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Adenylate cyclase from rat-liver plasma membrane: inhibition by mersalyl and other mercurial derivatives.

The adenylate cyclase activity from a rat liver plasma membrane preparation was inhibited by low concentrations (1-10 muM) of the mercurial diuretic mersalyl. Complete inhibition was obtained with 0.1 mM mersalyl. Similar effects were observed whether the adenylate cyclase preparation was assayed in the presence of 10 muM GTP, 0.1 muM glucagon, 10 mM NaF or without any addition. The effect of mersalyl was not due to inhibition of the regenerating system present in the incubation medium, since the effect of mersalyl was preserved and even enhanced in its absence. The inhibition brought about by mersalyl was due to both a decrease of the maximal velocity of the reaction and of the affinity of the enzyme for the substrate. It was immediate, and irreversible spontaneously, but it was reversed by the simultaneous additions of 2-mercaptoethanol, in a dose-dependent fashion. Other -SH reagents were found to have an effect equal to, or lower than, that of mersalyl. Mersalyl had no effect upon Mg2+-ATPase, although it inhibited the (Na+-K+) activated ATPase. Since mersalyl is known to be a 'non-penetrant' reagent, it is postulated that a catalytically important, mercurial-sensitive, part of adenylate cyclase is at the surface of the plasma membrane. This view is supported by the following facts: (a) mersalyl acted with a similar dose-response curve upon an intact as well as a detergent-dispersed cyclase preparation while no effect was observed upon a solubilized Mg2+-ATPase preparation; (b) a covalent p-chloromercuribenzoate-Sephadex preparation (but not its supernatant) inhibited the cyclase from intact membranes. It is proposed that mercurial derivatives, by their relative specificity of action (no effect on Mg2+-ATPase), can serve as useful probes in the elucidation of the multicomponent structure of the cyclase system.

Adenosine Triphosphatases↗

Hepatobiliary transport of the anionic organomercury compound (mersalyl) is carrier mediated.

The hepatobiliary excretion of the anionic organic mercury compound (mersalyl) was studied in the isolated perfused rat liver and in isolated rat liver plasma membrane vesicles. In the isolated perfused liver, mersalyl is immediately taken up from the perfusion medium and concentratively excreted into bile. Uptake is characterized by saturation kinetics (S)0.5 = 20 microM, Vmax = 117 nmoles/min/g liver, cooperatively of mersalyl binding sites, stimulation by extracellular sodium and temperature dependence. Uptake of mersalyl into basolateral membrane vesicles also exhibits characteristics of a carrier mediated transport: saturation kinetics (S)0.5 = 28 microM, Vmax = 1.6 nmoles/min/mg protein, dependence on extravesicular sodium, cooperativity of mersalyl binding sites, temperature dependence and transstimulation by intravesicular non-radioactive mersalyl. Uptake was inhibited by alpha-naphthylacetic acid and mercapto group reagents, indicating involvement of mercapto groups on the carrier and a binding site for carboxylic anions. Data from the isolated perfused liver and from isolated basolateral vesicles indicate that mersalyl uptake into the liver is carrier mediated. Uptake mechanism and driving forces appear analogous to those for the uptake of chemically related compounds such as taurocholic acid. Therefore it is speculated that mersalyl may be transported by carrier molecules which apparently accept numerous chemically unrelated compounds.

Animals↗

Mersalyl, a sulfhydryl reagent, alters the solubility of myosin and cytoskeletal proteins of human platelets.

We have examined the effect of a mercurial sulfhydryl reagent, mersalyl, on the protein composition of cytoskeletons by SDS-polyacrylamide gel electrophoresis after treatment of human platelets with Triton X-100 (Triton) containing mersalyl and Ca2+, and have found that mersalyl alters the protein composition of cytoskeletons in a Ca2+-dependent manner. At 1 X 10(-7) M Ca2+, 0.2 mM mersalyl, which represents approximately the equivalent amount of sulfhydryl of platelet suspensions that we used, specifically made myosin insoluble. The amount of myosin in Triton-mersalyl residues was increased by increasing the Ca2+ concentration of Triton lysis buffer. Actin-binding protein, 235 kDa polypeptide and alpha-actinin-like protein were decreased in Triton residues by mersalyl at Ca2+ concentrations less than 1 X 10(-7) M, while these polypeptides in Triton residues were increased by mersalyl in the presence of more than 2 X 10(-7) M Ca2+. Electron microscopic study revealed the presence of thick filaments with an appearance similar to that of the thick filaments of platelet myosin. Thus, the modification with mersalyl of sulfhydryls of platelet polypeptides along with changes in Ca2+ concentrations within a physiological range leads to changes in solubility of, and filament formation of, myosin, actin and other cytoskeletal proteins.

