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At least 19 recordsLinked to original sources

Interaction of adenine nucleotides, UTP and suramin in mouse vas deferens: suramin-sensitive and suramin-insensitive components in the contractile effect of ATP.

Effects of various nucleotides, nucleosides and noradrenaline on smooth muscle tension were studied in the isolated mouse vas deferens. alpha, beta-Methylene-ATP, ATP gamma S, noradrenaline, ATP and UTP elicited contraction, with potency decreasing in that order; there was no contractile response to adenosine or uridine (up to 100 mumol/l). Prolonged incubation with alpha, beta-methylene-ATP (concentration increased stepwise from 0 to 15 mumol/l) selectively reduced contractions induced by ATP and UTP but not those induced by noradrenaline, and there was cross-tachyphylaxis between ATP and UTP. Suramin (10-300 mumol/l) did not alter the response to noradrenaline but shifted the concentration-response curves for alpha, beta-methylene-ATP, ATP gamma S, UTP and lower concentrations of ATP (0.1-1 mumol/l) to the right. The pA2-values of suramin were 5.2 against alpha, beta-methylene-ATP, 4.8 against ATP gamma S, 5.1 against UTP and 5.4 against lower concentrations of ATP. The effects of higher concentrations of ATP were largely resistant to suramin. The results indicate that the mouse vas deferens possesses contraction-mediating smooth muscle P2x-receptors. UTP also acts at this receptor, and there is no evidence for a separate UTP receptor. The selective inhibition of nucleotide- but not noradrenaline-induced contractions by suramin confirms the view that suramin is a selective P2-antagonist. The resistance against suramin of part of the effect of ATP suggests that ATP activates a suramin-insensitive site in addition to the P2x-receptor.

Adenine Nucleotides↗

Activation of the skeletal muscle ryanodine receptor by suramin and suramin analogs.

Ca2+ release from skeletal muscle sarcoplasmic reticulum is activated by adenine nucleotides and suramin. Because suramin is known to interact with ATP-binding enzymes and ATP receptors (P2-purinergic receptors), the stimulation by suramin has been postulated to occur via the adenine nucleotide-binding site of the ryanodine receptor/Ca2+-release channel. We tested this hypothesis using suramin and the following suramin analogs: NF037, NF018, NF023, and NF007. The suramin analogs stimulate the binding of [3H]ryanodine binding to sarcoplasmic reticulum membranes with the following rank order of potency: suramin (EC50 = approximately 60 microM) > NF037 (EC50 = approximately 150 microM) > NF018 > NF023 > NF007. The suramin-induced stimulation occurs via a myoplasmic binding site on the ryanodine receptor as confirmed by binding experiments and single-channel recordings with the purified protein. This binding site is different than that for ATP, a conclusion that is supported by the following observations: (i) Suramin stimulates the association rate and inhibits the dissociation rate of [3H]ryanodine, whereas ATP analogs increase only the on-rate. (ii) In the presence of suramin but not of ATP analogs, [3H]ryanodine binding is resistant to the inhibitory effect of millimolar Mg2+ and Ca2+. (iii) ATP analogs and suramin have an additive effect on [3H]ryanodine binding. (iv) Affinity labeling of the purified ryanodine receptor with 2',3'-dialdehyde [alpha-32P]ATP or after in situ oxidation of [gamma-32P]ATP is not affected by suramin. Thus, our results show that suramin acts as a direct and potent stimulator of the ryanodine receptor but that this action is mediated via a binding site different from that for adenine nucleotides.

Adenine Nucleotides↗

Suramin-induced weakness from hypophosphatemia and mitochondrial myopathy. Association of suramin with mitochondrial toxicity in humans.

