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J Bolard

Publications and source records attributed to J Bolard.

At least 55 records · Page 3Linked to original sources

Improvement of amphotericin B activity during experimental cryptococcosis by incorporation into specific immunoliposomes.

Cryptococcosis is an opportunistic infection that is responsible for increased morbidity and mortality in patients with the acquired immunodeficiency syndrome. The high toxicity of the antifungal agent that is mainly used against cryptococcosis, amphotericin B (AMB), accounts for the need for new treatments, especially in patients with the acquired immunodeficiency syndrome because of the high relapse rate of cryptococcosis. Drug targeting may be one of these alternate treatments. Since we have demonstrated that an immunoglobulin G1 (IgG1) anti-Cryptococcus neoformans serotype A monoclonal antibody (E1) was protective during experimental cryptococcosis in mice, we investigated whether specific targeting of AMB with liposomes that bear E1 would improve the therapeutic index of the drug. For that purpose, in vitro and in vivo experiments were designed to compare the specificities and activities of these liposomes with those of control immunoliposomes bearing a nonrelated IgG1 monoclonal antibody (CY34). The immunoliposomes were prepared by covalently linking E1 or CY34 and small unilamellar vesicles. When immunoliposomes were incubated with yeast cells, only E1-bearing liposomes recognized C. neoformans. In vivo, mice that were treated 24 h after infection with one injection of AMB (0.12 mg/kg of body weight) intercalated into E1-bearing liposomes survived significantly longer than did those given the same dose of AMB alone or AMB intercalated into nontargeted liposomes or control immunoliposomes. None of the mice that were given control treatments did statistically better than those that were given AMB. Keeping in mind that this kind of therapy requires knowledge of the antigenic type of the infecting organism, the results suggest that specific targeting of small doses of AMB improve the efficacy of AMB and might be an alternative to the use of larger doses of AMB.

Amphotericin B↗

Enhanced action of amphotericin B on Leishmania mexicana resulting from heat transformation.

A comparative study of the effect of the polyene antibiotic amphotericin B (AmB) on the viability of Leishmania mexicana promastigotes before and after their transformation by heat into amastigotelike forms was carried out. The kinetics of cell death were followed by spectrofluorometry with the nucleic acid-binding compound ethidium bromide. It was found that the rapid killing effect that is exerted by AmB on Leishmania promastigotes was even faster after their transformation into amastigotelike forms. Binding studies of AmB to Leishmania membranes by circular dichroism indicated that heat transformation modified it from noncooperative to cooperative binding, decreasing the amount of antibiotic that bound to the membranes. Thus, the increased rate of ethidium bromide incorporation into transformed cells was not related either to the amount of AmB bound or to an increased amount of ergosterol in the membrane (the ergosterol/phospholipid ratio was four times smaller after heat shock). An increase in the Mg2+ content of the external aqueous solution was able to prevent the AmB-induced incorporation of ethidium bromide into Leishmania promastigotes to a greater extent (Ki = 13.8 mM) than it was into heat-transformed cells (Ki = 64 mM), suggesting that there were significant changes at the Leishmania cell surface on heat transformation. The significance of these results for understanding the mechanism of action of AmB on sensitive organisms is discussed.

Amphotericin B↗

Interaction of amphotericin B and its N-fructosyl derivative with murine thymocytes: a comparative study using fluorescent membrane probes.

The polyene antibiotics amphotericin B (AmB) and N-(1-deoxy-D-fructos-1-yl)amphotericin (N-Fru-AmB) have different activity towards murine thymocytes (N-Fru-AmB is less toxic but is a potent immunomodulator). The interactions of the drugs with these cells have been studied by fluorescence methods. Fluorescence energy transfer from 1-[4-(trimethylammonio) phenyl]-6-phenylhexa-1,3,5-triene, p-toluenesulfonate (TMA-DPH) to polyenes was used to follow the binding of the two drugs to the plasma membrane. The results, confirmed by circular dichroism measurements, indicate that at saturation the ratio AmB bound/plasma membrane lipid is low (less than 1 molecule of polyene for 170 lipids). The slightly higher binding of AmB as compared to N-Fru-AmB demonstrates that affinity of the antibiotic for plasma membrane does not account for the activity of the polyenes towards lymphocytes. The effect of the two polyenes on membrane fluidity was studied by steady-state fluorescence anisotropy. The results suggest that AmB strongly perturbs the structure of the membrane whereas only a slight decrease of the anisotropy is observed with N-Fru-AmB in the range of concentration where the biological activity has been demonstrated. Polyene location was further investigated by comparing the energy transfer efficiency obtained with TMA-DPH and with the parental compound 1,6-diphenylhexa-1,3,5-triene, p-toluene sulfonate (DPH). While AmB binds to plasma membrane, as well as to intracellular structures, N-Fru-AmB seems to accumulate into the cell and bind to intracellular membrane structures.

