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[Effects of polyene antibiotics and detergents on cell membranes of polyene-sensitive and polyene-resistant strains of Candida albicans].

Various detergents and EPR-probes of 4,4-dimethylspiro[5alpha-androstan-17beta-ol-3,2-(1,3-oxazolidin-3-oxyl)]2CH3OH; 2,2,6,6-tetramethylpalmitoyl-amidopiperidine-1-oxyl and 2-(14-carboxytetradecyl)-2-ethyl-4,4-dimethyl-3-oxazolidinoxyl were used to establish structural differences in the membrane of polyene-sensitive and polyene-resistant strains of C. albicans. It was shown that the type of protein-lipid interactions is modified by the changes in the sterol component of the polyene-resistant strain membranes. This manifests itself in a decrease in sensitivity of membrane alkaline phosphatase for levorin and the detergents, as well as in the alteration of the lipid fluidity pattern of the polyene-resistant strain membranes as compared to the membranes of original culture of C. albicans. Treatment of polyene-sensitive strain membranes with amphotericine B causes more intensive protein-lipid interactions, which is not observed in case of the polyene-resistant strain. It is assumed that C. albicans resistance to polyenes is due to the existence of strong protein-lipid interactions in the membrane coupled with ergosterol substitution by other sterol components.

Alkaline Phosphatase

Polyene macrolide antibiotic cytotoxicity and membrane permeability alterations. I. Comparative effects of four classes of polyene macrolides on mammalian cells.

The relationship between polyene macrolide-induced early membrane damage and cytotoxicity in B1 (hamster), B82 (mouse), and RAG (mouse) cells has been investigated. Filipin (FIL) induced the greatest immediate damage, as monitored by 51Cr release, followed by mediocidin (MED), amphotericin B-deoxycholate (Fungizone) (FZ) and pimaricin (PIM). For long term effect, PIM was the least toxic followed by MED, FZ, and FIL as indicated by 24-hour survival, 72-hour viability, and growth rate of cells. In evaluating polyene macrolide-induced permeability alterations and cytotoxicity two types of interactions with mammalian cells were found: (1) cell toxicity at polyene macrolide levels not eliciting immediate membrane permeability changes; and (2) immediate membrane damage without long range toxicity.

Antibiotics, Antineoplastic

Polyene antibiotics. VII. Carbon-13 nuclear magnetic resonance evidence for cyclic hemiketals in the polyene antibiotics amphotericin B, nystatin A1, tetrin A, tetrin B, lucensomycin, and pimaricin1,2.

Carbon magnetic resonance establishes conclusively that six polyene macrolide antibiotics containing keto groups (the heptaene amphotericin B, the tetraene-diene nystatin A1, and the tetraenes tetrin A, tetrin B, pimaricin, and lucensomycin) exist in the hemiketal form in solution. Their spectra all contain a hemiketal carbon's absorption near 97 ppm but lack a keto carbon's absorption near 210 ppm. The non-polyenic macrolide erythromycin, on the other hand, exists in the keto form.

Amphotericin B

Polyene antibiotics. IX. An improved method for the preparation of methyl esters of polyene antibiotics.

An improved general method for the preparation of methyl esters of polyene antibiotics is discussed. Using this method methyl esters of pimaricin, nystatin, eurocidin, hamycin, hamycins A and B, aureofungin, partricins A and B, candimycin, candicidin, and amphotericin B have been prepared and their physical properties are reported. The biological activities of hamycins A and B and their methyl esters are also described.

Anti-Bacterial Agents

Synthetic carotenoids, novel polyene polyketones and new capsorubin isomers as efficient quenchers of singlet molecular oxygen.

Novel synthetic polyene polyketones and new synthetic capsorubin isomers were examined for their ability to quench singlet molecular oxygen (1O2) generated by the thermodissociation of the endoperoxide of 3,3'-(1,4-naphthylene) dipropionate (NDPO2). C28-polyene-tetrone (1) exhibits the highest physical quenching rate constant with 1O2 (kq = 16 x 10(9) M-1 s-1). For comparison, the rate constant for the most efficient biological carotenoid, lycopene (3) is kq = 9 x 10(9) M-1 s-1 and that of beta-carotene (5) kq = 5 x 10(9) M-1 s-1. The presence of two oxalyl chromophores at the ends of the polyene chain seems to enhance the 1O2 quenching ability in the C28-polyene-tetrone (1). C28-polyene-tetrone-diacetal (2) (kq = 9 x 10(9) M-1 s-1) and C40-epiisocapsorubin (4) (kq = 8 x 10(9) M-1 s-1) also have high 1O2 quenching abilities. Two carotenoids from plants, phytoene and phytofluene, were much less efficient, kq values being below 10(7) M-1 s-1. Due to the very high singlet oxygen quenching abilities, C28-polyene-tetrone (1), C28-polyene-tetrone-diacetal (2) and C40-epiisocapsorubin (4) may have potential use in preventing 1O2-induced damage in biological and non-biological systems.

