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B Pradines

Publications and source records attributed to B Pradines.

At least 19 recordsLinked to original sources

[Malaria prophylaxis and treatment: problems, recent developments and perspectives].

Rapid development of significant resistance to antimalarials has been a major force driving research to identify and develop new drugs. Recent progress in this field promises to lead to a much greater range of antimalarial agents. The availability of a broader battery of drugs should provide a partial solution to the dilemma faced by malarial control agencies, i.e., distributing antimalarial drugs as widely as possible without enhancing resistance. Avenues of research for development of new antimalarials include lipid metabolism, degradation of hemoglobin and proteins, interaction with molecule transport, iron metabolism, apicoplasty and signal transduction. Throughout the course of evolution, micro-organisms have thwarted traps set by the environment including those designed by man. One can but hope that the different approaches now being implemented on a worldwide bases will overcome the defense mechanisms that Plasmodium have deployed in their long co-evolution with humans and anopheles.

Animals↗

[Iron chelation in antimalarial therapy].

Rapid development of significant resistance to antimalarial drugs has been a major force driving research to identify and develop new compounds. A number of iron(III)-chelating compounds designed for purposes other than treating malaria have in vitro antimalarial activity stemming from iron deprivation or toxic effects related to free radical release. Several of the iron(III) chelators have been effective in animal models of plasmodial infection. Desferrioxamine has been used successfully against both uncomplicated and severe malaria in humans. Iron-chelating agents seem to be promising therapeutic adjuvants for treatment of severe Plasmodium falciparum malaria infection.

Animals↗

In vitro activities of ferrochloroquine against 55 Senegalese isolates of Plasmodium falciparum in comparison with those of standard antimalarial drugs.

The in vitro activities of ferrochloroquine, chloroquine, quinine, mefloquine, halofantrine, amodiaquine, artesunate, atovaquone, cycloguanil and pyrimethamine were evaluated against Plasmodium falciparum isolates from Senegal (Dielmo, Ndiop), using an isotopic micro-drug susceptibility test. The IC50 values for ferrochloroquine ranged from 0.55 to 28.2 nM and the geometric mean IC50 for the 55 isolates was 7.9 nM (95% CI, 6.5-9.7 nM). Ferrochloroquine was 35 times more active than chloroquine (35-fold greater against chloroquine-resistant isolates), quinine, mefloquine, amodiaquine, cycloguanil and pyrimethamine. Weak positive correlations were observed between the responses to ferrochloroquine and that to chloroquine, quinine, and amodiaquine, but not compulsorily predictive of cross-resistance. There was no significant correlation between the response to ferrochloroquine and that to mefloquine, halofantrine, artesunate, atovaquone, cycloguanil and pyrimethamine. Ferrochloroquine may be an important alternative drug for the treatment of chloroquine-resistant malaria.

Animals↗

Iron chelators as antimalarial agents: in vitro activity of dicatecholate against Plasmodium falciparum.

The present study was undertaken to explore the antimalarial effect of a series of dicatecholate iron chelators. They may be made more or less lipophilic by increasing or reducing the length of the R substituent on the nitrogen. In vitro activity against the W2 and 3D7 clones of Plasmodium falciparum, toxicity on Vero cells and toxicity on uninfected erythrocytes by measure of the released haemoglobin were assessed for each compound. These findings were compared with the ability of iron(III), iron(II) and ferritin to reverse the inhibitory effect of catecholates. This study shows that increased lipid solubility of catecholate iron chelators does not lead to improved antimalarial activity. However, their activity is well correlated with their interaction with iron and with their toxicity against Vero cells. This study demonstrates a potent antimalarial effect of FR160 (R = C9H19) on five different strains of P. falciparum in vitro. FR160 inhibited parasite growth with an IC50 between 0.8 and 1.5 micro M. The effects of FR160 on mammalian cells were minimal compared with those obtained with malaria parasites. FR160 acted on parasites at considerably higher rates than desferrioxamine, and at all stages of parasite growth. The drug was more effective at the late trophozoite and young schizont stages, although FR160 affected rings and schizonts as well. Ascorbic acid, a free radical scavenger, reduced the activities of FR160 and artesunate. FR160 might induce formation of free radicals, which could explain why FR160 antagonized the effects of artesunate and dihydroartemisinin.

