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1.
Cell ; 166(6): 1423-1435.e12, 2016 Sep 08.
Article in English | MEDLINE | ID: mdl-27594426

ABSTRACT

Apicomplexan parasites are leading causes of human and livestock diseases such as malaria and toxoplasmosis, yet most of their genes remain uncharacterized. Here, we present the first genome-wide genetic screen of an apicomplexan. We adapted CRISPR/Cas9 to assess the contribution of each gene from the parasite Toxoplasma gondii during infection of human fibroblasts. Our analysis defines ∼200 previously uncharacterized, fitness-conferring genes unique to the phylum, from which 16 were investigated, revealing essential functions during infection of human cells. Secondary screens identify as an invasion factor the claudin-like apicomplexan microneme protein (CLAMP), which resembles mammalian tight-junction proteins and localizes to secretory organelles, making it critical to the initiation of infection. CLAMP is present throughout sequenced apicomplexan genomes and is essential during the asexual stages of the malaria parasite Plasmodium falciparum. These results provide broad-based functional information on T. gondii genes and will facilitate future approaches to expand the horizon of antiparasitic interventions.


Subject(s)
Apicomplexa/genetics , Clustered Regularly Interspaced Short Palindromic Repeats , Genome-Wide Association Study , Host-Parasite Interactions , Protozoan Proteins/genetics , Protozoan Proteins/metabolism , Toxoplasma/genetics , Cells, Cultured , Claudins/genetics , Claudins/metabolism , Fibroblasts/parasitology , Genome, Protozoan/genetics , Humans , Malaria, Falciparum/parasitology , Malaria, Falciparum/physiopathology , Plasmodium falciparum/genetics , Toxoplasmosis/parasitology , Toxoplasmosis/physiopathology
2.
Annu Rev Microbiol ; 2024 Aug 01.
Article in English | MEDLINE | ID: mdl-39088861

ABSTRACT

Pore-forming toxins (PFTs) are released by one cell to directly inflict damage on another cell. Hosts use PFTs, including members of the membrane attack complex/perforin protein family, to fight bacterial infections and cancer, while bacteria and parasites deploy PFTs to promote infection. Apicomplexan parasites secrete perforin-like proteins as PFTs to egress from infected cells and traverse tissue barriers. Other protozoa, along with helminth parasites, utilize saposin-like PFTs prospectively for nutrient acquisition during infection. This review discusses seminal and more recent advances in understanding how parasite PFTs promote infection and describes how they are regulated and fulfill their roles without causing parasite self-harm. Although exciting progress has been made in defining mechanisms of pore formation by PFTs, many open questions remain to be addressed to gain additional key insights into these remarkable determinants of parasitic infections.

3.
EMBO J ; 42(23): e113155, 2023 Dec 01.
Article in English | MEDLINE | ID: mdl-37886905

ABSTRACT

Apicomplexan parasites discharge specialized organelles called rhoptries upon host cell contact to mediate invasion. The events that drive rhoptry discharge are poorly understood, yet essential to sustain the apicomplexan parasitic life cycle. Rhoptry discharge appears to depend on proteins secreted from another set of organelles called micronemes, which vary in function from allowing host cell binding to facilitation of gliding motility. Here we examine the function of the microneme protein CLAMP, which we previously found to be necessary for Toxoplasma gondii host cell invasion, and demonstrate its essential role in rhoptry discharge. CLAMP forms a distinct complex with two other microneme proteins, the invasion-associated SPATR, and a previously uncharacterized protein we name CLAMP-linked invasion protein (CLIP). CLAMP deficiency does not impact parasite adhesion or microneme protein secretion; however, knockdown of any member of the CLAMP complex affects rhoptry discharge. Phylogenetic analysis suggests orthologs of the essential complex components, CLAMP and CLIP, are ubiquitous across apicomplexans. SPATR appears to act as an accessory factor in Toxoplasma, but despite incomplete conservation is also essential for invasion during Plasmodium falciparum blood stages. Together, our results reveal a new protein complex that mediates rhoptry discharge following host-cell contact.