BACKGROUND: Suramin is an antiparasitic drug being evaluated as an antitumor compound. Suramin therapy commonly causes weakness and is known to cause neuropathy. Two potential causes of suramin-induced muscular weakness are described. METHODS: Suramin was administered to 15 patients with advanced cancer as part of a Phase I study. Weekly dosing was adjusted to achieve mean plasma concentrations of 210 micrograms/ml. RESULTS: Serum phosphate levels fell significantly (P < 0.0001) in all 15 patients on the 42nd day of treatment from a pretreatment average of 4.0 mg/dl (standard deviation [SD] +/- 0.37) to 3.0 mg/dl (SD +/- 0.20). Absolute hypophosphatemia developed in two patients with more prolonged suramin treatment due to Fanconi's syndrome. The patient who received the largest amount of suramin (19.2 g over 14 weeks) had severe proximal muscle weakness despite 6 weeks of effective phosphate repletion. A muscle biopsy was performed, which demonstrated markedly decreased cytochrome c oxidase activity by muscle histochemistry and biochemistry. Electron microscopy revealed subsarcolemmal collections of abnormal mitochondria. This mitochondrial myopathy resolved clinically 7 weeks after discontinuing suramin. CONCLUSIONS: This report indicates that suramin is associated with hypophosphatemia of Fanconi's syndrome and a mitochondrial myopathy. The clinical combination of mitochondrial myopathy and Fanconi's syndrome is similar to descriptions of congenital mitochondrial cytochrome c oxidase deficiency of de Toni-Fanconi-Debré syndrome. These findings in humans correlate with the authors' in vitro observations that suramin causes toxic mitochondrial changes, indicating a mechanism of suramin's toxicity and possibly its antitumor effect.

Electron Transport Complex IV↗

Inhibition of proteinase 3 (PR3) by suramin and fetal calf serum (FCS): effect of PR3 and suramin on Chinese hamster ovary cells (CHO-cells).

BACKGROUND: Proteinase 3 (PR3) is a lysosomal protease that is stored in azurophilic granules neutrophilic granulocytes and monocytes. A number of inhibitors for this proteinase are reported. Comprehensive studies on the inhibitory effect of suramin and heat treated fetal calf serum (deltaFCS) on PR3 have not been reported. It has been reported that PR3 is able to destroy the cytoskeletal integral proteins, but we have not find any reports which showed the effect of this protease on Chinese hamster ovary cells (CHO-cells) in culture medium. Suramin has proven to be useful as an antitumor drug, but there was not any report on the effect of suramin on CHO-cells. METHODS: The effects of various concentrations of deltaFCS (from 0.5% up to 10%) and suramin (from 0.8 microM up to 100 microM) on PR3 and different concentrations of suramin (from 0.8 microM up to 1000 microM) on CHO-cells were investigated. Data analysis were performed by, Kolmogorov-Smirnov test, ANOVA test and Tukey HSD post tests. RESULTS: Results showed that deltaFCS and suramin have an inhibitory effect on PR3 and these effects increased with increasing the concentration significantly (p < 0.01). PR3 with the concentration of 2.2 Unit/ml has no effect on CHO-cells. Although suramin with the concentration of less than 125 microM cell growth retarded for only a few hours, but with the concentration of 125 to 250 microM inhibit the cell growth for a week, and after that cells gain normal growth gradually. Suramin with concentration of more than 500 microM inhibited the cell growth completely. CONCLUSIONS: Although suramin reversibly inhibit the PR3 activity but in concentration of less than 250 microM it had no long-term effect on CHO-cells. Therefore it can be used in the investigation of proteases. There were unknown components in deltaFCS, which cause the inhibition of PR3 activity. This finding is very important in PR3 production in culture medium. However CHO-cells are resistant to PR3 and suramin in low concentration.

Animals↗

Suramin therapy for patients with symptomatic hormone-refractory prostate cancer: results of a randomized phase III trial comparing suramin plus hydrocortisone to placebo plus hydrocortisone.