Carotenoids

Polyene macrolide antibiotic cytotoxicity and membrane permeability alterations. II. Phenotypic expression in intraspecific and interspecific somatic cell hybrids.

Cytotoxicity and membrane permeability alterations induced by the polyene macrolide antibiotics filipin (FIL) and pimaricin (PIM) have been compared in parental intraspecific and interspecific somatic cell hybrids. B82 (mouse) and B1 (hamster) cells were found to be more resistant than RAG (mouse) parental cells to both polyene macrolides as indicated by 24-hour survival, 72-hour viability, and growth rate. Analysis of both intraspecific and interspecific somatic cell hybrids indicated that polyene macrolide resistance was being expressed even in the presence of the polyene macrolide-sensitive (RAG) genome. Where one of the two parental cell types is relatively polyene macrolide resistant, the use of specific polyene macrolides may prove efficacious as half-selective agents in cell hybridization.

Animals

[Effect of polyene antibiotics and their perhydrovderivatives on intact cells and protoplasts of yeast Candida guilliermondii].

Perhydroderivatives of polyene antibiotics have a much lower activity against eukaryotic cells than the polyene antibiotics itself. Bacterial cells are normally resistant against most polyene antibiotics and their perhydroderivatives. In earlier experiments with wall less L-form cells of Escherichia coli we have shown that the bacterial cell wall may be responsible for the resistance of the intact bacterial cells against polyene antibiotics and their perhydroderivatives by masking internal target sites. In the present paper we studied the effect of polyene antibiotics and their perhydroderivatives on intact cells and protoplasts of Candida guilliermondii. Our experiments have shown that most of the perhydroderivatives studied had a lower activity against intact cells as well as protoplasts than the corresponding polyene antibiotics. This means that in the case of eukaryotic cells the cell wall as a penetration barrier cannot mainly be responsible for the low activity of perhydroderivatives. The results are compared with those obtained previously with intact cells and protoplast type L-form cells of E. coli.

Anti-Bacterial Agents

[Possibility of the early identification of polyene antibiotic producers].

A method for identification of polyenic antibiotics at early stages of their screening was developed using the known fact of high affinity of polygens and steroids. It was found that addition of cholesterol or ergosterol to the nutrient medium in a concentration of 100 gamma/ml eliminated the inhibitory effect of the polyenic antibiotics. Screening of the antibiotic-producing actinomycetes simultaneously on 2 media, i.e. with and without cholesterol using the yeast test-organisms provided identification of actinomycetes producing polyenic antibiotics. The selective capacity of 3 yeast cultures, i.e. Sacch. cerevisiae, Cand. albicans and Tor. globosa 11-3 as test-organisms for screening polyenic antibiotics was compared. It was shown that mitochondrial mutant 11-3 of Tor. globosa was a highly sensitive model for identification of actinomycetes producing polyenic antibiotic, since 23% of the actinomycetes possessing an activity against that organism produced substances of the polyenic nature. All the strains of the actinomycetes screened with the help of Cand. albicans and Sacch. cerevisia were the same as those detected with the help of mutant 11-3 of Tor. globosa.

Anti-Bacterial Agents

A reverse-phase HPLC assay for measuring the interaction of polyene macrolide antifungal agents with sterols.

A quick and simple affinity chromatography method for gauging the interaction of polyene antifungal agents with sterols has been developed. The required affinity columns are prepared from a standard C-18 reverse-phase HPLC column by injecting a measured quantity of sterol under conditions where it is completely retained. After the assay, the sterol is eluted with a less polar solvent and the column reused. By comparing the elution volume of a polyene injected onto the sterol-free column (Ve) with that of the polyene injected onto the sterol-doped column (V), an association constant (Ka) for the polyene-sterol complex was determined. Association constants of different amphotericin B-sterol and pimaricin-sterol complexes were determined and correlated with the polyene's ability to induce membrane permeability and its antifungal properties. This procedure provides a new tool for screening polyene macrolides for antifungal therapy.

Amphotericin B

Interactions in vitro between polyenes and imidazoles against yeasts.