Subject(s)
Toxoplasma , Toxoplasma/metabolism , Microneme , Protozoan Proteins/metabolism , Phylogeny , Organelles/metabolism
4.
J Cell Sci ; 136(4)2023 02 15.
Article in English | MEDLINE | ID: mdl-36718630

ABSTRACT

Intracellular pathogens exploit cellular resources through host cell manipulation. Within its nonfusogenic parasitophorous vacuole (PV), Toxoplasma gondii targets host nutrient-filled organelles and sequesters them into the PV through deep invaginations of the PV membrane (PVM) that ultimately detach from this membrane. Some of these invaginations are generated by an intravacuolar network (IVN) of parasite-derived tubules attached to the PVM. Here, we examined the usurpation of host ESCRT-III and Vps4A by the parasite to create PVM buds and vesicles. CHMP4B associated with the PVM/IVN, and dominant-negative (DN) CHMP4B formed many long PVM invaginations containing CHMP4B filaments. These invaginations were shorter in IVN-deficient parasites, suggesting cooperation between the IVN and ESCRT. In infected cells expressing Vps4A-DN, enlarged intra-PV structures containing host endolysosomes accumulated, reflecting defects in PVM scission. Parasite mutants lacking T. gondii (Tg)GRA14 or TgGRA64, which interact with ESCRT, reduced CHMP4B-DN-induced PVM invaginations and intra-PV host organelles, with greater defects in a double knockout, revealing the exploitation of ESCRT to scavenge host organelles by Toxoplasma.


Subject(s)
Toxoplasma , Animals , Toxoplasma/metabolism , Vacuoles/metabolism , Host-Parasite Interactions , Lysosomes/metabolism , Protozoan Proteins/metabolism , Mammals/metabolism
5.
PLoS Pathog ; 19(5): e1011344, 2023 05.
Article in English | MEDLINE | ID: mdl-37141275

ABSTRACT

The Endosomal Sorting Complex Required for Transport (ESCRT) machinery consists of multiple protein complexes that coordinate vesicle budding away from the host cytosol. ESCRTs function in many fundamental cellular processes including the biogenesis of multivesicular bodies and exosomes, membrane repair and restoration, and cell abscission during cytokinesis. Work over the past 2 decades has shown that a diverse cohort of viruses critically rely upon host ESCRT machinery for virus replication and envelopment. More recent studies reported that intracellular bacteria and the intracellular parasite Toxoplasma gondii benefit from, antagonize, or exploit host ESCRT machinery to preserve their intracellular niche, gain resources, or egress from infected cells. Here, we review how intracellular pathogens interact with the ESCRT machinery of their hosts, highlighting the variety of strategies they use to bind ESCRT complexes using short linear amino acid motifs like those used by ESCRTs to sequentially assemble on target membranes. Future work exposing new mechanisms of this molecular mimicry will yield novel insight of how pathogens exploit host ESCRT machinery and how ESCRTs facilitate key cellular processes.


Subject(s)
Exosomes , Virus Replication , Humans , Protein Transport , Exosomes/metabolism , Cell Movement , Endosomal Sorting Complexes Required for Transport/metabolism
6.
PLoS Pathog ; 18(5): e1010139, 2022 05.
Article in English | MEDLINE | ID: mdl-35512005

ABSTRACT

The Toxoplasma gondii lytic cycle is a repetition of host cell invasion, replication, egress, and re-invasion into the next host cell. While the molecular players involved in egress have been studied in greater detail in recent years, the signals and pathways for triggering egress from the host cell have not been fully elucidated. A perforin-like protein, PLP1, has been shown to be necessary for permeabilizing the parasitophorous vacuole (PV) membrane or exit from the host cell. In vitro studies indicated that PLP1 is most active in acidic conditions, and indirect evidence using superecliptic pHluorin indicated that the PV pH drops prior to parasite egress. Using ratiometric pHluorin, a GFP variant that responds to changes in pH with changes in its bimodal excitation spectrum peaks, allowed us to directly measure the pH in the PV prior to and during egress by live-imaging microscopy. A statistically significant change was observed in PV pH during ionomycin or zaprinast induced egress in both wild-type RH and Δplp1 vacuoles compared to DMSO-treated vacuoles. Interestingly, if parasites are chemically paralyzed, a pH drop is still observed in RH but not in Δplp1 tachyzoites. This indicates that the pH drop is dependent on the presence of PLP1 or motility. Efforts to determine transporters, exchangers, or pumps that could contribute to the drop in PV pH identified two formate-nitrite transporters (FNTs). Auxin induced conditional knockdown and knockouts of FNT1 and FNT2 reduced the levels of lactate and pyruvate released by the parasites and lead to an abatement of vacuolar acidification. While additional transporters and molecules are undoubtedly involved, we provide evidence of a definitive reduction in vacuolar pH associated with induced and natural egress and characterize two transporters that contribute to the acidification.


