Search PubMed⌕ Search

SEARCH · Search PubMed

Results for “PLASMODIUM”

Search indexed PubMed citations on genomics, clinical trials, systematic reviews and public health. Explore titles, authors and supplied subject terms, then open the PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 1,063 records · Page 59Linked to original sources

Growth inhibition of Plasmodium falciparum in in vitro cultures by selective action of tryptophan-N-formylated gramicidin incorporated in lipid vesicles.

We studied the differential effect of tryptophan-N-formylated gramicidin on uninfected and Plasmodium falciparum-infected erythrocytes. Trp-N-formylated gramicidin induces a much faster leakage of K+ from infected cells than from uninfected cell whereas, and at an even lower concentration, gramicidin A' causes a rapid K+ leakage from both uninfected and infected cells. We also studied the effect of Trp-N-formylated gramicidin and gramicidin A' incorporated in liposomes on the growth of Plasmodium falciparum in an in vitro culture. Incorporation of Trp-N-formylated gramicidin in the membranes of so-called 'stealth' vesicles strongly decreases the concentration needed to induce 50% inhibition of parasite growth. Moreover, no decrease in the K+ content of uninfected cells was observed when cells were exposed to liposome-incorporated Trp-N-formylated gramicidin at a concentration which causes full inhibition of parasite growth. These observations strongly suggest that Trp-N-formylated gramicidin incorporated in 'stealth' vesicles ends up specifically in the infected cell, thereby inhibiting the growth of the growth of the malaria parasite.

Animals↗

Choline kinase activity in Plasmodium-infected erythrocytes: characterization and utilization as a parasite-specific marker in malarial fractionation studies.

Choline kinase (EC 2.7.1.32) was investigated in plasmodium falciparum-infected erythrocytes. Disrupted infected erythrocytes had a choline kinase activity of 1.9 +/- 0.2 nmol phosphorylcholine/10(7) infected cells per h, whereas the activity in normal uninfected erythrocytes was less than 6 pmol/10(7) cells per h. A broad alkaline optimal pH (7.9-9.2) was observed. The Km values for choline and ATP were 79 +/- 20 microM, and 1.3 +/- 0.3 mM, respectively. ATP concentrations higher than 12 mM inhibited choline kinase. Maximal activity was registered with a Mg2+ concentration of 10 mM, whereas its replacement by Mn2+, or other divalent cations, involved a decrease in choline kinase activity of at least 75%. Inhibition by products of the reaction, such as phosphorylcholine and ADP was investigated. In plasmodium knowlesi-infected erythrocytes, choline kinase had similar properties, but with a much higher specific activity of 16.4 +/- 2.1 nmol/10(7) infected cells per h. Subcellular fractionation of P. knowlesi-infected erythrocyte suspensions revealed that choline kinase was located exclusively in the cytosol of the parasite. We show that this enzyme is a useful index of parasite cytosolic content leakage, when infected erythrocytes are fractionated by saponin lysis or nitrogen decompression.

Choline Kinase↗

Acyl-CoA synthetase activity in Plasmodium knowlesi-infected erythrocytes displays peculiar substrate specificities.

In its blood stages the malaria parasite, Plasmodium, displays very high lipid metabolism. We present evidence for an abundant long-chain acyl-CoA synthetase (EC 6.2.1.3) activity in Plasmodium knowlesi-infected simian erythrocytes. The activity was found to be 20-fold higher in the schizont-infected (the last parasite stage) than in control erythrocytes. The cosubstrate requirements of the enzyme were similar to those previously reported for acyl-CoA synthetases from other sources. Among the separated reaction products of oleyl-CoA synthetase, only PPi and oleyl-CoA were inhibitory, with Ki over 350 microM. The fatty acid specificity of the parasite acyl-CoA synthetase activity was fairly marked and depended on the unsaturation state of the substrate. The tested fatty acids displayed similar Vmax, whereas their Km ranged from 11 (palmitate) to 59 microM (arachidonate). Finally, experiments involving heat inactivation and separation on hydroxyapatite excluded the presence of a specific arachidonyl-CoA synthetase identical to those present in other cells. On the other hand, fatty acid competition experiments evidenced the existence of at least two distinct enzymatic sites for fatty acid activation in P. knowlesi-infected simian erythrocytes: one is specific for saturated fatty acids and the other for polyunsaturated species, whereas oleate could be activated at both sites.