Animals↗

Profile and evolution of the chemosusceptibility of falciparum malaria imported into France in 2000.

In 2000, the chemosusceptibility of imported malaria was stable in France. All countries of infection considered, the bi-resistance to chloroquine and cycloguanil has not changed from 1996 to 2000. The monotherapy using quinine or mefloquine remains the first-line treatment to falciparum malaria. Resistance to these two antimalarials is rare in Africa and has not evolved over the past 15 years.

Adolescent↗

[Mechanism of action of antimalarials. Value of combined atovaquone/proguanil].

Determining the mode of action of different antimalarial drugs at the cellular level is essential to optimizing their use and to understanding the mechanisms underlying plasmodial resistance. The main targets for antimalarial drugs in Plasmodium falciparum have been the food vacuole and mitochondrial system. A new target is recently discovered organelle named the apicoplast. The apicoplast is the site of a number of metabolic pathways crucial to the survival of the parasite. It may also be involved in DNA replication and transcription. Antimalarial drugs are classified into three groups according to site of action, i.e., drugs that act on the food vacuole, drugs that block metabolic synthesis and oxidative processes, and drugs that interfere with membrane processes. Knowledge of these sites of action has enabled identification of new drugs with the most promising potential for development. Current antimalarial strategies prioritize combination therapies such as atovaquone/proguanil or artemether/lumefantrine and prolonged treatments to limit the risk of inducing drug resistant Plasmodium.

Animals↗

Ferrocene-chloroquine analogues as antimalarial agents: in vitro activity of ferrochloroquine against 103 Gabonese isolates of Plasmodium falciparum.

The in vitro activities of ferrochloroquine, chloroquine, quinine, mefloquine, halofantrine, amodiaquine, primaquine, atovaquone and artesunate were evaluated against Plasmodium falciparum isolates from children with uncomplicated malaria from Libreville (Gabon), using an isotopic, micro, drug susceptibility test. The IC(50) values for ferrochloroquine were in the range 0.43-30.9 nM and the geometric mean IC(50) for the 103 isolates was 10.8 nM (95% CI 8.6-13.5 nM), while the geometric means for chloroquine, quinine, mefloquine, amodiaquine and primaquine were 370 nM, 341 nM, 8.3 nM, 18.1 nM and 7.6 microM, respectively. Ferrochloroquine was active against P. falciparum isolates, 95% of which showed in vitro resistance to chloroquine. Weak positive significant correlations were observed between the responses to ferrochloroquine and that to chloroquine, amodiaquine and quinine, but too low to suggest cross-resistance. There was no significant correlation between the response to ferrochloroquine and those to mefloquine, halofantrine, primaquine, atovaquone or artesunate. Ferrochloroquine may be an important alternative drug for the treatment of chloroquine-resistant malaria.

Animals↗

In vitro activities of antibiotics against Plasmodium falciparum are inhibited by iron.

The in vitro activities of cyclines (tetracycline, doxycycline, minocycline, oxytetracycline, and rolitetracycline), macrolides (erythromycin, spiramycin, roxithromycin, and lincomycin), quinolones (norfloxacin and ofloxacin), rifampin, thiamphenicol, tobramycin, metronidazole, vancomycin, phosphomycin, and cephalosporins (cephalexin, cefaclor, cefamandole, cefuroxime, ceftriazone, cefotaxime, and cefoxitin) were evaluated on Plasmodium falciparum clones, using an isotopic, micro-drug susceptibility test. Only tetracyclines, macrolides, quinolones, and rifampin demonstrated in vitro activity against P. falciparum, which increased after a prolonged exposure (96 or 144 h). In the presence of iron (FeCl(3)), only the activities of tetracyclines and norfloxacin were decreased. Their in vitro activity against intraerythrocytic stages of multidrug-resistant P. falciparum and their efficacy in vivo favor the use of antibiotics as antimalarial drugs. However, due to their slow antimalarial action and to the fact that they act better after prolonged contact, they probably need to be administered in conjunction with a rapidly acting antimalarial drug, such as a short course of chloroquine or quinine.