Amphotericin B↗

The polyene antibiotic amphotericin B acts as a Ca2+ ionophore in sterol-containing liposomes.

Amphotericin B (AmB) was shown to induce a Ca2+ influx across ergosterol- and cholesterol-containing large unilamellar liposomes, by following spectrophotometrically the formation of the Arsenazo III-Ca2+ complex. At equivalent antibiotic concentrations the Ca2+ influx was much more extensive through ergosterol-containing membranes (almost 100% with 1 microM AmB, 160 microM lipid) than through cholesterol-containing membranes (below 0.5 microM the influx of Ca2+ was negligible). In the presence of ergosterol-containing membranes the initial rate of Ca2+ influx had the same linear dependence on the ratio antibiotic/lipid whatever the lipid concentration, which was not the case in cholesterol-containing membranes. These results suggest that the channels responsible for the AmB-induced Ca2+ permeability across cholesterol- and ergosterol-containing liposomes have different structures.

Amphotericin B↗

Membrane-phorbol ester interactions monitored by circular dichroism.

The interaction of phorbol 12,13-dibutyrate (PDBu), 12-O-retinoylphorbol 13-acetate (RPA) and 12-O-tetradecanoylphorbol 13-acetate (TPA) with L-alpha-phosphatidylserine-containing small unilamellar vesicles or erythrocyte ghosts was monitored by circular dichroism (CD). No change in the CD spectra of PDBu was observed upon binding, while RPA and TPA spectra were slowly affected by the interaction. The changes in RPA and TPA spectra were assigned to the embedding of these molecules in the membrane bilayers. In the presence of 10(8) cells/ml, after one minute incubation, about 2 to 5% of the amount of phorbol ester added is embedded in the membrane. It is suggested that either phorbol esters entering the membrane is not a prerequisite for protein kinase C activation or the amount of phorbol esters necessary to activate protein kinase C is very small.

Circular Dichroism↗

Interaction of filipin with dimyristoylphosphatidylcholine membranes studied by 2H-NMR, circular dichroism, electronic absorption and fluorescence.

Interaction of the pentene antibiotic filipin with dimyristoylphosphatidylcholine (DMPC) membranes has been monitored by 2H-NMR, circular dichroism (CD), electronic absorption and fluorescence in the temperature range 10 degrees to 60 degrees C. Interaction appears to depend on whether filipin is added before or after membrane formation and also upon the temperature of the system. When filipin is added to preformed DMPC large unilamellar vesicles (LUV), the association constants, as determined by electronic absorption are 39 x 10(3) M-1, 15 x 10(3) M-1 and 0.6 x 10(3) M-1 at 15 degrees, 30 degrees and 50 degrees C, respectively. Under identical conditions, CD spectra of bound filipin exhibit features characteristic of an aggregation over the whole temperature range. When filipin is incorporated in membranes during their preparation, the 2H-NMR spectra of deuterated DMPC indicate that the drug has a slight disordering effect on the lipid matrix below the temperature, Tc, of the gel-to-fluid phase transition and above Tc + 11 degrees C. Between these two temperature boundaries the system consists of two lipid regions of very different dynamic properties. One of the regions, which is attributed to a filipin-lipid complex, has the properties of gel-like lipids whereas the other has those of fluid-like lipids. The latter domain is however more ordered than the pure lipid at corresponding temperatures.(ABSTRACT TRUNCATED AT 250 WORDS)

Antifungal Agents↗

Interaction of the polyene antibiotic amphotericin B with model membranes: differences between small and large unilamellar vesicles.