Animals↗

Fluorescence study of N-(3-pyrene)maleimide conjugated to rabbit skeletal F-actin and plasmodium actin polymers.

A fluorescent probe N-(3-pyrene)maleimide was conjugated to rabbit skeletal F-actin at the site of most reactive sulfhydryl group (Cys-373). Its fluorescence anisotropy decay showed a single correlation time of 560 ns at 25 degrees C, which is in a very good agreement with the correlation time of the dansyl-L-cysteine group conjugated to the same site of F-actin reported very recently [Wahl, Ph., Mihashi, K, and Auchet, J-C. (1975) FEBS Lett. 8, 164-167]. Actin from plasmodia of myxomycates, Physarum polycepharum, was also conjugated with N-(3-pyrene) maleimide and the fluorescence anisotropy was compared with rabbit skeletal F-actin using the classical steady excitation method. It was found that the internal mobility of the magnesium polymer of plasmodium actin is remarkably larger than both plasmodium F-actin and rabbit skeletal F-actin.

Actins↗

Specific detection of Plasmodium falciparum malaria by a molecularly cloned DNA probe.

A highly repeated DNA sequence from Plasmodium falciparum was cloned and used as a probe in molecular hybridization to detect malaria. Our results indicate that the probe is specific to P. falciparum but not to other species of Plasmodium and is extremely sensitive. As little as a 20 pg parasite DNA, which is equivalent to about 1000 parasites can be detected. The cloned DNA can be used as a diagnostic tool to follow the course of infection of falciparum malaria.

Animals↗

Selective antimalarial activity of tetrandrine against chloroquine resistant Plasmodium falciparum.

Antimalarial activity of tetrandrine was studied using a continuous in vitro culture of Plasmodium falciparum. Experimental results showed that tetrandrine has potent antimalarial effect on both chloroquine sensitive and resistant strains of Plasmodium falciparum. Interestingly, tetrandrine is about three times more potent against the chloroquine resistant strain than it is against the sensitive strain based on their IC50 values, which were 5.09 x 10(-7) M for the sensitive strain and 1.51 x 10(-7) M for the resistant strain. In addition, reversal experiments revealed that tetrandrine cannot reverse chloroquine-resistance, although it has verapamil-like, calcium-channel-blocker activity.

Alkaloids↗

Differential effects of chloroquine on the phospholipid metabolism of Plasmodium-infected erythrocytes.

The effect of the antimalarial drug chloroquine (CQ) on the phospholipid metabolism in Plasmodium knowlesi-infected simian erythrocytes has been studied by incubating cells with different labeled precursors and various concentrations of CQ. The drug induced considerable modifications of this metabolism but at the same time decreased nucleic acid and protein synthesis as well as the output of 14CO2 from radioactive glucose. Phosphatidylcholine biosynthesis was severely reduced. However, under these conditions, CQ had the early effect of markedly increasing phosphatidylinositol labeling from radioactive inositol, fatty acids, 1-(14C)palmitoyl-lysophosphatidylcholine, but not from glycerol. Synthesis of phosphatidylserine from (14C)serine and of phosphatidylethanolamine from labeled glycerol, ethanolamine, and serine was increased, especially at high CQ concentrations when the whole metabolism of the parasite was severely reduced. These effects reflect a deep differential effect of CQ on the intense phospholipid metabolism of the Plasmodium-infected erythrocytes, which might involve a redirecting of phospholipid metabolism similar to that induced by other cationic amphiphilic drugs, and a compensatory synthesis resulting from the severe blockage of phosphatidylcholine synthesis.

