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The plant-type ferredoxin-NADP+ reductase/ferredoxin redox system as a possible drug target against apicomplexan human parasites.

Apicomplexa are unicellular, obligate intracellular parasites of great medical importance. They include human pathogens like Plasmodium spp., the causative agent of malaria, and Toxoplasma gondii, an opportunistic parasite of immunosuppressed individuals and a common cause of congenital disease (toxoplasmosis). They alone affect several hundred million people worldwide so that new drugs, especially for plasmodial infections, are urgently needed. This review will focus on a recently emerged, potential drug target, a plant-type redox system consisting of ferredoxin-NADP(+) reductase (FNR) and its redox partner, ferredoxin (Fd). Both reside in an unique organelle of these parasites, named apicoplast, which is of algal origin. The apicoplast has been shown to be required for pathogen survival. In addition to other pathways already identified in this compartment, the FNR/Fd redox system represents a promising drug target because homologous proteins are not present in host organisms. Furthermore, a wealth of structural information exists on the closely related plant proteins, which can be exploited for structure-function studies of the apicomplexan protein pair. T. gondii and P. falciparum FNRs have been cloned, and the T. gondii enzyme was shown to be a flavoprotein active as a NADPH-dependent oxidoreductase. Both phylogenetic and biochemical analyses indicate that T. gondii FNR is similar in function to the isoform present in non-photosynthetic plastids whereby electron flow is from NADPH to oxidized Fd. The resulting reduced Fd is then presumably used as a reductant for various target enzymes whose nature is just starting to emerge. Among the likely candidates is the iron-sulfur cluster biosynthesis pathway, which is also located in the apicoplast and dependent on reducing power. Furthermore, lipoic acid synthase and enzymes of the isoprenoid biosynthetic pathway may be other conceivable targets. Since all these metabolic steps are vital for the parasite, blocking electron flow from FNR to Fd by inhibition of either FNR activity or its molecular interaction with Fd should also interfere with these pathways, ultimately killing the parasite. Although the three-dimensional structure of FNR from T. gondii is not yet known, experimental and computational evidence shows that apicomplexan and plant enzymes are very similar in structure. Furthermore, single amino acid changes can have profound effects on the enzyme activity and affinity for Fd. This knowledge may be exploited for the design of inhibitors of protein-protein interaction. On the other hand, specifically tailored NAD(P) analogues or mimetics based on previously described substances might be useful lead compounds for apicomplexan FNR inhibitors.

Animals↗

Evidence of a limited schizogonous cycle for Cytauxzoon felis in bobcats following exposure to infected ticks.

Schizogonous tissue stages of Cytauxzoon felis (Apicomplexa: Theileridae) were not observed by microscopic evaluation of impression smears of liver, spleen, lung and lymph nodes in 10 bobcats (Lynx rufus) from Oklahoma with naturally occurring piroplasm infections. Schizogonous stages were observed in similar tissues from experimentally-infected bobcats at 11 days postexposure to infected Dermacentor variabilis, but not at 30 days following tick feeding. The schizogonous cycle of this parasite appears to be short, although the bobcat appears to be a long-term carrier.

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The apicoplast: a review of the derived plastid of apicomplexan parasites.

The apicoplast is a plastid organelle, homologous to chloroplasts of plants, that is found in apicomplexan parasites such as the causative agents of Malaria Plasmodium spp. It occurs throughout the Apicomplexa and is an ancient feature of this group acquired by the process of endosymbiosis. Like plant chloroplasts, apicoplasts are semi-autonomous with their own genome and expression machinery. In addition, apicoplasts import numerous proteins encoded by nuclear genes. These nuclear genes largely derive from the endosymbiont through a process of intracellular gene relocation. The exact role of a plastid in parasites is uncertain but early clues indicate synthesis of lipids, heme and isoprenoids as possibilities. The various metabolic processes of the apicoplast are potentially excellent targets for drug therapy.

Animals↗

Apicomplexan parasites: environmental contamination and transmission.