Actomyosin↗

Effect of mersalyl on mitochondrial Mg++ flux.

The mercurial mersalyl has little effect either on rapid Mg++ binding by isolated rat liver mitochondria or on the total Mg++ content of these organelles measured after 0.75 min of incubation at 20 degrees C. The data do not support the previous suggestion that the increased permeability to K+ of mitochondria treated with mersalyl results from release of endogenous Mg++. An increased pH-dependence of unidirectional Mg++ flux into respiring rat liver mitochondria is suggested to arise indirectly from inhibition by mersalyl of pH shifts associated with exchanges of endogenous phosphate. In addition, mersalyl appears to have a stimulatory effect on Mg++ influx. Mersalyl also increases the average rate of unidirectional efflux of endogenous Mg++. The stimulatory effects of mersalyl on Mg++ flux are similar to, although quantitatively less than, the previously reported effects of mersalyl on mitochondrial K+ flux.

Animals↗

The effect of mersalyl on inositol trisphosphate receptor binding and ion channel function.

A number of thiol-reactive agents induce repetitive Ca2+ spiking in cells by a mechanism thought to involve sensitization of the inositol 1,4,5-trisphosphate receptor (IP3R). To further define the basis of this interaction, we have studied the effect of several thiol-reactive agents on [3H]IP3 binding, IP3-gated channel activity, and conformation of the IP3R in membranes from hepatocytes, cultured WB rat liver epithelial cells, and cerebellum microsomes. At 4 degrees C, the organomercurial thiol-reactive agent mersalyl markedly stimulates (3-4fold) [3H]IP3 binding to permeabilized hepatocytes. The closely related molecule, thimerosal, has only a small stimulatory effect under these conditions, and GSSG or N-ethylmaleimide are without effect. The stimulatory effect of mersalyl was associated with a decrease in Kd of the IP3R with no change in Bmax. Mersalyl was without effect on detergent-solubilized hepatocyte binding sites or on the [3H]IP3 binding activity of cerebellum microsomes. In contrast to thimerosal, which potentiates IP3-mediated Ca2+ release, mersalyl blocked IP3-gated Ca2+ channels. Mersalyl pretreatment of WB membranes altered the pattern of immunoreactive receptor fragments generated upon subsequent cleavage of the receptor with proteinase K. This effect was not reproduced by thimerosal and was also not observed in experiments on cerebellum microsomes. We conclude that the WB cell and brain IP3 receptors are differently regulated by modification of thiol groups. Reaction of the WB cell IP3 receptor with mersalyl alters its conformation and modifies the accessibility of sites on the protein that are cleaved by proteinase K. In the presence of mersalyl, the receptor has high affinity for IP3 but is inactive as a Ca2+ channel. This contrasts with the high affinity receptor/active Ca2+ channel induced by thimerosal, suggesting that even closely related thiol agents may interact at different thiol groups.

Animals↗

Phosphate carrier of liver mitochondria: the reaction of its SH groups with mersalyl, 5,5'-dithio-bis-nitrobenzoate, and N-ethylmaleimide and the modulation of reactivity by the energy state of the mitochondria.

