Synthesis and study of the anti-leukaemic activity of N,N'-substituted amidines and bis-amidines.
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The present studies are concerned with properties of amidinated erythrocytes. The reactions of dimethyladipimidate with proteins in solution and red blood cells, respectively, result in an intermolecular cross-linking. Following an amidination of human serum albumin or human gamma-globulin cross-linked products of increased molecular weight have been demonstrated by polyacrylamide gel and immune electrophoresis. Human erythrocytes previously amidinated intensely, exhibit a restricted motility of membrane particles and cross-linked hemoglobin. Intensely amidinated erythrocytes are resistant against distilled water, and they do no longer agglutinate. The findings presumably indicate an increased permeability of the amidinated red cell membrane. The glycolytic activity was found to be normal in moderately amidinated erythrocytes. In comparison with normal red blood cells, previously moderately amidinated erythrocytes of the rat become sequestered more quickly after re-injection into the vascular system.
Treatment of human oxyhemoglobin with methylacetimidate results in selective amidination of the epfilon-amino group of lysin C5(40)alpha. The modified hemoglobin exhibits increased oxygen affinity, high cooperatively, and normal Bohr effect. Hybrid molecules containing amidinated beta chains and normal alpha chains have normal ligand-binding properties, whereas hybrid molecules containing amidinated alpha chains have ligand-binding properties identical with fully amidinated hemoglobin. Amidination of deoxyhemoglobin produces only minimal changes in ligand-binding properties. We propose that amidination of lysine C5(40)alpha prevents its participation in the salt bond with histidine HC3(146)beta in deoxyhemoglobin, thus shifting the allosteric equilibrium in favor of the high affinity oxy conformation.
Amidine derivatives interact with serine proteases, the inhibition being due to interactions between amidine functions and the active sites of the enzymes. Five different types of amidine (substituted or unsubstituted) were coupled to coated silica beads, which had previously been coated with DEAE-dextran to minimize the non-specific interactions due to silanol groups. Coated silica functionalized with substituted amidines shows a strong affinity towards human plasmin. This affinity is probably due to hydrophobic interactions between the substituted amidine and the human plasmin structure. Coated silica grafted by p-aminobenzamide gives a specific interaction with human plasmin. The importance of ionic strength and the steric conformation of the ligand is discussed. This support was used to purify thrombin from crude preparations by high-performance affinity chromatography.
A large number of N-cyano amidine derivatives were prepared as potential histamine H2 receptor antagonists and evaluated for their inhibitory action on histamine-stimulated chronotropic response of isolated right atria from guinea pigs. Several selected compounds were assessed as inhibitors of gastric acid secretion induced by histamine in anesthetized dogs. Of these compounds, furan (8c) and [(diaminomethylene)amino]thiazole derivatives (16c) were found to be more potent than cimetidine in both assays. In contrast to the guanidine series, methyl substitution at the terminal nitrogen of the cyano amidines was detrimental to the activities. Furthermore, acid hydrolysis of the cyano amidines gave carbamoyl amidines, which proved to be more active than the cyano amidines, the converse of the case for guanidines. 3-[[[2-[(Diaminomethylene)amino]-4- thiazolyl]methyl]thio]-N'-carbamoylpropionamidine (16d) was the most potent of all the compounds tested and was approximately 30 times more active in vitro and 50 times more active in vivo than cimetidine.
In our search for new compounds with antimycoplasmal activity, a series of aromatic amidines derived from 1-amino-3-(2-pyridyl)isoquinoline (1) was synthesized. In the presence of 40 microM copper the most active compounds show growth inhibition of Mycoplasma gallisepticum in the nanomolar range. These compounds are 3 times as active as tylosin, an antimycoplasmal therapeutic agent that is used in veterinary practice. In the presence of copper, amidines derived from 1 are 2-3 times more active than the corresponding amides. Furthermore it was established that for these compounds too, the presence of a 2,2'-bipyridyl moiety is a necessary prerequisite for antimycoplasmal activity. As for the amides, antimycoplasmal activity of amidines derived from 1 is dependent on the hydrophobic fragmental value of the aromatic nucleus of the amidine moiety. A quantitative structure-activity relationship established the optimal hydrophobic fragmental value of this part of the molecule to be zero.
Amidines (guanidine, formamidine, and acetamidine) were introduced as substitutes for the cationic heads present in atropine, scopolamine, and corresponding quaternary derivatives. Amidine systems are intermediate in structure between tertiary amines and quaternary compounds, at least as regards ionization and electronic properties, but differ from the latter in shape (planar not tetrahedral). They have additional binding opportunities on account of their hydrogen-bond-forming capacity. The effect of the introduction of these cationic heads on the affinity for different muscarinic acetyl choline receptor (m-AcChR) subtypes was investigated in vitro, in binding displacement studies, and in functional tests on isolated organs. All new compounds (3a,b-5a,b) showed high affinity for the m-AcChR considered, comparable or slightly inferior to that of the parent drugs (1a-e). The new amidine derivatives proved effective as spasmolytic agents, with little tendency to cause central effects. However, no separation was achieved of spasmolytic and other untoward effects, like inhibition of salivation. Thus, amidine moieties are effective bioisosteric substitutes for conventional cationic heads present in antimuscarinic agents. Their unusual physical-chemical properties make them useful tools when modulation of pharmacokinetic or pharmacodynamic effects is required.