The Apicomplexa are a diverse group of intracellular parasitic protists. The majority of species from the classes Coccidea, Haemosporea and Piroplasmea are responsible for widespread diseases of humans and domestic animals. Oocysts of these parasites can persist for long periods of time in the environment (i.e. in water, soil, on vegetation and other food resources), maintaining their infectivity even under harsh environmental conditions and therefore are important for dispersal and transmission to hosts. This review will address the biology, transmission patterns and survival in the environment of Cryptosporidium, Cyclospora and Toxoplasma species, the most common causes of human diseases.

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[A potential zoonotic parasitosis: Coccidial dermatitis due to Caryospora. New techniques for exploration within human nutrition].

The genus Caryospora belongs to the phylum Apicomplexa, class Sporozasida, order Eucoccidiorida. The primary hosts of its species, the best known of which are C. simplex Leger 1904 and C. bigenetica Wacha and Christiansen 1982, are carnivorous reptiles and birds of prey. The life cycle of the parasites, in these primary hosts, is a typical coccidian one, monoxenous, leading to the production of sporulated oocysts, infectious for snakes and birds, in the enterocytes of which the parasite will evolve. Beside this life-cycle, another one may take place, involving secondary hosts; these are rodents, getting infected by sporulated oocysts produced by the primary hosts, and which allow an exenteral but complete life-cycle, in various tissues, mainly connective tissue and dermis. The upshot of this life-cycle is the production of caryocysts formed from sporozoïtes having left the sporulated oocysts in the infected exenteral tissues. An interesting point is that dog and pig may be infected either from oocysts emitted by primary hosts, or by consuming infected secondary hosts bearing caryoscysts. As a matter of fact, the infection can evolve among secondary hosts, without any passage in primary hosts. The infected dogs exhibit a severe, sometimes generalized pyo-granulomatous dermatitis, that, in deficient animals, may be associated with a poor general state of health. On the other hand, Caryospora species may grow and evolve in human cells grown in vitro. According to all these facts, one cannot help conjuring up the possibility, for man, to get the caryosporan infection.(ABSTRACT TRUNCATED AT 250 WORDS)

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Light and electron microscopic examination of so-called piroplasms of fishes from Atlantic Canada and systematic revision of the Haemohormiidae (Incertae sedis).

Haemohormidium terranovae infections in American plaice and infections with a similar parasite in oceanpout were examined by light and electron microscopy. All plaice were infected at the time of capture and remained infected for over 2 yr. Prevalence in oceanpout varied seasonally between 0% and 80%. Uninucleate, binucleate, and tetranucleate forms were found in both species. In addition, octonucleate stages were observed in some erythrocytes of infected plaice. The presence of DNA in parasite nuclei was confirmed. There was no evidence of any ultrastructural feature characteristic of the phylum Apicomplexa. It is proposed that the genus Haemohormidium Henry, 1910 be considered incertae sedis and the senior synonym to Haematractidium Henry, 1910.

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Malaria and other Apicomplexans: the "plant" connection.

Recent molecular studies point to the unorthodox conclusion that malaria parasites have a photosynthetic ancestry. Coupled with other phylogenetic evidence, this finding may apply across the phylum Apicomplexa, including other important pathogens such as the coccidia and piroplasms. We propose that an organelle corresponding to a residual plastid, performing unknown functions, is likely to reside in all, or many, of these organisms. The new findings discussed here highlight once more the pressing need to discover more about the basic biology of these economically important parasites. From such knowledge, new targets for chemotherapy may be identified.

Amino Acid Sequence↗

Phylogenetic analysis of Perkinsus based on actin gene sequences.

Perkinsus species presently are classified within the phylum Apicomplexa. This placement, however, is controversial. Based upon morphological observations and phylogenetic analyses of the small subunit ribosomal RNA gene, it has been suggested that Perkinsus may be more closely related to dinoflagellates. To reevaluate the phylogenetic position of Perkinsus, we obtained nucleotide sequence data for actin genes from Perkinsus marinus and 2 dinoflagellates, Prorocentrum minimum and Amphidinium carterae. Results indicated that there are 2 closely related actin genes in the genome of P. marinus. Phylogenetic comparisons of these actin gene fragments of P. marinus to available actin gene sequences for several ciliates and apicomplexans and to the 2 actin gene sequences from dinoflagellates obtained in this study supported a closer affinity of P. marinus to dinoflagellates than to apicomplexans.