Animals↗

[Prevention and treatment of malaria: in vitro evaluation of new compounds].

One of the current options for reducing the morbidity and mortality of malaria are chemoprophylaxis and chemotherapy. For this reason, the increasing prevalence of strains of Plasmodium falciparum resistant to chloroquine and other antimalarial drugs poses a serious problem for control of malaria. There is an urgent need to find and develop novel compounds and to identify novel chemotherapeutic targets. Different approaches to discover new compounds are presented from examples of molecules studied in the Tropical Medicine Institute of the French Army Health Service (IMTSSA) evaluation against isolates of compounds in pharmaceutical development in collaboration with pharmaceuticals (pyronaridine, benflumetol, ferrochloroquine), screening of molecules which are still registered for other pathologies (antibiotics), screening of new synthesized compounds (artemisinin derivatives) and identification of parasitical targets and essential metabolic ways for parasite, and identification of molecules acting on these targets (reversal of resistance to chloroquine, iron chelators).

Animals↗

Antibiotics for prophylaxis of Plasmodium falciparum infections: in vitro activity of doxycycline against Senegalese isolates.

The in vitro activities of doxycycline, chloroquine, quinine, amodiaquine, artemether, pyrimethamine, and cycloguanil were evaluated against Plasmodium falciparum isolates from Senegal (Dielmo and Ndiop), using an isotopic, micro, drug susceptibility test. The 71-50% inhibitory concentration (IC50) values for doxycycline ranged from 0.7 to 108.0 microM and the geometric mean IC50 for the 71 isolates was 11.3 microM (95% confidence interval = 9.5-13.4 microM). The activity of doxycycline did not differ significantly (P = 0.0858) between the chloroquine-susceptible isolates and the chloroquine-resistant isolates. There was no in vitro correlation between the responses to doxycycline and those to artemether, chloroquine, quinine, amodiaquine, pyrimethamine, and cycloguanil, suggesting no in vitro cross-resistance among these drugs. Potency was increased by prolonged exposure. In 96-hr incubations, the activity of doxycycline was 4-5-fold more increased than in 48-hr incubations. The in vitro activity of doxycycline against intraerythrocytic stages of multidrug-resistant P. falciparum, its action against the preerythrocytic forms, the lack of correlation between the responses in vitro of P. falciparum to doxycycline and the other antimalarial drugs, and its original potential site of action are factors that favor its use as antimalarial drug.

Amodiaquine↗

In vitro activities of benflumetol against 158 Senegalese isolates of Plasmodium falciparum in comparison with those of standard antimalarial drugs.

The 50% inhibitory concentration (IC50s) of benflumetol (range, 12.5 to 240 nM; mean, 55.1 nM) for 158 Senegalese isolates were evaluated. Ten isolates (6%) showed decreased susceptibility to benflumetol. Benflumetol was slightly more potent against chloroquine-resistant isolates (P < 0.025). No correlation or weak correlations in the responses to benflumetol and pyrimethamine, chloroquine, amodiaquine, artemether, quinine, and pyronaridine were observed, and these correlations are insufficient to suggest cross-resistance. Benflumetol may be an important alternative drug for the treatment of chloroquine-resistant malaria.

Animals↗

In vitro susceptibility of African isolates of Plasmodium falciparum from Gabon to pyronaridine.

The in vitro activity of pyronaridine was evaluated against 62 isolates of Plasmodium falciparum from Libreville, Gabon using an isotopic, drug susceptibility microtest and was compared with amodiaquine, chloroquine, quinine, and halofantrine activities. The mean 50% inhibitory concentration (IC50) values of the 62 isolates from Gabon to pyronaridine was 3.0 nM (95% confidence interval [CI] = 2.1-3.9). Pyronaridine was less potent against chloroquine-resistant isolates than chloroquine-susceptible isolates but more potent than chloroquine against chloroquine-resistant parasites. The cut-off value for in vitro reduced susceptibility to pyronaridine was an IC50 > 15 nM. Two isolates (3%) showed an IC50 > 15 nM. A significant positive correlation was found between the activities of pyronaridine and chloroquine (r2 = 0.26, P < 0.001), pyronaridine and quinine (r2 = 0.36, P < 0.001), pyronaridine and amodiaquine (r2 = 0.55, P < 0.001), and pyronaridine and halofantrine (r2 = 0.50, P < 0.001). This correlation suggests in vitro cross-resistance or at least in vitro cross-susceptibility, which is not necessarily predictive of cross-resistance in vivo. The present in vitro findings require comparison with those of clinical studies.

