ATP and a loss of sarcolemmal integrity that correlates with lipid peroxidation.

Animals↗

Inhibition of diacylglycerol metabolism in isolated cardiac myocytes by U-57 908 (RHC 80267), a diacylglycerol lipase inhibitor.

U-57 908 (RHC 80267) inhibited diacylglycerol (DG) lipase activity in soluble and microsomal subcellular fractions from cardiac myocytes isolated from adult rat hearts; half-maximal inhibition was observed at a concentration of 3.5 microM. Monoacylglycerol lipase activity was much less sensitive to inhibition, but U-57 908 reduced lipoprotein lipase activity in cardiac myocytes with the same sensitivity as observed for DG lipase. DG kinase activity was not inhibited by U-57 908. DG metabolism by intact cardiac myocytes was studied in incubations with a cell-permeable DG analog, [3H]-dioctanoylglycerol (diC8). DiC8 was mainly metabolized by conversion to mono-octanoylglycerol (monoC8) and glycerol (lipase pathway); much less radioactivity was incorporated into the triacylglycerol and total phospholipid fractions. U-57 908 reduced the loss of radioactivity from the exogenous diC8 substrate, with a corresponding decline in the formation of radiolabelled monoC8 and glycerol. The incorporation of radioactivity into phospholipids was slightly reduced, but triacylglycerol synthesis from diC8 was increased in the presence of U-57 908. Therefore, U-57 908 is an effective inhibitor of DG metabolism by the lipase pathway in intact cardiac myocytes.

Animals↗