A series of N-sulfamoyl and N-sulfonyl amidines have been prepared and tested in vitro for H2 antihistamine activity on guinea pig atrium. In addition, several selected compounds were assessed as inhibitors of gastric acid secretion induced by histamine in anesthetized dogs. Structure-activity relationship studies showed that those compounds containing 2-[(diaminomethylene)amino]thiazole exhibited potent H2-receptor antagonist activity. Introduction of alkyl or aralkyl groups to the terminal nitrogen of the sulfamoyl moiety reduced biological activities. Sulfamoyl amidines were more potent in both tests than sulfonyl amidines. Of these compounds, 3-[[[2-[(diaminomethylene)amino]-4-thiazolyl]methyl]thio]- N2-sulfamoylpropionamidine (2e, famotidine) showed extremely high potency in both assays and was selected for clinical trials as an antiulcer agent. Acid-catalyzed hydrolysis of famotidine gave the sulfamoyl amide 6 at room temperature and the carboxylic acid 7 at elevated temperatures. 15N NMR spectrum showed that famotidine in solution existed in only one of several possible tautomers derived from the amidine and the guanidine moieties. Nitrosation of famotidine was performed under mild condition and proved to occur on the 5-position of the thiazole ring.
The conformation of six amidine compounds, which possess a common 3-[(4-thiazolyl)methylthio]propionylamidine framework but exhibit different activities as histamine H2-receptor antagonists, have been subjected to both single crystal X-ray structural and 1H-NMR analyses. The X-ray studies suggest a correlation between antagonist activity and the relative spatial orientation of the thiazolyl and amidine nitrogen atoms. This correlation is supported by a comparison of the conformations observed for the amidines with those of other H2-receptor antagonists and reveal that a folded conformation, specifically the NH...N intramolecular hydrogen-bonded configuration, is important for antagonist activity. The 1H-NMR measurements on the active amidine compounds show that the intramolecular NH...N bond is likely to be present in solution.
Rat erythrocytes previously labelled with 51Cr were treated with 0.1 mM and 0.5 mM dimethyladipic imidate (ADE) pH 9.5, respectively, or with borate buffer pH 9.5 for 15 minutes each. After reinjection into rats of amidinated or nonamidinated erythrocytes their elimination form the streaming blood was followed for 50 days (0.1 mM ADE) or 38 days (0.5 mM ADE). During the 1st day about 10% of amidinated erythrocytes were sequestered. There was no increased initial elimination rate of borate incubated red blood cells detectable. During the following period the elimination rate of erythrocytes amidinated with 0.5 mM ADE was slightly greater than in the case of erythrocytes treated with 0.1 mM ADE. The mean life span of 0.5 mM ADE-erythrocytes was shorter compared with the controls and with 0.1 mM ADE-erythrocytes. Red blood cells previously treated with 0.5 mM ADE are significantly less deformable. Presumably, the stiffness of amidinated erythrocytes causes their increased elimination rate.
The pancreas contains two very analogous enzymes: trypsin and chymotrypsin. These two enzymes are very similar in their physicochemical characteristics and are therefore quite difficult to separate by classical purification procedures. They constitute a good model for affinity chromatography. It was previously demonstrated that amidine derivatives are able to interact strongly and specifically with these serine proteases and are often used as ligand in affinity chromatography. To understand the trypsin interaction mechanism, we synthesized different amidines and immobilised them with or without spacer arm on silica beads previously coated by dextran substituted with a calculated amount of positively charged diethylaminoethyl functions, in order to minimize the non-specific interactions of silanol groups of the silica material. First the affinity constant and the adsorption capacity of these supports for trypsin were determined in batch procedures, then they were used in affinity chromatography. The effects of ionic strength, pH and competitive inhibitors on proteins desorption were also studied. Last, to demonstrate the importance of passivation, the chromatographic performances of dextran-coated silica phases and a commercial support grafted with the same amidine were compared.