Animals↗

Plasmodium falciparum: sporozoite boosting of immunity due to a T-cell epitope on a sporozoite vaccine.

Plasmodium falciparum: Sporozoite boosting of immunity due to a T-cell epitope on a sporozoite vaccine. Experimental Parasitology 64, 64-70. The impact of a malaria sporozoite vaccine may be enhanced if protective immunity elicited by the vaccine is boosted by natural exposure to sporozoites. For this to occur, a helper T lymphocyte epitope present on the vaccine must be shared by sporozoites. These studies show that T cells from mice immunized with R32tet32, the Plasmodium falciparum sporozoite vaccine candidate, recognize an epitope of less than or equal to 7 amino acids derived from the circumsporozoite protein repeat region of R32tet32, as well as an epitope on the tet32 fusion protein tail of R32tet32. Exposure of R32tet32 immunized animals to P. falciparum sporozoites elicits a significant secondary antibody response which suggests that humans who are immunized and respond to this vaccine may be boosted by field exposure to sporozoite infected mosquitoes.

Animals↗

Assessment of immune phagocytosis of Plasmodium falciparum infected red blood cells by human monocytes and polymorphonuclear leukocytes. A method for visualizing infected red blood cells ingested by phagocytes.

A method is described for the visualization of red blood cells infected with Plasmodium falciparum ingested by monocytes or polymorphonuclear leukocytes (PMN) after in vitro incubation. Smears were stained with peroxidase followed by 4,6-diamino-2-phenylindole (DAPI) staining specific for DNA. Monocytes or PMN were identified under normal illumination by the peroxidase stain and the nuclei of these cells as well as the parasites were identified by means of the DAPI stain with ultraviolet light. Using this method we found that monocytes and PMN from normal blood donors preferentially phagocytose plasmodium falciparum infected red blood cells in the presence of sera from subjects living in areas endemic for malaria.

Animals↗

Allelic dimorphism in a surface antigen gene of the malaria parasite Plasmodium falciparum.

Merozoites of the malaria parasite Plasmodium falciparum carry surface proteins processed from a precursor termed p190 or p195. Polymorphism has been reported in this protein. Since the protein is a candidate for a malaria vaccine, it is important to understand the nature of this polymorphism. We have determined the complete nucleotide sequence of the p190 gene from the MAD20 strain (a Papua New Guinea isolate). Comparisons of the gene with that from other strains of P. falciparum allowed us to study the genetic basis of the antigen's polymorphism. The gene consists of sequences distributed in variable blocks, which are separated by conserved or semi-conserved sequences. Variable sequences occur both in regions that code for tripeptide repeats and in regions with no apparent repeats. Interestingly, according to the present data, variable sequences are not widely polymorphic but fall into two distinct types. We argue that the p190 protein is encoded by dimorphic alleles capable of limited genetic exchange and present evidence at the nucleotide level documenting intragenic recombination in Plasmodium.

Alleles↗

A genetic study of the susceptibility of Anopheles gambiae to Plasmodium berghei.

In a study of the genetics of susceptibility and refractoriness of Anopheles gambiae to Plasmodium species, nine generations of selection resulted in a completely susceptible line and an entirely refractory line to Plasmodium berghei (a rodent malaria). The F1 progeny from reciprocal crosses between the lines differed in their susceptibility to the parasite. Backcrosses to the parent did not produce proportions of susceptible and refractory individuals consistent with single gene inheritance or with cytoplasmic inheritance but the influence of a sex linked factor was demonstrated.

Animals↗

Susceptibility of Plasmodium falciparum to five drugs: an in vitro study of isolates mainly from Thailand.