The inhibitory effect of three SH reagents, mersalyl, 5,5'-dithio-bis-nitrobenzoate, and N-ethylmaleimide, on Pi transport in rat liver mitochondria was investigated under a variety of conditions. Mersalyl binds at room temperature with both high (Kd less than 10 microM) and low affinity to mitochondria. Inhibition of Pi transport by mersalyl goes in parallel with titration of the high-affinity sites, inhibition being complete when 3.5-4.5 nmol/mg protein is bound to the mitochondria. At concentrations of mersalyl equal to or higher than 10 microM, inhibition of Pi transport occurs in less than 10 sec. At concentrations of mersalyl lower than 10 microM, the rate of reaction with the Pi carrier is considerably decreased. At a concentration of 100 microM, 5,5'-dithio-bis-nitrobenzoate fully inhibits Pi transport in about 1 min at room temperature. Nearly total inhibition is attained when as little as 40-50 pmol/mg is bound to mitochondria. Upon incubation longer than 1 min, additional SH groups, not belonging to the Pi carrier, begin to react. The uncoupler carbonyl cyanide p-trifluoromethoxyphenylhydrazone decreases the rate of reaction of mersalyl, 5,5'-dithio-bis-nitrobenzoate, and N-ethylmaleimide with the Pi carrier. Preincubation with Pi has a similar effect. We propose that both carbonyl cyanide p-trifluoromethoxyphenylhydrazone and Pi act by increasing the acidity of the mitochondrial matrix. Protonation of the Pi carrier at the matrix side would change the accessibility of its SH groups at the outer surface of the inner membrane. This might correspond to a membrane-Bohr effect, possibly related to the opening of a gating pore in the Pi carrier.

Animals↗

Mersalyl is a novel inducer of vascular endothelial growth factor gene expression and hypoxia-inducible factor 1 activity.

In response to hypoxia, mammalian cells express multiple gene products [including erythropoietin (EPO) and vascular endothelial growth factor (VEGF)] that serve to increase O2 delivery, as well as glucose transporters and glycolytic enzymes (such as enolase 1) that allow metabolic adaptation to decreased O2 availability. Increased transcription of the genes encoding these proteins in hypoxic cells is mediated by hypoxia-inducible factor 1 (HIF-1), a basic helix-loop-helix transcription factor. Expression of HIF-1 and downstream genes can also be induced by exposure of cells to divalent metals (such as CoCl2) or iron chelators [such as desferrioxamine (DFO)]. We report here that the organomercurial compound mersalyl induced expression of VEGF and enolase 1 mRNA, as well as HIF-1 activity, in cultured cells. Expression of reporter genes containing hypoxia response elements from the EPO and VEGF genes was also induced by mersalyl treatment. However, mersalyl inhibited endogenous EPO mRNA expression induced by hypoxia, CoCl2, or DFO. In cells lacking expression of the insulin-like growth factor-1 receptor, mersalyl did not induce HIF-1 activity or VEGF mRNA expression, whereas induction by hypoxia, CoCl2, or DFO was unaffected. The mitogen-activated protein kinase kinase inhibitor PD098059 markedly reduced induction of HIF-1 by mersalyl but not by hypoxia. These results indicate that mersalyl induces expression of HIF-1 and a subset of hypoxia-inducible genes by a mechanism, involving the insulin-like growth factor-1 receptor and mitogen-activated protein kinase activity, that is distinct from mechanisms of induction by hypoxia, CoCl2, or DFO.

Animals↗

Reaction of mersalyl with mitochondrial proteins under native and denaturing conditions as exemplified by the identification and isolation of the phosphate carrier.

Pig heart mitochondria were incubated with [203Hg]mersalyl and the radioactive pattern was analyzed by fluorography after dodecyl sulfate gel electrophoresis. No differences in the radioactivity distribution were found after labeling with various mersalyl concentrations, at different pH and after labeling in the native or dodecyl sulfate-dissociated state of mitochondria. A redistribution of [203Hg]mersalyl between various proteins in the presence of dodecyl sulfate could directly be demonstrated by mixing labeled membranes with unlabeled matrix proteins, as well as by comparison of the radioactivity patterns of whole mitochondria labeled with irreversibly reacting N-([2-3H]ethyl)maleimide and reversibly binding [203Hg]mersalyl. From these data it is concluded that under native conditions mersalyl is principally bound to the phosphate carrier protein, whereas during dissociation in dodecyl sulfate the organomercurial is redistributed and mainly attached to the ADP/ATP-carrier protein.

Animals↗

Cellular mechanism of stimulation of renin secretion by the mercurial diuretic mersalyl.