Adolescent↗

[In vitro sensitivity of Plasmodium falciparum isolates from Gabon to chloroquine and cycloguanil].

The in vitro susceptibility of 91 Plasmodium falciparum isolates obtained from malaria-infected children living near Libreville (Gabon) was evaluated against chloroquine and cycloguanil (biologically active metabolite of proguanil), using an isotopic micro-drug susceptibility test. In vitro resistance to chloroquine and cycloguanil was observed in 83% (35/42) and in 38% (30/78) of the patients, respectively. Our data showed that 41% (16/39) of Gabonese field isolates were resistant both to chloroquine and cycloguanil. These findings are of great importance because they might indicate imminent chloroquine-proguanil failure, and there are not many affordable antimalarial drugs to replace chloroquine-proguanil combination.

Adolescent↗

Synthesis and antimalarial activities of fluoroalkyl derivatives of dihydroartemisinin.

Fluoroalkyl ethers (4) of dihydroartemisinin (2) have been prepared by reaction of fluoroalkyl alcohols with dihydroartemisinin by different methods (BF3,Et2O or TMSCl catalysis or Mitsunobu reaction). Ethers 4a-d derived from primary fluoroalkyl alcohols were obtained in moderate to good yields by these methods. Ethers 4e-j have been prepared from fluoroalkyl secondary and tertiary alcohols and phenol using the Mitsunobu reaction. Although in vitro antimalarial activities of ethers toward Plasmodium falciparum W-2 asiatic strain are moderate, in vivo activities against Plasmodium berghei (NT 173) are excellent.

Animals↗

[Considering disparities in resistance of Plasmodium falciparum in Africa in chemoprevention decisions].

OBJECTIVES: Assess the efficacy of preventive and curative treatments of imported malaria. METHODS: The in vitro drug susceptibility of mefloquine, chloroquine and cycloguanil was determined against African isolates of Plasmodium falciparum from imported malaria cases by an isotopic in vitro test or a genomic approach. RESULTS: Plasmodium falciparum resistance to mefloquine, chloroquine or to the dihydrofolate reductase inhibitor was present in 5.2%, 46% and 42% of isolates respectively. Plasmodium falciparum drug resistance to chloroquine or antifolinics was more frequent in permanent than in seasonal malarial transmission areas. Simultaneous resistance to chloroquine and antifolinics was observed in 17% of isolates between 1991 and 1994 and in 28% between 1995 and 1997.

Africa↗

Plasmodium yoelii: identification of rhoptry proteins using monoclonal antibodies.

Thirteen monoclonal antibodies, obtained after immunization of mice with Plasmodium yoelii schizonts, were selected using immunofluorescence assay: they all presented typical fluorescence patterns of rhoptries. This antigen localization was confirmed by immunoelectron microscopy. The molecular weights of the recognized antigens are 68, 80, 105, 130 and 140 kDa as determined by immunoprecipitation and immunoblot under reducing and nonreducing conditions. These values are very similar to these of the low and high molecular weight complex components of Plasmodium falciparum. Furthermore, these antigens are soluble like P. falciparum rhoptry proteins. Interestingly, our monoclonal antibodies also reacted with two other Plasmodium species (Plasmodium berghei NKK173 strain and P. yoelii nigeriensis 798 VK strain), giving sometimes more complex labeling with apical, membranous, nuclear, or/and cytoplasmic localizations. Finally, none of the monoclonal antibodies stained the rhoptries of P. falciparum FCCE-1/Niger strain.

Animals↗