The interaction of the polyene antibiotic amphotericin B (AmB) (Fig. 1) with large unilamellar vesicles (LUV) was monitored by circular dichroism (CD) and carboxyfluorescein (CF) release. LUV afford a far better model for biological membranes than small unilamellar vesicles (SUV) which have been used until now. With dimyristoyl phosphatidyl choline (DMPC) LUV (i.e., containing saturated acyl chains), a strong and not saturable binding for AmB/lipid ratios up to 0.5 was observed both above and below the phase transition temperature. Incorporation of cholesterol into the vesicles did not significantly change the interaction. With egg PC (EPC) LUV (i.e., containing unsaturated acyl chains), quite a different picture emerged: the binding reached saturation for AmB/lipid ratios of about 5 x 10(-3), a result not observed with EPC SUV. When sterols were introduced into membranes, the CD spectral features obtained in the presence of ergosterol were different from those obtained in the presence of cholesterol. Such a different behavior was not observed with SUV. We suggest that species whose CD spectrum was observed after 15 min in the presence of ergosterol-containing EPC LUV is the particular one which forms wide channels and induces a Ca2+ release. (H. Ramos, A. Attias, B.E. Cohen and J. Bolard, submitted for publication). The CF release from EPC LUV induced by AmB was very low, even at very high concentrations of the antibiotic (3 x 10(-4)M). In contrast, an important release of the fluorescent dye was observed with DMPC LUV at concentrations of approximately 10(-5)M.(ABSTRACT TRUNCATED AT 250 WORDS)

Amphotericin B↗

Study of the effects of liposomal amphotericin B on Candida albicans, Cryptococcus neoformans, and erythrocytes by using small unilamellar vesicles prepared from saturated phospholipids.

We compared the anticellular effects of liposomal amphotericin B (AmB) formed from AmB and small unilamellar vesicles. The small unilamellar vesicles with or without cholesterol were prepared from three L-alpha-phosphatidylcholines with saturated acyl chains of different lengths: distearoyl (C18), dipalmitoyl (C16), and dimyristoyl (C14). We found that the anticellular potency of liposomal AmB, compared with that of free AmB, decreased with decreasing length of the acyl chain of the phospholipid and increased with the addition of cholesterol. In a parallel study (S. Jullien, A. Vertut-Croquin, J. Brajtburg, and J. Bolard, Anal. Biochem. 172:197-202, 1988), we found that binding of AmB to vesicles decreased with increasing length of the acyl chain of the phospholipid and decreased with the addition of cholesterol. We conclude that the anticellular effects of liposomal AmB preparations are due to the levels of AmB remaining free (unbound to the lipids) in these preparations.

Amphotericin B↗

The polyene antibiotic amphotericin B inhibits the Na+/K+ pump of human erythrocytes.

The polyene antibiotic Amphotericin B is known to induce K+ loss from human erythrocytes. In the present study it is shown that this efflux is not solely due to the formation of pores through the membrane but also to the inhibition of the Na+/K+ pump. At 5 microM this inhibition is total. The interaction of Amphotericin B with membrane enzymes is therefore to be taken into consideration when trying to explain its mechanism of action.

Amphotericin B↗

Interaction of the polyene antibiotic filipin with model and natural membranes containing plant sterols.

The interaction of the polyene antibiotic, filipin, with individual or mixed plant sterols (stigmasterol, sitosterol, campesterol and 24-methylpollinastanol) incorporated into large unilamellar vesicles (LUV) of soybean phosphatidylcholine (PC) as well as the filipin interaction with purified membrane fractions from maize roots containing these sterols was investigated by ultraviolet (UV) absorption and and circular dichroism (CD) spectroscopy. With both types of membrane preparation, dramatic changes in the UV absorption and CD spectra of the antibiotic were evidenced. When LUV containing stigmasterol, sitosterol and/or campesterol were incubated with low filipin concentrations (i.e., for filipin/sterol molar ratios (rst) lower than 1), CD signal characteristic of the formation of filipin-sterol complexes were observed. At higher rst values, the filipin-sterol interaction was shown to be in competition with a filipin-phospholipid interaction. With 24-methylpollinastanol-containing LUV, the filipin-phospholipid interaction was detected even at rst values lower than 1, which suggests a lower affinity of filipin for this sterol and emphasizes the structural differences between delta 5-sterols and 9 beta,19-cyclopropylsterols. With sterol-free soybean PC LUV, a filipin-phospholipid interaction could also be evidenced. With maize root cell membranes containing either delta 5-sterols or 9 beta,19-cyclopropylsterols, CD spectra similar to those obtained in the presence of LUV having these sterols as components were observed. Thus, the protein component of the membranes does not appear to be an important feature.