PURPOSE: Suramin is a novel agent that has demonstrated preliminary evidence of antitumor activity in hormone-refractory prostate cancer (HRPC). A prospective randomized clinical trial was designed to evaluate pain and opioid analgesic intake as surrogates for antitumor response in HRPC patients with significant, opioid analgesic-dependent pain. PATIENTS AND METHODS: A double-blind, placebo-controlled trial randomized patients to receive a 78-day, outpatient regimen of either suramin plus hydrocortisone (HC, 40 mg/d) or placebo plus HC. Treatment assignment was unblinded when either disease progression or dose-limiting toxicity occurred; placebo patients were allowed to cross-over to open-label suramin plus HC. In addition to pain and opioid analgesic intake, prostate-specific antigen (PSA) response, time to disease progression, quality of life, performance status, and survival were compared. RESULTS: Overall mean reductions in combined pain and opioid analgesic intake were greater for suramin plus HC (rank sum P =.0001). Pain response was achieved in a higher proportion of patients receiving suramin than placebo (43% v 28%; P =.001), and duration of response was longer for suramin responders (median, 240 v 69 days; P =.0027). Time to disease progression was longer (relative risk = 1.5; 95% confidence interval, 1.2 to 1.9) and the proportion of patients with a greater than 50% decline in PSA was higher (33% v 16%; P =.01) in patients who received suramin. Neither quality of life nor performance status was decreased by suramin treatment, and overall survival was similar. Most adverse events were of mild or moderate intensity and were easily managed medically. CONCLUSION: Outpatient treatment with suramin plus HC is well tolerated and provides moderate palliative benefit and delay in disease progression for patients with symptomatic HRPC.

Adult↗

Liposomal entrapment of suramin(II): interaction of suramin with phospholipids of various chain lengths.

Previously, we reported that the entrapment of suramin in dipalmitoylphosphatidylcholine (DPPC, C16) multilamellar liposomes ranged from 25% to 65% and the addition of 30-50 mol% cholesterol (CHL) greatly reduced entrapment. Entrapment of small molecules similar to suramin, disodium 1,5-naphthalenedisulfonic acid (5.5%) and sodium 3-amino-2,7-naphthalenedisulfonic acid (1.2%), were very low. In the present study, the entrapment and interaction of suramin with dilauroylphosphatidylcholine (DLPC, C12), dimyristoylphosphatidylcholine (DMPC, C14), and distearoylphosphatidylcholine (DSPC, C18) liposomes was investigated. DLPC and DMPC showed 2-3-fold higher entrapment percentages (95.1% and 74.2%, respectively) than DPPC (37%). However, the entrapment with DSPC (29%) was about 25% lower than DPPC. Adding 50 mol% cholesterol greatly reduced suramin entrapment for all phospholipids. The entrapment of polysulfonated dyes such as Evans blue, Direct blue 1, or Trypan blue, which are structurally similar to suramin, was found to be in the same order of DLPC > DMPC > DPPC > DSPC. Differential scanning calorimetry of aqueous dispersions of DLPC and DMPC with suramin showed more apparent interaction than for DPPC and DSPC. These results suggest that a large portion of the associated suramin and other polysulfonated compounds results from binding to the surface of the phospholipid bilayer or intercalation into the liposomal bilayer. The phospholipid chain length effect on entrapment may be due to the lower net van der Waals interaction between hydrocarbon chains for shorter acyl chains which also increases the bilayer intermolecular spacing. Such effects could then increase the ability of suramin to interact with individual phospholipid molecules.

Azo Compounds↗

The effects of suramin on human adrenocortical cells in vitro: suramin inhibits cortisol secretion and adrenocortical cell growth.

Suramin, a polycyclic and polyanionic drug, has been successfully used in the therapy of inoperable adrenocortical cancer. The present study was undertaken to investigate the effects of suramin on normal human adrenocortical cells in primary monolayer cultures. The proliferation and the basal, as well as the adrenocorticotropin (ACTH)-stimulated, cortisol secretion of these cells were studied. The data show that suramin decreases basal, as well as ACTH-stimulated, cortisol secretion in a dose-dependent manner (P less than .05 from 300 mumol/L upward). At a suramin concentration of 3 mmol/L, cortisol secretion was inhibited by 70% +/- 4% in ACTH-stimulated cells and by 42% +/- 6% in unstimulated cells. The proliferation of adrenocortical cells in response to fetal calf serum was also inhibited by suramin at concentrations from 300 mumol/L upward, maximal suppression (71% +/- 6%, P less than .01) being observed at a concentration of 10 mmol/L. Both inhibition of cortisol secretion and inhibition of adrenocortical cell proliferation were not due to toxicity of the compound, as could be shown by restimulation of cortisol secretion in suramin-treated cells with ACTH. Our results indicate that suramin exerts an inhibitory influence on the cortisol secretion and on the proliferation of normal human adrenocortical cells. Suramin may not only be useful in the treatment of adrenocortical cancer, but may also have an ameliorative effect on other malignant conditions with augmented steroid hormone production, resistant to conventional forms of therapy.