Actins↗

The role of the cytoskeleton in host cell invasion by Toxoplasma gondii.

The protozoan parasite Toxoplasma gondii provides a model system for studying invasion by intracellular parasites belonging to the phylum Apicomplexa. Taking advantage of the versatility of T. gondii for genetic and cell biological studies, we have shown that parasite motility and cell invasion are powered by an actin-myosin based motor in the parasite. Unlike bacterial cell uptake, parasite invasion does not involve significant alterations in the host cell cytoskeleton. Instead, invasion is an active process of penetration into the host cell by the parasite. The force for cell penetration is provided by a unique form of substrate-dependent motility termed gliding. Gliding motility is characterized by the rearward capping of surface membrane proteins that propels the parasite forward in a helical spiral. Both actin and myosin are localized beneath the plasma membrane in the parasite where they presumably combine to produce the force necessary for motility. During cell invasion, the rearward capping of cell surface receptors envelopes the parasite in a unique vacuole derived from the host cell plasma membrane. This system offers insights into force generation and motility in a simple organism that is also an important human pathogen.

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Transport and trafficking: Toxoplasma as a model for Plasmodium.

Like Plasmodium, the protozoan parasite Toxoplasma gondii is a member of the phylum Apicomplexa, and an obligate intracellular pathogen. Unlike Plasmodium, however, Toxoplasma is highly amenable to experimental manipulation in the laboratory. The development of molecular transformation protocols for T. gondii has provided both scientific precedent and practical selectable markers for Plasmodium. Beyond the feasibility of molecular biological experimentation now possible in both systems, the high frequency of stable transformation in Toxoplasma allows this parasite to be used for molecular genetic analysis. The ability to control homologous vs. non-homologous recombination in T. gondii permits gene knockouts/allelic replacements at previously cloned loci, and saturation insertional mutagenesis of the entire parasite genome (and cloning of the tagged loci). T. gondii also exhibits unusual ultrastructural clarity, facilitating cell biological analysis. The accessibility of Toxoplasma as an experimental system allows this parasite to be used as a surrogate for asking many questions that cannot easily be addressed in Plasmodium itself. T. gondii also serves as a model system for genetic exploration of parasite biology and host-parasite interactions. Success stories include: biochemical analysis of antifolate resistance mechanisms; pharmacological studies on the mechanisms of macrolide activity; genetic identification of nucleobase/nucleoside transporters and metabolic pathways; and cell biological characterization of the apicomplexan plastid. As with any model system, not all questions of interest to malariologists can be addressed in Toxoplasma; differentiating between sensible and foolish questions requires familiarity with the biological similarities and differences of these systems.

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Actin and myosin in Gregarina polymorpha.

Actin and two class XIV unconventional myosins have been cloned from Gregarina polymorpha, a large protozoan parasite inhabiting the gut of the mealworm Tenebrio molitor. These proteins were most similar to their homologues expressed in the coccidian and haemosporidian Apicomplexa such as Toxoplasma and Plasmodium despite the significant morphological differences among these parasites. Both actin and G. polymorpha myosin A (GpMyoA), a 92.6-kDa protein characterized by a canonical myosin head domain and short, highly basic tail, localized to both the longitudinally-disposed surface membrane folds (epicytic folds) of the parasite as well as to the subjacent rib-like myonemes that gird the parasite cortex. G. polymorpha myosin B (GpMyoB), a 96.3-kDa myosin, localized exclusively to the epicytic folds of the parasite. Both myosins were tightly associated with the cortical cytoskeleton and were solubilized only with a combination of high salt and detergent. Both GpMyoA and GpMyoB could bind to actin in an ATP-sensitive fashion. The distribution of actin and the unconventional myosins in G. polymorpha was consistent with their proposed participation in both the rapid (1-10 microm/sec) gliding motility exhibited by the gregarines as well as the myoneme-mediated bending motions that have been observed in these parasites.