Cell Membrane↗

Recovery of hepatocytes from attack by the pore former amphotericin B.

Sublytic amounts of the pore former Amphotericin B (AmB) induced transient movements of Na and K ions across the hepatocyte plasma membranes without altering the intracellular free Ca ion concentration. The presence of 1-5 microM-AmB induced leakage of up to 80% of the intracellular K+ within 3 min, followed by Na+ entry without loss of cell viability. A repair process occurred after 3-10 min, which restored the initial cationic concentrations. Progressive binding of AmB to the cells could be observed by following the disappearance of the intense excitonic dichroic doublet of free AmB. It was shown that the amount of AmB binding, responsible for the Na+ and K+ movements, was low (approx. 16% of total AmB). The recovery process occurred when higher amounts of AmB bound to the cells, and was mediated by Na+/K+-ATPase. The c.d. spectrum of AmB bound to isolated hepatocyte plasma membranes, indicated that during this step AmB formed a complex with cholesterol, similar to that formed by the binary mixture in water.

Amphotericin B↗

Circular dichroism for the determination of amphotericin B binding to liposomes.

Circular dichroism (CD) of the antifungal antibiotic amphotericin B (AmB) can be used to characterize the liposomal preparations of the drug with regard to the levels of drug bound to the lipids. The very intense dichroic doublet centered around 340 nm of free amphotericin B in water or the dichroism observed above 435 nm can be used to determine the percentages of bound AmB and free AmB in preparations containing high antibiotic/lipid ratios (ranging from 10(-2) to 10(-1] used in these carrier systems. Examples are given for AmB in the presence of small unilamellar vesicles prepared from four saturated fatty acyl chain phosphatidylcholines of different chain lengths, with or without cholesterol. The transfer of AmB from vesicles to two blood components, serum albumin, and lipoproteins can also be monitored by CD under particular conditions.

Amphotericin B↗

Structural basis for the binding of antitumor anthracycline antibiotics to model membranes: circular dichroism studies.

Circular dichroism was used to compare the binding of several anthracycline antitumor antibiotics to sonicated phosphatidylcholine vesicles. Daunorubicin analogues, differing from the parent by structural changes in the amino sugar moiety of the molecule, were tested both with vesicles that contained negatively charged phospholipids and with neutral vesicles. The self-association properties of the analogues were also investigated. Binding to negatively charged vesicles was not strictly dependent on electrostatic interactions, since the characteristics of daunorubicin binding were totally different from those of Adriamycin (doxorubicin). Furthermore, the cardiotoxicity of these molecules did not have its origin in their quantitatively preferential electrostatic binding to negatively charged cardiolipin-containing membranes: DR-19, a daunorubicin derivative having lower cardiotoxicity than the parent compound, which bound to negatively charged vesicles in a manner quite similar to that of Adriamycin, whereas DR-10, another daunorubicin derivative with higher cardiotoxicity, bound poorly to negatively charged vesicles.

Cholesterol↗

Temperature-dependent modes for the binding of the polyene antibiotic amphotericin B to human erythrocyte membranes. A circular dichroism study.

The interaction of amphotericin B with isolated human erythrocyte ghosts was monitored by circular dichroism at 37 degrees C and 15 degrees C. Although different, these spectra were not concentration dependent over a concentration range covering the inducement of K+ leakage and hemolysis, which suggests the existence of only one bound amphotericin B species. At 15 degrees C, the spectra indicate that amphotericin B is complexed with membrane cholesterol; the complex formation is saturable but not cooperative. At 37 degrees C new spectra are observed, and their existence is conditioned by the presence of membrane proteins. The binding is cooperative but not saturable. The amphotericin B right side-out vesicles complexation is temperature as well as ionic strength dependent: at high ionic strength it is the same as with ghosts, with the same temperature dependence. At low ionic strength it is characteristic of an interaction with cholesterol, regardless of temperature. In the large unilamellar vesicles reconstituted from the total lipid extracts of erythrocyte membranes, amphotericin B is complexed with cholesterol, regardless of temperature and ionic strength. These results indicate that there are two different modes of amphotericin B complexation with erythrocyte membranes, reversible one in the other, depending on the molecular organization of the membrane and the presence of membrane proteins.

Amphotericin B↗

On the existence of an amphotericin B--sterol complex in lipid vesicles and in propanol-water systems.