Syntheses of a large number of mono- and bicyclic, as well as a few tricyclic, amidine derivatives related to 2,3,4,6,7,8,-hexahydropyrrolo[1,2-a]pyrimidine (DBN) are reported. In vitro potencies for inhibition of the enzyme indolamine N-methyltransferase (INMT) from rabbit and human lung are presented. Four bicyclic amidine derivatives and 11 monocyclic derivatives were found to be equal or superior to DBN in in vitro potencies. With the bicyclic amidines, increasing ring size or introduction of substituents reduced activity. Among the monocyclic analogues, the most potent representatives were five- or six-membered systems with an exocyclic imino group, combined with methyl of ethyl substituents on the endocyclic nitrogen. Introduction of additonal substituents decreased inhibitory potency. 2,3,5,6-Tetrahydro-8H-imidazo[2,1-c][1,4]thiazine and 3-methyl-2-iminothiazolidine have been shown to cause inhibition of lung INMT when administered orally to rabbits.
A short description of the chemical and pharmacological properties of amidines is followed by a comprehensive discussion of investigations on the N-oxidative biotransformations of amidines. The results of these investigations have confirmed the author's hypothesis, based on mechanisms, that N-oxygenation by the cytochrome P-450 enzyme system is observed particularly when N-dealkylation is not possible because of the absence of hydrogen atoms on the carbon atoms adjacent to the nitrogen atom, alpha-H-atoms. The results obtained with amidines are discussed in their relationship to other microsomal N-oxygenations both by cytochrome P-450 and flavine-containing monooxygenase. Attempts are made to deduce a scheme for predicting N-oxygenations.
This study is concerned with the agglutinability of amidinated human erythrocytes. Amidinated erythrocytes behave like an immuno-adsorbent. Following the adsorption of an agglutinin, amidinated erythrocytes agglutinate specifically with native red blood cells or with native eukaryotic cells, if the glycocalyx of these native cells is provided with the respective agglutinin receptor groupings.
The microsomal oxidative N-demethylation of N-methylbenzamidine, a model compound for active substances containing the basic amidine function, was investigated. N-Methylbenzamidine was converted into benzamidine and formaldehyde by aerobic incubation with non-induced microsomal fractions of rabbit liver homogenates and NADPH. The formation of benzamidine in the incubation mixtures under widely differing conditions was assayed using a newly-developed, high-performance, ion pair, reverse-phase partition chromatographic method. Optimal reaction conditions were determined. The benzamidine formation in the incubation mixture followed Michaelis-Menten kinetics and required the presence of molecular oxygen and NADPH. The effects of the inducer phenobarbital, methylcholanthrene, ethanol and N-methylbenzamidine itself on the activity were studied. Neither superoxide anion nor hydrogen peroxide was directly involved in the demethylation reaction. The direct involvement of cytochrome P-450 in this reaction is supported by the observation that the presence of inhibitors of cytochrome P-450, in particular of carbon monoxide, markedly decreased the rate of N-demethylation. This N-demethylation of N-methylbenzamidine proves the hypothesis that benzamidines with hydrogen atoms in the alpha-position to the amidine nitrogen atoms are N-dealkylated instead of N-oxygenated by the microsomal mixed function oxidase system.
A series of both aliphatic and aromatic amides and aromatic amidines derived from 2-amino-1,10-phenanthroline (3) according to the Topliss scheme were synthesized and subsequently tested for antimycoplasmal potency. Although the compounds themselves showed no activity, in the presence of a nontoxic copper concentration of 40 microM all compounds appeared to be very active against Mycoplasma gallisepticum K154. The most active compounds were found in the amide series and show growth inhibition in the nanomolar range. These compounds are 4 times more active than tylosin, a macrolide antibiotic, which is used therapeutically in veterinary practice. In the presence of copper, amides derived from 3 are more active than corresponding amidines. Increased activity following derivatization of 3 may be due to the presence of a third coordination site for copper in the title compounds. Evaluation of biological data revealed that antimycoplasmal activity of amides derived from 3 is dependent on lipophilicity. For these amides a good linear correlation was found between antimycoplasmal activity and hydrophobic fragmental values for substituents considered. This quantitative structure-activity relationship study indicated that antimycoplasmal activity was increased upon a decrease of these hydrophobic fragmental values.
Aromatic guanidines and amidines were investigated for their ability to inhibit phenylalanyl-tRNA synthetase from E. coli B. 2-Phenylacetamidine (1), benzylguanidine (2), and N-benzylbenzamidine (3) are competive inhibitors with respect to phenylalanine, binding nearly as well as the substrate, The remainder of the inhibitors was unexpectedly found to be noncompetitive, indication the presence of a secondary binding site on the enzyme. Inhibition by these compounds appears to be specific for phenylalanyl-tRNA synthetase and requires the presence of a phenyl ring as well as the amidine or guanidine moiety.
Two different structural types of 2-aryl-1,3,4-thiadiazole amidines were synthesized and evaluated for anticonvulsant activity. Enhancement of the inherent anticonvulsant activity therein and separation of this activity from the accompanying sedative action of these compounds were attempted. The most potent compounds occurred in the 2-(trifluoromethyl)phenyl series of type 3 amidines, but they also possessed a relatively high level of neurotoxicity and sedation as demonstrated in the rotorod test.