The aim of the present study was to elucidate the cellular mechanism by which the mercurial diuretic mersalyl stimulates renin secretion in rabbit renal cortical slices in vitro. The stimulatory effect of mersalyl on renin secretion was rapid, reversible and concentration dependent. The stimulation was not dependent on the presence of ions such as Na+, Cl- and Ca++, and it was unaffected by inhibitors of Na+/K+/2Cl- cotransport, such as bumetanide and furosemide. However, the stimulation was blocked and reversed by thiols, such as L-cysteine and dithiothreitol. Furthermore, the maximal stimulatory effect of mersalyl on renin secretion was not additive to that produced by the non-diuretic mercurial sulfhydryl reagent P-chloromercuriphenylsulfonate nor to that produced by the non-mercurial diuretic sulfhydryl reagent, ethacrynic acid. These results support the hypothesis that mersalyl stimulates renin secretion by forming a reversible mercaptide bond with sulfhydryl groups, located perhaps on the plasma membrane of juxtaglomerular cells. These particular sulfhydryl groups appear to have no functional role in the diuretic action of mersalyl.

4-Chloromercuribenzenesulfonate↗

Mitochondrial membrane protein thiol reactivity with N-ethylmaleimide or mersalyl is modified by Ca2+: correlation with mitochondrial permeability transition.

The content of mitochondrial membrane protein thiol groups accessible to react with the monofunctional thiol reagents mersalyl or N-ethylmaleimide (NEM) was determined using Ellman's reagent. Deenergized mitochondria incubated in the presence of Ca2+ (0-500 microM) undergo a very significant decrease in the content of membrane protein thiols accessible to NEM, and an increase in the content of thiols accessible to mersalyl. This process is time-dependent and inhibited by Mg2+, ruthenium red and ADP, but not by cyclosporin A. This suggests that Ca2+ binding to the inner mitochondrial membrane promotes extensive alterations in the conformation of membrane proteins that result in location changes of thiol groups. The relationship between these alterations and mitochondrial membrane permeability transition was studied through the effect of NEM and mersalyl on mitochondrial swelling induced by Ca2+ plus t-butyl hydroperoxide (t-bOOH) or Ca2+ plus the thiol cross-linkers 4,4'-diisothiocyanatostilbene-2,2'-disulfonic acid (DIDS) or phenylarsine oxide (PhAsO). We observed that the hydrophobic thiol reagent NEM inhibits the effects of t-bOOH, DIDS and PhAsO, while the hydrophilic thiol reagent mersalyl inhibits only the effect of DIDS. Permeability transition in all the situations studied is accompanied by a significant decrease in the total membrane protein thiol content. In addition, mitochondrial membrane permeabilization induced by PhAsO is inhibited by EGTA, but not by ruthenium red. This result suggests that PhAsO leads to permeability transition through a mechanism independent of intramitochondrial Ca2(+)-induced alterations of thiol group reactivity, but dependent on Ca2+ binding to an extramitochondrial site. This site is sensitive to extramitochondrial Ca2+ concentrations in range of 1-50 microM.

Animals↗

Mersalyl: a diuretic with antiviral properties.

Mersalyl (Salyrgan), an organic mercurial diuretic, was tested against human and animal viruses with in vivo model infections in mice and tissue culture systems. Mersalyl was active against coxsackieviruses A21 and B1 in mice if administered intraperitoneally immediately after infection. No effect was observed if intraperitoneal treatment was delayed 1 or 2 h postinfection, or if treatment was administered either subcutaneously or per os. Topical treatment with a 5% aqueous solution of mersalyl produced a statistically significant effect against herpes simplex dermatitis in mice but the substance was inactive against systemic infections in mice with herpes simplex as well as Columbia SK, influenza, Semliki Forest, and Sendai viruses. Contact inactivation of coxsackieviruses A21 and B1 and herpes simplex virus was observed, but mersalyl was inactive in tissue culture against coxackieviruses A21 and B1, herpes simplex, influenza, rhinovirus, Semliki Forest, Sendai, and vaccinia viruses.