Actins↗

Attachment of Toxoplasma gondii to host cells involves major surface protein, SAG-1 (P30).

Previous observations have demonstrated that monoclonal and polyclonal antibodies directed at SAG-1, the major surface protein of Toxoplasma gondii, decreased the number of T. gondii that infected fibroblast monolayers. Direct evaluation of parasite-host cell attachment using glutaraldehyde-fixed human fibroblasts and live tachyzoites was performed to determine whether SAG-1 was a ligand for the host cell receptor. The interaction between the fixed cells and T. gondii was specific and saturable as determined by a radioisotope competitive binding assay. Moreover, the specificity of this interaction was confirmed by comparison to another member of the Apicomplexa, Besnoitia jellisoni. Treatment of fresh extracellular T. gondii with rabbit polyclonal anti-SAG-1 serum inhibited parasite attachment to host cells by 71%. A monoclonal antibody (6A8) directed at SAG-1 was able to inhibit parasite binding to fixed host cells by 65%. Other mAb's directed at SAG-1 failed to inhibit parasite attachment in this assay. Fab derived from 6A8 mAb showed dose-dependent inhibition of parasite attachment. At an Fab concentration of 25 micrograms/ml, 47% inhibition was observed. Attachment assays using mutant parasites with defective SAG-1 (PTgA and PTgC) showed significantly reduced binding (26 and 39%) when compared to wild-type (SAG-1+) parentals. Taken together, these observations suggest that SAG-1 is an important parasite ligand that binds to the host cell in the process of T. gondii invasion.

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Characterization of extreme apical antigens from Toxoplasma gondii.

We have isolated 26 monoclonal antibodies which specifically recognize the extreme apex of Toxoplasma gondii, a protozoan parasite which attaches to and invades host cells via its specialized apical end. The unique apical organelles which define the phylum Apicomplexa are thought to be involved in mechanical and enzymatic aspects of invasion. Immunoblots, immunofluorescence morphology, and immunogold labeling define six classes of apically localized antigens recognized by these antibodies. Three of the classes are detergent-insoluble and localize to the conoid and the cytoplasmic face of the apical membrane, suggesting that they may be part of the parasite's membrane cytoskeleton. The remaining three classes extract with detergent and are associated with internal membrane bounded vesicles (micronemes and the upper necks of rhoptries). One class of micronemal antigens appears to be cell cycle regulated. This antigen localizes to the cytoplasm, especially the perinuclear region, in thin (recently replicated) parasites, but is apical in larger parasites.

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Complete gene map of the plastid-like DNA of the malaria parasite Plasmodium falciparum.

Malaria parasites, and other parasitic protists of the Phylum Apicomplexa, carry a plastid-like genome with greatly reduced sequence complexity. This 35 kb DNA circle resembles the plastid DNA of non-photosynthetic plants, encoding almost exclusively components involved in gene expression. The complete gene map described here includes genes for duplicated large and small subunit rRNAs, 25 species of tRNA, three subunits of a eubacterial RNA polymerase, 17 ribosomal proteins, and a translation elongation factor. In addition, it codes for an unusual member of the Clp family of chaperones, as well as an open reading frame of unknown function found in red algal plastids. Transcription is polycistronic. This plastid-like DNA molecule is conserved in several genera of apicomplexans and is conjectured to have been acquired by an early progenitor of the Phylum by secondary endosymbiosis. The function of the organelle (plastid) carrying this DNA remains obscure, but appears to be specified by genes transferred to the nucleus.

Amino Acid Sequence↗

The in vivo conformation of the plastid DNA of Toxoplasma gondii: implications for replication.