This paper describes the results of testing the susceptibility of 60 isolates of the human malaria parasite Plasmodium falciparum from Thailand, and single isolates from five other countries, to five drugs: chloroquine, pyrimethamine, quinine, mefloquine and amodiaquine. The Thai isolates were obtained from patients in three different regions of the country (Chantaburi, Songkhla and Mae Sod), and were first grown in culture by the Trager-Jensen candle-jar technique. Samples were then exposed to a range of concentrations of the five drugs, in Falcon microtest culture wells, for 72 hours, with daily changes of medium (with or without added drug solutions). Presence or absence of parasites was then determined by microscope observations on thin-film Giemsa-stained preparations. Most Thai isolates showed a minimum inhibitory concentration (MIC) for chloroquine of 10(-6) M or higher, and were classified as highly resistant, though one cloned isolate was as sensitive to this drug as a chloroquine-sensitive isolate from West Africa. Similarly most Thai isolates showed a very high resistance to pyrimethamine (MIC 10(-4) M to 10(-6) M), but a few clones were sensitive (MIC 10(-9)) to it. Susceptibility to quinine showed some variation (MIC varied between 10(-6) M and 10(-8) M), and some isolates were thought to be incapable of responding to a therapeutically permissible dose of this drug. Little variation was found in the reaction of any of the isolates to mefloquine or amodiaquine, and by the in vitro technique used in this study, it was found that chloroquine-resistant and chloroquine-sensitive isolates were equally susceptible to amodiaquine. In general the survey showed the existence of a marked correlation between development of drug resistance of Plasmodium falciparum and the extent to which a given drug had been used in Thailand.

Amodiaquine↗

Application of exoantigens of Babesia and Plasmodium in vaccine development.

The University of Illinois malaria vaccine programme uses culture-derived soluble exoantigens of Plasmodium falciparum and the squirrel monkey as an experimental model. Exoantigens are soluble polypeptides naturally released into the blood plasma of animals infected with Babesia or Plasmodium species, or into the supernatant medium of in vitro cultures of these organisms. Immunization with soluble B. bovis and B. bigemina exoantigens prepared from culture supernatant fluids protected cattle against homologous and heterologous challenge. Similarly, vaccination of squirrel monkeys with supernatant fluids from P. falciparum cultures containing exoantigen induced protective immunity against acute clinical malaria. Susceptible monkeys have been vaccinated with an aluminium hydroxide-fortified antigenic fraction partially purified from supernatants of P. falciparum strains Indochina I and Genève/SGE-1; this conferred significant clinical protection against needle challenge with the homologous Indochina I strain, and a moderate degree of immunity to the heterologous strain. Following sequential purification by high performance liquid chromatography, the N-terminal amino acid sequences of P. falciparum 100 kDa, 83 kDa and 70 kDa exoantigens were determined. A 29 amino acid peptide constructed from the N-terminal sequence of the P. falciparum (Genève strain) 83 kDa exoantigen has been synthesized. When coupled to a carrier protein, the peptide was immunogenic in rabbits, mice and squirrel monkeys, inducing antibodies which were trophozoite-specific, reactive to native parasite proteins in a two-site enzyme immunoassay (EIA) and in Western blots, and which inhibited P. falciparum growth in vitro. Using this synthetic peptide, EIAs are being developed for the detection of antibodies to P. falciparum blood-phase parasites in individuals living in malaria-endemic areas of Africa, Asia and South America.

Animals↗

Reappearance of Plasmodium malariae in Suriname?

Plasmodium malariae has not been reported from Suriname since 1979. In 1989 an increasing number of P. vivax infections among Bush-negroes returning from the eastern part of the interior was reported in Paramaribo. A microscopical re-examination of all malaria cases in the eastern part of the country failed to confirm any P. vivax infections, but instead P. malariae infections were diagnosed. A study followed to determine the Duffy blood group antigens of 4 Bush-negroes allegedly with a P. vivax infection in their medical history and of 28 and 32 unselected Bush-negroes and Amerindians respectively. Three of the 4 former Bush-negroes had the FyB antigen, while only 7% of the unselected Bush-negroes had this antigen. This low frequency of the genotype is incompatible with reports of high P. vivax prevalences in Bush-negro populations. The Amerindians tested showed a low proportion of Fy0 genotype, which is compatible with the frequent diagnosis of P. vivax among this ethnic group. Reports of P. vivax infections among Bush-negroes are due to misdiagnosis of P. malariae, emphasizing the need to include all 4 species of human Plasmodium when (re)training microscopists. The question whether P. malariae reappeared in Suriname due to increased contact with the simian reservoir, or was simply missed, is discussed.