Animals↗

Further study on the effect of mersalyl, an organic mercurial, on relaxing response of a molluscan smooth muscle to monoamines.

The effect of mersalyl on the relaxation of catch by various monoamines was studied in the anterior byssal retractor muscle of Mytilus. As has already been reported, mersalyl blocked the relaxing response to indoleamines but not block that to catecholamines. The relaxations in response to catecholamine-related compounds (dopa, octopamine, tyramine, phenylephrine, beta-phenylethylamine and phenylethanolamine) and hexylamine were, however, antagonized more or less effectively with mersalyl. It was suggested that the catecholamine-related compounds and hexylamine can act on relaxing nerve endings to increase neurotransmitter serotonin in the junctional clefts, and mersalyl antagonizes the relaxation in response to these compounds by blocking the serotonin.

Animals↗

Studies on the molecular mechanism of mersalyl and 4-aminophenylmercuric acetate re-activation of trypsin-thiol complexes.

1. Trypsin has been reacted with dithiothreitol and with a naturally occurring thiol-containing trypsin inhibitor to form enzyme-inhibitor complexes. This complex formation is known to be via a reversible intermolecular disulphide linkage. 2. These latent forms of trypsin have been re-activated with mersalyl [N-(O-carboxymethylsalicyloyl)-3-hydroxymercuric-2-methoxypropylamine], 4-aminophenylmercuric acetate and with cystine. 3. Active-site titration analysis of trypsin in the presence of incremental additions of dithiothreitol demonstrated the simultaneous inhibition and modification of the enzyme active site, demonstrating a direct involvement of a significant disulphide controlling the conformation of the active site of the enzyme. 4. Mersalyl addition to the dithiothreitol-reduced trypsin resulted in a regain of enzymic activity and a corresponding regain of availability of the active sites for titration. 5. Mersalyl and 4-aminophenylmercuric acetate were shown to re-activate the trypsin-inhibitor complex. 6. A molecular mechanism for the organomercurial re-activation of latent enzymes of this particular type (involving disulphide exchange) has been proposed.

Binding Sites↗

Effect of mersalyl at cholinoceptive sites.

The effects of an organic mercurial compounds, mersalyl, were tested at the muscarinic and nicotinic sites (the smooth muscles, frog heart and frog rectus muscle) in vitro. Mersalyl had an antimuscarinic effect in the smooth muscle tissues and in the myocardium. On the frog rectus muscle, mersalyl had some potentiating effect on acetylcholine response.

Animals↗

The reconstituted ADP/ATP carrier can mediate H+ transport by free fatty acids, which is further stimulated by mersalyl.

In a reconstituted system, the participation of the ATP/ADP carrier (AAC) in the free fatty acid (FFA)-induced proton transport was demonstrated (i) by direct measuring of the proton transport through the membranes of AAC proteoliposomes and (ii) by monitoring of the transmembrane potential delta psi in AAC-cytochrome-c oxidase (COX)-coreconstituted proteoliposomes. FFA increased the initial rate of proton transport in AAC proteoliposomes and decreased delta psi in AAC-COX proteoliposomes. Inhibitors of AAC suppressed the effects of FFA. Without AAC or with inactive AAC, FFA cannot maintain proton leakage through the membrane. In these cases, even a small increase of delta psi was induced by FFA. These results demonstrate for the first time with purified components a participation of AAC in FFA-induced proton transport supporting an earlier suggestion (Skulachev, V.P. (1991) FEBS Lett. 294, 158-162). Mersalyl treatment of the AAC-COX proteoliposomes resulted in an increase of the AAC-mediated protonophoric action of FFA. Mersalyl also sensitized the protonophoric action of the FFA against nucleotides so that even guanine nucleotides, which are inactive in transport, become inhibitory. The effect of mersalyl is rationalized in terms of a specific interaction with cysteine 159 being attracted as anion by surrounding positive charges. This might open a gate similarly as suggested for eosin 5-maleimide interaction (Majima, E., Koike, H., Hong, Y.-M., Shinohara, Y., and Terada, H. (1993) J. Biol. Chem. 268, 22181-22187) and, thus, transform the AAC into undirectional transport mode.

Adenosine Triphosphate↗