Adrenal Cortex↗

Co-localization of suramin and serum albumin in lysosomes of suramin-treated human colon cancer cells.

Suramin is a polysulfonated compound currently under investigation for the treatment of various types of cancer. Pharmacokinetic studies from clinical trials in humans have shown that most of the circulating drug is associated with serum albumin. The objective of the present study was to investigate the intracellular localization of suramin and serum albumin in human colon cancer cells (HT-29-D4) upon suramin treatment. For this purpose, combined gold labeling and autoradiographic methods were performed on HT-29-D4 cells grown in serum free medium containing both [3H]suramin and colloidal gold-albumin. These morphological experiments demonstrated for the first time that suramin and serum albumin were co-localized in the same cellular compartment (i.e. the lysosomal system) of the suramin-treated HT-29-D4 cells. The albumin-directed targeting of suramin in lysosomes may allow the drug to inhibit the activity of several lysosomal hydrolases, resulting in a lysosomal storage disorder.

Antineoplastic Agents↗

Suramin therapy in AIDS and related disorders. Report of the US Suramin Working Group.

Suramin sodium is a reverse transcriptase inhibitor with in vitro activity against the human immunodeficiency virus (HIV), the causative agent of acquired immunodeficiency syndrome (AIDS). Ninety-eight patients with AIDS manifest as opportunistic infections (n = 38), AIDS with Kaposi's sarcoma (n = 38), AIDS-related complex (n = 20), or AIDS-associated non-Hodgkin's lymphoma (NHL) (n = 2) were treated with suramin sodium at 0.5, 1.0, or 1.5 g/wk for six weeks followed by maintenance therapy with 0.5 or 1.0 g/wk. Of 72 patients who were HIV culture positive before therapy and were assessable for subsequent HIV culture 40% became culture negative during treatment, with no apparent correlation between virus recovery and serum suramin concentration. No immunologic improvement was noted. One complete clinical remission was noted in a patient with Kaposi's sarcoma and stage IV NHL. Seven minor clinical responses were also noted. Toxic reactions were generally reversible, and included fever (78%), rash (48%), malaise (43%), nausea (34%), neurologic symptoms (33%), and vomiting (20%). Suramin-induced neutropenia was noted in 26%, thrombocytopenia in 12%, a serum creatinine level of 180 mumol/L or higher (greater than or equal to 2.1 mg/dL) in 12%, liver dysfunction in 14%, and clinical and/or laboratory evidence of adrenal insufficiency in 23%. Sixteen patients died while receiving suramin or within three weeks of discontinuation of drug therapy due to infection (n = 6), hepatic failure (n = 3), pulmonary Kaposi's sarcoma (n = 2), AIDS encephalitis (n = 2), AIDS-associated NHL (n = 1), iatrogenic hemo-pneumothorax (n = 1), or pulmonary disease of uncertain etiology. Suramin as currently administered cannot be recommended as effective therapy for AIDS.

AIDS-Related Complex↗

Inhibition of granulocyte-macrophage colony-stimulating factor (GM-CSF) activity by suramin and suramin analogues is correlated to interaction with the GM-CSF nucleotide-binding site.

Suramin and suramin analogues strongly inhibit both nucleotide interaction with the nucleotide-binding site of granulocyte-macrophage colony-stimulating factor (GM-CSF) and bioactivity of the molecule as assessed by competition photoaffinity labeling and cell proliferation assay, respectively. The half-maximal inhibition of cell proliferation by suramin occurs at 68 +/- 2.5 microM; three suramin analogues achieved comparable activity. The degree of competitive inhibition of nucleotide-binding by these compounds and the inhibition of GM-CSF bioactivity are correlated such that the compounds show similar rank-order by both of these methods. The strong interaction of suramin and related compounds with the nucleotide-binding site may mimic nucleotide-mediated inhibition of GM-CSF bioactivity and may be an important mechanism by which suramin acts as a pharmacological anti-growth factor agent.