The Phylum Apicomplexa comprises thousands of obligate intracellular parasites, some of which cause serious disease in man and other animals. Though not photosynthetic, some of them, including the malaria parasites (Plasmodium spp.) and the causative organism of Toxoplasmosis, Toxoplasma gondii, possess a remnant plastid partially determined by a highly derived residual genome encoded in 35 kb DNA. The genetic maps of the plastid genomes of these two organisms are extremely similar in nucleotide sequence, gene function and gene order. However, a study using pulsed field gel electrophoresis and electron microscopy has shown that in contrast to the malarial version, only a minority of the plastid DNA of Toxoplasma occurs as circular 35 kb molecules. The majority consists of a precise oligomeric series of linear tandem arrays of the genome, each oligomer terminating at the same site in the genetic map, i.e. in the centre of a large inverted repeat (IR) which encodes duplicated tRNA and rRNA genes. This overall topology strongly suggests that replication occurs by a rolling circle mechanism initiating at the centre of the IR, which is also the site at which the linear tails of the rolling circles are processed to yield the oligomers. A model is proposed which accounts for the quantitative structure of the molecular population. It is relevant that a somewhat similar structure has been reported for at least three land plant chloroplast genomes.

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Cryofracture electron microscopy of the ookinete pellicle of Plasmodium gallinaceum reveals the existence of novel pores in the alveolar membranes.

The malaria parasite invades the midgut tissue of its mosquito host as a motile form called the ookinete. We have examined the pellicle of the ookinete of Plasmodium gallinaceum by freeze-fracture and quick-freeze, deep-etch electron microscopy. The general organization is analogous to that of invasive stages of other members of Apicomplexa. The pellicle is composed of three membranes: the plasma membrane, and the two linked intermediate and inner membranes, which in the ookinete form one flattened vacuole that is located beneath the plasma membrane. The edges of this vacuole form a longitudinal suture. Beneath the vacuole is found an array of microtubules that are connected to the inner membrane by intramembranous particles. During freeze-fracture, the membranes can split along their hydrophobic planes, thus yielding six fracture faces, each of which displays a characteristic pattern of intramembranous particles. Additionally, we find that the ookinete pellicle differs from all other apicomplexan motile stages by the presence of large pores. These pores are of unknown function, but clearly might constitute a novel pathway for the transport of molecules to and from the cortex, which is independent of the well-described route through the apical micronemal/rhoptry complex. The pores may be the route by which motor proteins or other non micronemal surface proteins are trafficked, such as P25/P28 and SOAP, some of which are implicated in transmission blocking immunity.

Aedes↗

Oligonucleotide probes complementary to variable regions of 18S rRNA from Sarcocystis species.

Sarcocystis is a large genus of cyst-forming coccidian parasites in the phylum Apicomplexa (Protista). Stable RNA was extracted from cystozoites of Sarcocystis cruzi, S. tenella, S. fusiformis, S. gigantea and Toxoplasma gondii. The partial sequences of the small sub-unit ribosomal RNA (18S rRNA) were determined by direct RNA sequencing with reverse transcriptase. The rRNA sequences were computer aligned with the published partial sequence of T. gondii, and three oligonucleotides complementary to different variable regions of the 18S rRNA were synthesized. The three probes were end-labelled with 32P and tested in filter hybridization experiments. One of the probes designed to be Sarcocystis genus-specific, did not cross-hybridize to stable RNA from T. gondii. Two of the probes were designed to be species-specific for S. cruzi and S. tenella, and these probes hybridized specifically with their respective targets.

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Methods to prepare RNA and to isolate developmentally regulated genes from Eimeria.

Coccidians represent a large class of important intracellular parasites that traverse multiple developmental stages that are distinct and required to complete the life cycle. The biochemical details underlying the regulation of transformation from one developmental form to the next are limited and the study of such details presents unique obstacles. However, the genetic program is critical and may provide a basis for understanding the biology of these organisms in addition to the opportunity to suppress development and infection. We provide a basic overview of several strategies, including previously unpublished results, used by this laboratory to isolate stage-specific genes from Eimeria bovis. Additionally, we have included detailed discussions that summarize the associated advantages and disadvantages of each as applied to coccidia and potentially to other parasites in the phylum Apicomplexa. Given that the purification of sufficient quantities of high-quality RNA is vital, we have included detailed protocols for the isolation of RNA from various parasite stages. Also included is a detailed protocol to apply mRNA differential display to investigate stage-specific developmental regulation.

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