The polyenes, amphotericin B and mepartricin and the imidazoles, miconazole, ketoconazole, itraconazole and fluconazole, were studied either alone or in paired polyene-imidazole combinations to determine their activity in vitro against clinical yeast isolates. The methods included shaken and standing liquid cultures, continuous cultures and chequerboard titrations, with or without the incorporation of pooled human plasma. The polyenes were found to exert an immediate cidal action even with high cell populations whereas the imidazoles demonstrated a time-dependent fungistatic activity which increased very slowly with increase in drug concentration. The interactions observed with the paired combinations were consistent and were found to be anomalous with all methods used. The activity of the imidazoles was enhanced by the presence of the polyenes; by contrast the polyenes were strongly antagonized by the imidazoles.

Antifungal Agents

Mechanistic studies of polyene enhancement of interferon production by polyriboinosinic-polyribocytidylic acid.

The production of interferon by polyriboinosinic-polyribocytidylic acid [poly(I) . poly(C)] and poly(I) . poly(C)-diethylaminoethyl-dextran in L929 cells was enhanced from 10 to 100 times by polyene macrolides, including amphotericin B (AmB), AmB methyl ester, nystatin, and filipin. AmB and its water-soluble methyl ester were the most effective; retinol, a nonmacrolide polyene, was ineffective. Interferon induction by Newcastle disease virus was not enhanced by AmB. The kinetics of interferon production were not markedly altered by AmB. Polyenes and poly(I) . poly(C)-diethylaminoethyl-dextran did not need to be present on cells simultaneously to enhance interferon production. Pretreatment with polyenes was as effective as simultaneous addition. Even treatment of washed cells, several hours after removal of poly(I) . poly(C)-diethylaminoethyl-dextran, resulted in enhancement of interferon production. AmB did not appear to form a macromolecular complex with poly(I) . poly(C) in that neither the ultraviolet absorption spectrum nor the melting point of poly(I) . poly(C) was altered by mixing with AmB. Isotopic studies indicated that AmB did not enhance binding of poly(I) . poly(C) to cells. Since the macrolide polyenes have been demonstrated to bind to cell membrane sterols with subsequent alterations in membrane permeability barriers, they may enhance interferon production by increasing cell penetration of poly(I) . poly(C).

Animals

A screening method for antifungal substances using Saccharomyces cerevisiae strains resistant to polyene macrolides.

Strains of Saccharomyces cerevisiae FL200 capable of growing on a solid medium containing a mixture of polyene macrolide antibiotics (nystatin, 40 micrograms/ml, amphotericin B, 40 micrograms/ml, pimaricin, 150 micrograms/ml and RP9971 antibiotic, 10 micrograms/ml) have been isolated after successive selection steps. The mutant strains, PR13 and PRC24, are 10 to 100 times more resistant than the polyene macrolide antibiotics. When 4% Tween 80 is added to the medium, resistance to these antifungal drugs is further increased. In addition, strain PRC24, derived from strain PR13, is resistant to a non-polyene macrolide antifungal antibiotic, cycloheximide. In contrast, PR13 and PRC24 are both highly susceptible to a large range of compounds, including non-polyenic antifungal, antitumor and antibacterial agents. These particular characteristics make these strains useful for the rapid detection of antifungal compounds of the polyene macrolide and cycloheximide types, as well as for the recognition of antimitotic substances.

Anti-Bacterial Agents

Effect of polyene antibiotics on the lectin-induced agglutination of transformed and untransformed cell lines.

Treatment of transformed Py3T3, SV101-3T3, and L1210 cells, as well as mitotic and Pronase-treated untransformed 3T3 cells, with the polyene antibiotics filipin, nystatin, and amphotericin B inhibited agglutination by wheat germ agglutinin. The effect of polyene antibiotic treatment was lectin and cell specific. Concanavalin A induced agglutination was not inhibited, wheat germ agglutination induced agglutination of untransformed 3T3 interphase cells was not influenced, and other aggregation phenomena, including those of erythrocytes with blood group specific antibodies or divalent cations, were unaffected by polyene treatments. This suggests that the formation of polyene-cholesterol complexes in transformed and erythrocyte cell membranes may specifically affect wheat germ agglutinin receptors and/or secondary events necessary for wheat germ agglutinin induced agglutination. Fluorescence studies of membrane filipin-cholesterol complexes showed that pretreating the cells with wheat germ agglutinin, but not concanavalin A, perturbed the fluorescence properties of filipin. Electron spin resonance studies with spin-labeled fatty acids revealed at best only a slight decrease in fatty acyl chain flexibility following filipin treatment. These studies indicate that there are not only quantitative differences between the agglutinability of transformed and untransformed cells with wheat germ agglutinin but that qualitative differences exist as well.

Agglutination

Energy dependence and reversibility of membrane alterations induced by polyene macrolide antibiotics in Chlorella vulgaris.