Binding Sites↗

Differential uncoupling of A1 adenosine and D2 dopamine receptors by suramin and didemethylated suramin (NF037).

Suramin analogues uncouple two Gi/Go-coupled receptors, the D2 dopamine receptor in rat striatum and the A1 adenosine receptor in human cerebral cortex, with distinct structure-activity relations. This discrepancy may reflect true differences in the affinity of the analogues for specific receptor/G protein complexes or may be attributable to differences in species or in the tissue source used. We addressed this question by using human embryonic kidney 293 cells that stably express the human A1 and rat A1 receptor and the human D2 receptor. Suramin is 10-fold more potent than its didemethylated analogue NF037 in inhibiting the interaction between G proteins and the rat A1 or human A1 receptor; in contrast, both compounds are equipotent in uncoupling the D2 receptor. These differences are observed regardless of whether (1) inhibition of high affinity agonist binding to the receptors or (2) agonist-stimulated GTPgammaS binding is used as readout, (3) the receptors are allowed to interact with the G protein complement in human embryonic kidney 293 cell membranes, or (4) the receptors are forced to interact with a defined G protein alpha subunit (i.e., after reconstituting pertussis toxin-treated membranes with exogenous rGi alpha-1). The apparent affinity of suramin depends in a linear manner on receptor occupancy, which shows that suramin and the receptor compete for the G protein. Finally, the affinity of the receptors for rGi alpha-1 (human A1 > rat A1 > human D2) is inversely correlated with the potency of suramin in uncoupling ternary complexes formed by these receptors and thus determines the selectivity of the suramin analogues for specific receptor/G protein tandems.

Animals↗

Suramin and suramin analogues inhibit merozoite surface protein-1 secondary processing and erythrocyte invasion by the malaria parasite Plasmodium falciparum.

Malarial merozoites invade erythrocytes; and as an essential step in this invasion process, the 42-kDa fragment of Plasmodium falciparum merozoite surface protein-1 (MSP142) is further cleaved to a 33-kDa N-terminal polypeptide (MSP133) and an 19-kDa C-terminal fragment (MSP119) in a secondary processing step. Suramin was shown to inhibit both merozoite invasion and MSP142 proteolytic cleavage. This polysulfonated naphthylurea bound directly to recombinant P. falciparum MSP142 (Kd = 0.2 microM) and to Plasmodium vivax MSP142 (Kd = 0.3 microM) as measured by fluorescence enhancement in the presence of the protein and by isothermal titration calorimetry. Suramin bound only slightly less tightly to the P. vivax MSP133 (Kd = 1.5 microM) secondary processing product (fluorescence measurements), but very weakly to MSP119 (Kd approximately 15 mM) (NMR measurements). Several residues in MSP119 were implicated in the interaction with suramin using NMR measurements. A series of symmetrical suramin analogues that differ in the number of aromatic rings and substitution patterns of the terminal naphthylamine groups was examined in invasion and processing assays. Two classes of analogue with either two or four bridging rings were found to be active in both assays, whereas two other classes without bridging rings were inactive. We propose that suramin and related compounds inhibit erythrocyte invasion by binding to MSP1 and by preventing its cleavage by the secondary processing protease. The results indicate that enzymatic events during invasion are suitable targets for drug development and validate the novel concept of an inhibitor binding to a macromolecular substrate to prevent its proteolysis by a protease.

2-Naphthylamine↗

Stability of suramin in aqueous solution; possible implications for the search for suramin metabolites in patients.

The stability of an aqueous solution of suramin has been determined. The only degradation product detectable by HPLC was the amine precursor 2. The decomposition kinetics of suramin at different temperatures are shown. Because of first order kinetics the Arrhenius equation could not be used to evaluate the decomposition data. A good correlation was obtained between the reaction constants and the temperature (r = 0.9898). After 42 days at 37 degrees C, 2 % of suramin are hydrolysed. Possible implications of our results for the search for suramin metabolites in patients are discussed.