The amphotericin B (AmB) - ergosterol complex, formed by interaction of the antibiotic with ergosterol-containing phospholipid vesicles, is associated with the lipid bilayer. It has been shown by circular dichroism studies that the AmB-ergosterol complex formed in water-propanol binary mixtures has a similar structure to that observed in phospholipid vesicles. A positive cooperativity is found for the interaction of AmB with ergosterol. The similar AmB-cholesterol complex is much less stable and rearranges rapidly to a different conformation.

1-Propanol↗

How do the polyene macrolide antibiotics affect the cellular membrane properties?

In the 1970's great strides were made in understanding the mechanism of action of amphotericin B and nystatin: the formation of transmembrane pores was clearly demonstrated in planar lipid monolayers, in multilamellar phospholipid vesicles and in Acholeplasma laidlawii cells and the importance of the presence and of the nature of the membrane sterol was analyzed. For polyene antibiotics with shorter chains, a mechanism of membrane disruption was proposed. However, recently obtained data on unilamellar vesicles have complicated the situation. It has been shown that: membranes in the gel state (which is not common in cells), even if they do not contain sterols may be made permeable by polyene antibiotics, several mechanisms may operate, simultaneously or sequentially, depending on the antibiotic/lipid ratio, the time elapsed after mixing and the mode of addition of the antibiotic, there is a rapid exchange of the antibiotic molecules between the vesicles. Although pore formation is apparently involved in the toxicity of amphotericin B and nystatin, it is not the sole factor which contributes to cell death, since K+ leakage induced by these antibiotics is separate from their lethal action. The peroxidation of membrane lipids, which has been demonstrated for erythrocytes and Candida albicans cells in the presence of amphotericin B, may play a determining role in toxicity concurrently with colloid osmotic effect. On the other hand, it has been shown that the action of polyene antibiotics on cells is not always detrimental: at sub-lethal concentrations these drugs stimulate either the activity of some membrane enzymes or cellular metabolism. In particular, some cells of the immune system are stimulated. Furthermore, polyene antibiotics may act synergistically with other drugs, such as antitumor or antifungal compounds. This may occur either by an increased incorporation of the drug, under the influence of a polyene antibiotic-induced change of membrane potential, for example, or by a direct interaction of both drugs. That fungal membranes contain ergosterol while mammalian cell membranes contain cholesterol, has generally been considered the basis for the selective toxicity of amphotericin B and nystatin for fungi. Actually, in vitro studies have not always borne out this assumption, thereby casting doubt on the use of polyene antibiotics as antifungal agents in mammalian cell culture media.(ABSTRACT TRUNCATED AT 400 WORDS)

Amphotericin B↗

Synergistic incorporation of daunorubicin in erythrocytes in the presence of polyene antibiotics. Role of the membrane potential.

The synergistic incorporation into red blood cells of the antitumor compound daunorubicin, in the presence of the polyene antibiotics amphotericin B and vacidin A, depended on the composition of the external medium. Synergism was observed only for concentrations of polyene antibiotics that induce cation permeability. The same synergistic effect was observed with the K+ selective carrier, valinomycin, but this had a different dependence on the external medium composition. By using the membrane probe 3,3'-dipropylthiadicarbocyanine (diS-C3-(5], the synergistic effect was shown to occur under conditions where addition of the ionophores leads to hyperpolarization of the membrane.

Amphotericin B↗

Interaction of polyene antibiotics with membrane lipids: physicochemical studies of the molecular basis of selectivity.

From various studies on the interaction of amphotericin B with unilamellar lipid vesicles, it appears that the strength of the binding does not depend only on the presence of sterol molecules in the membranes; and that several bound amphotericin B species are in competition, their relative amounts depending on the nature and percentage of sterol in the lipid bilayer. Bound amphotericin B molecules exchange rapidly between the membranes. It is therefore possible to add the antibiotic by transfer from amphotericin B-preloaded vesicles of dipalmitoylphosphatidylcholine, instead of direct addition. In these conditions the selectivity in the sensitivity to H+ leakage induced by amphotericin B between ergosterol- and cholesterol-containing vesicles is greatly enhanced. In the case of Mycoplasma laidlawii cells, a preliminary increase of K+ cellular content is observed when low doses of amphotericin B are added by transfer, an effect which is not observed with direct addition of the antibiotic.

Amphotericin B↗