The requirement of metabolic energy for the interaction of polyene macrolide antibiotics with eukaryotic organisms remains a controversial subject (for review see ref. 1) It has been claimed that the lethal binding of these antibiotics to the sterol target component of the hydrophobic core of the membrane, in accordance with the model of de Kruijff and Demel, is an energy-dependent process. When energy production is reduced by removal of all metabolisable substrates or by adding metabolic inhibitors, polyene binding and antifungal effects are also reduced. Metabolic energy may be required to maintain binding site accessibility or to move antibiotic molecules to the active site. The interaction is also restricted at low temperatures, possibly because of the reduced thermal mobilities of the groups concerned with antibiotic uptake. However, it should be emphasised that the interaction of polyene macrolides with artificial lipid membranes is a purely physicochemical process, although the type of permeability pathways induced are similar to those observed in natural membranes. Using Chlorella vulgaris as a model organism, we demonstrate here that the interaction of polyene macrolides with sensitive cells and the induction of lethal membrane permeability changes are energy-dependent processes or purely physicochemical phenomena, depending on the structure of the antibiotic used.

Anti-Bacterial Agents

Measurement of polyene antibiotic-mediated erythrocyte damage by release of hemoglobin and radioactive chromium.

Polyene antifungal antibiotics produce various degrees of membrane damage in sheep erythrocytes in vitro. Mediocidin, filipin, amphotericin B, and candicidin were found to result in greater damage than nystatin, pimaricin, and amphotericin B methyl ester. The degree of sensitivity of the cells varied by 100-fold for mediocidin verus amphotericin B methyl ester as measured by curves of hemoglobin release versus drug concentration. In erythrocytes prelabeled with radioactive chromium, release of the isotope through polyene-damaged cell membranes was found to occur at lower drug concentrations than measurable hemoglobin release, and the percentage of isotope released at the highest drug dose was consistently greater than the percentage of hemoglobin released. Thus, the isotope assay is a more sensitive indicator of polyene-induced membrane damage in the test system. These significant differences in release of molecules through polyene-induced membrane lesions indicate the complex nature of the binding and further interactions of this class of drugs with the plasma membrane.

Antifungal Agents

Classification of polyene antibiotics according to chemical structure and biological effects.

Fourteen polyene antibiotics and six of their semisynthetic derivatives were compared for their effects on potassium (K(+)) leakage and lethality or hemolysis of either Saccharomyces cerevisiae or mouse erythrocytes. These polyene antibiotics fell into two groups. Group I antibiotics caused K(+) leakage and cell death or hemolysis at the same concentrations of added polyene. In this group fungistatic and fungicidal levels were indistinguishable. Group I drugs included one triene (trienin); tetraenes (pimaricin and etruscomycin); pentaenes (filipin and chainin); one hexaene (dermostatin); and one polyene antibiotic with unknown chemical structure (lymphosarcin). Group II antibiotics caused considerable K(+) leakage at low concentrations and cell death or hemolysis at high concentrations. The fungistatic levels were clearly separable from fungicidal. This group included the heptaenes (amphotericin B, candicidin, aureofungin A and B, hamycin A and B), and five of their semisynthetic derivatives (amphotericin B methyl ester, N-acetyl-amphotericin B, hamycin A and B methyl esters, and N-acetyl-candicidin). Nystatin, classified as a tetraene, and its derivative, N-acetyl nystatin, also were in this group.

Animals

[Role of sterol structure in complex formation with polyene antibiotics].

The capacity of sterols of different structure being components of artificial bilayer lipid membranes for formation of complexes with polyenic antibiotics, such as amphotericin B, nistatin and levorin was studied. It was shown that sterols delat 5,7-dienic systemin ring B, ergosterol and cholesta-5,7,22-trien 3 beta-ol had the highest affinity to all the 3 antibiotics, while sterols with one double bond in ring B, i. e. cholesterol and brassicasterol had less affinity and sterol without any double bonds in the molecule i.e. 5alpha cholestan 3beta-ol had the least affinity. It was supposed that delta 5,7-sterols had the highest affinity to polyens because of the fact that atoms C-5, C-6; C-7 and C-8 in ring B were practically situated in one plane in contrast to sterols with completely saturated ring B situated in the "conformation chair". Because of this interaction between delta 5,7-sterol ring B and the same flat polyenic site of the antibiotic molecule is sterically most firm since maximum contact is possible between two planes. It was noted that affinity of sterol to the polyenic antibiotics was higher if there were a double bond at 22-23 and methyl group at C-24 in the sterol side chain.

Anti-Bacterial Agents