Drug Stability↗

Suramin and the suramin analogue NF307 discriminate among calmodulin-binding sites.

Calmodulin-binding sites on target proteins show considerable variation in primary sequence; hence compounds that block the access of calmodulin to these binding sites may be more selective than compounds that inactivate calmodulin. Suramin and its analogue NF307 inhibit the interaction of calmodulin with the ryanodine receptor. We have investigated whether inhibition of calmodulin binding to target proteins is a general property of these compounds. Suramin inhibited binding of [(125)I]calmodulin to porcine brain membranes and to sarcoplasmic reticulum from skeletal muscle (IC(50)=4.9+/-1.2 microM and 19.9+/-1.8 microM, respectively) and blocked the cross-linking of [(125)I]calmodulin to some, but not all, target proteins in brain membranes by [(125)I]calmodulin. Four calmodulin-binding proteins were purified [ryanodine receptor-1 (RyR1) from rabbit skeletal muscle, neuronal NO synthase (nNOS) from Sf9 cells, G-protein betagamma dimers (Gbetagamma) from porcine brain and a glutathione S-transferase-fusion protein comprising the C-terminal calmodulin-binding domain of the metabotropic glutamate receptor 7A (GST-CmGluR7A) from bacterial lysates]. Three of the proteins employed (Gbetagamma, GST-CmGluR7A and RyR1) display a comparable affinity for calmodulin (in the range of 50-70 nM). Nevertheless, suramin and NF307 only blocked the binding of Gbetagamma and RyR1 to calmodulin-Sepharose. In contrast, the association of GST-CmGluR7A and nNOS was not impaired, whereas excess calmodulin uniformly displaced all proteins from the matrix. Thus suramin and NF307 are prototypes of a new class of calmodulin antagonists that do not interact directly with calmodulin but with calmodulin-recognition sites. In addition, these compounds discriminate among calmodulin-binding motifs.

Allosteric Regulation↗

Suramin and suramin analogs activate skeletal muscle ryanodine receptor via a calmodulin binding site.

Contraction of skeletal muscle is triggered by the rapid release of Ca2+ from the sarcoplasmic reticulum via the ryanodine receptor/calcium-release channel. The trypanocidal drug suramin is an efficient activator of the ryanodine receptor. Here, we used high-affinity [3H]ryanodine binding to sarcoplasmic reticulum from rabbit skeletal muscle to screen for more potent analogs of suramin. This approach resulted in the identification of NF307, which accelerates the association rate of [3H]ryanodine binding with an EC50 = 91 +/- 7 microM at 0.19 microM calculated free Ca2+. In single-channel recordings with the purified ryanodine receptor, NF307 increased mean open probability at 0.6 microM Ca2+ from 0.020 +/- 0.006 to 0.53 +/- 0.07 with no effect on current amplitude and unitary conductance. Like caffeine, NF307 exerts a very pronounced Ca2+-sensitizing effect (EC50 of Ca2+ shifted approximately 10-fold by saturating NF307 concentrations). Conversely, increasing concentrations of free Ca2+ sensitized the receptor for NF307 (EC50 = 14.6 +/- 3.5 microM at 0.82 microM estimated free Ca2+). The effects of NF307 and caffeine on [3H]ryanodine binding were additive, irrespective of the Ca2+ concentration. In contrast, the effects of calmodulin, which activates and inhibits the ryanodine receptor in the absence and presence of Ca2+, respectively, and of NF307 were mutually antagonistic. If the purified ryanodine receptor was prebound to a calmodulin-Sepharose matrix, 100 microM NF307 and 300 microM suramin eluted the purified ryanodine receptor to an extent that was comparable to the effect of 10 microM calmodulin. We conclude that NF307 and suramin interact directly with a calmodulin binding domain of the ryanodine receptor. Because of its potent calcium-sensitizing effect, NF307 may represent a lead compound in the search of synthetic ryanodine receptor ligands.

Animals↗