Animals↗

Polymerase chain reaction detection of Plasmodium falciparum in mosquitoes.

The polymerase chain reaction (PCR) procedure using a primer set derived from a repetitive deoxyribonucleic acid (DNA) sequence specific to Plasmodium falciparum was used to detect parasite DNA in mosquitoes. In laboratory-infected mosquitoes, PCR could detect as few as 10 sporozoites in a dissected salivary gland and a single oocyst in a dissected midgut. The ability to detect P. falciparum DNA in wild-caught mosquitoes indicated an advantage of the PCR over enzyme-linked immunosorbent assay for the detection of Plasmodium sporozoites in mosquitoes with low-grade parasite infections.

Animals↗

The Duffy receptor family of Plasmodium knowlesi is located within the micronemes of invasive malaria merozoites.

Plasmodium vivax and Plasmodium knowlesi merozoites invade human erythrocytes that express Duffy blood group surface determinants. A soluble parasite protein of 135 kd binds specifically to a human Duffy antigen. Using antisera affinity purified on the 135 kd protein, we cloned a gene that encodes a member of a P. knowlesi family of erythrocyte binding proteins. The gene is a member of a family that includes three homologous genes located on separate chromosomes. Two genes are expressed as major membrane-bound products that give rise to soluble erythrocyte binding proteins: the 135 kd Duffy binding protein and a 138 kd protein that binds only rhesus erythrocytes. These different erythrocyte binding specificities may result from sequence divergence of the homologous genes. The Duffy receptor family is localized in micronemes, an organelle found in all organisms of the phylum Apicomplexa.

Amino Acid Sequence↗

TNF and Plasmodium berghei ANKA-induced cerebral malaria.

The cerebral pathology observed in Plasmodium berghei ANKA-infected CBA mice has been attributed to overproduction of TNF, the mice in which this syndrome is seen being those with the highest serum TNF levels. To investigate this further, we injected recombinant human TNF into malaria-primed mice to see if we could reproduce the cerebral changes observed in P. berghei ANKA infections. A range of doses, administered as a single or repeated injections, or via osmotic pumps, failed to reproduce these changes, but did induce hypoglycaemia, midzonal liver necrosis and neutrophil adhesion in pulmonary vessels. This pathology is seen in terminal Plasmodium vinckei infections, but absent in terminal P. berghei ANKA. In addition, the permeability of the blood-brain barrier to Evan's blue, which is present in P. berghei ANKA but not in normal or P. vinckei-infected mice, was not induced by exogenous TNF. Serum levels of TNF were measured in an ELISA assay, and found to be consistently higher in P. vinckei rather than P. berghei ANKA terminal infections. This is consistent with the pathological changes we could reproduce by injecting TNF. For these reasons we suggest that the cerebral pathology seen in mice infected with P. berghei ANKA may be governed by TNF produced locally by monocytes sequestered within the cerebral blood vessels, not simply by systemic levels of this cytokine.

Animals↗

The immune response to the blood stages of Plasmodium in animal models.

Several models can be used to study the erythrocytic stages of Plasmodium in the vertebrate host. Although no single-model system reflects the human infection exactly, different systems taken together provide important information on the antigens necessary to stimulate protective immunity and the mechanisms of immunity and immunopathogenesis. Investigations, particularly in rodent models, have demonstrated the importance of CD4+ T cells in protective immunity to erythrocytic parasites and have shown that effector functions (Th1 and Th2) of these cells may play a role in parasite clearance. Because of the nature of the peptide-MHC interaction, animal models may not supply detailed information on the fine specificity of T-cell responses. However, immunisations of rodents and primates with a variety of recombinant proteins of Plasmodium will indicate the feasibility and limitations of using peptide vaccines in man.

Animals↗