Subject(s)
Parasites , Toxoplasma , Animals , Hydrogen-Ion Concentration , Parasites/metabolism , Perforin/metabolism , Protozoan Proteins/metabolism , Toxoplasma/metabolism , Vacuoles/metabolism
7.
Anal Chem ; 95(2): 668-676, 2023 01 17.
Article in English | MEDLINE | ID: mdl-36548400

ABSTRACT

It is estimated that more than 2 billion people are chronically infected with the intracellular protozoan parasite Toxoplasma gondii (T. gondii). Despite this, there is currently no vaccine to prevent infection in humans, and there is no recognized curative treatment to clear tissue cysts. A major hurdle for identifying effective drug candidates against chronic-stage cysts has been the low throughput of existing in vitro assays for testing the survival of bradyzoites. We have developed a luciferase-based platform for specifically determining bradyzoite survival within in vitro cysts in a 96-well plate format. We engineered a cystogenic type II T. gondii PruΔku80Δhxgpr strain for stage-specific expression of firefly luciferase in the cytosol of bradyzoites and nanoluciferase for secretion into the lumen of the cyst (DuaLuc strain). Using this DuaLuc strain, we found that the ratio of firefly luciferase to nanoluciferase decreased upon treatment with atovaquone or LHVS, two compounds that are known to compromise bradyzoite viability. The 96-well format allowed us to test several additional compounds and generate dose-response curves for calculation of EC50 values indicating relative effectiveness of a compound. Accordingly, this DuaLuc system should be suitable for screening libraries of diverse compounds and defining the potency of hits or other compounds with a putative antibradyzoite activity.


Subject(s)
Toxoplasma , Humans , Luciferases, Firefly/genetics , Luciferases, Firefly/metabolism , Atovaquone/metabolism , Atovaquone/pharmacology , Luciferases/genetics , Luciferases/metabolism
8.
PLoS Pathog ; 17(12): e1010138, 2021 12.
Article in English | MEDLINE | ID: mdl-34898650

ABSTRACT

Toxoplasma gondii is a master manipulator capable of effectively siphoning the resources from the host cell for its intracellular subsistence. However, the molecular underpinnings of how the parasite gains resources from its host remain largely unknown. Residing within a non-fusogenic parasitophorous vacuole (PV), the parasite must acquire resources across the limiting membrane of its replicative niche, which is decorated with parasite proteins including those secreted from dense granules. We discovered a role for the host Endosomal Sorting Complex Required for Transport (ESCRT) machinery in host cytosolic protein uptake by T. gondii by disrupting host ESCRT function. We identified the transmembrane dense granule protein TgGRA14, which contains motifs homologous to the late domain motifs of HIV-1 Gag, as a candidate for the recruitment of the host ESCRT machinery to the PV membrane. Using an HIV-1 virus-like particle (VLP) release assay, we found that the motif-containing portion of TgGRA14 is sufficient to substitute for HIV-1 Gag late domain to mediate ESCRT-dependent VLP budding. We also show that TgGRA14 is proximal to and interacts with host ESCRT components and other dense granule proteins during infection. Furthermore, analysis of TgGRA14-deficient parasites revealed a marked reduction in ingestion of a host cytosolic protein compared to WT parasites. Thus, we propose a model in which T. gondii recruits the host ESCRT machinery to the PV where it can interact with TgGRA14 for the internalization of host cytosolic proteins across the PV membrane (PVM). These findings provide new insight into how T. gondii accesses contents of the host cytosol by exploiting a key pathway for vesicular budding and membrane scission.


Subject(s)
Antigens, Protozoan/metabolism , Endosomal Sorting Complexes Required for Transport/metabolism , Host-Parasite Interactions/physiology , Protozoan Proteins/metabolism , Toxoplasma/metabolism , Toxoplasmosis/metabolism , Animals , Humans , Mice
9.
J Eukaryot Microbiol ; 69(6): e12951, 2022 11.
Article in English | MEDLINE | ID: mdl-36218001

ABSTRACT

Toxoplasma gondii belongs to the phylum Apicomplexa and is an important cause of congenital disease and infection in immunocompromised patients. T. gondii shares several characteristics with plants including a nonphotosynthetic plastid termed apicoplast and a multivesicular organelle that was named the plant-like vacuole (PLV) or vacuolar compartment (VAC). The name plant-like vacuole was selected based on its resemblance in composition and function to plant vacuoles. The name VAC represents its general vacuolar characteristics. We will refer to the organelle as PLVAC in this review. New findings in recent years have revealed that the PLVAC represents the lysosomal compartment of T. gondii which has adapted peculiarities to fulfill specific Toxoplasma needs. In this review, we discuss the composition and functions of the PLVAC highlighting its roles in ion storage and homeostasis, endocytosis, exocytosis, and autophagy.


Subject(s)
Apicoplasts , Toxoplasma , Humans , Vacuoles , Protozoan Proteins , Plants
10.
Traffic ; 19(5): 336-353, 2018 05.
Article in English | MEDLINE | ID: mdl-29437275

ABSTRACT

Host cytosolic proteins are endocytosed by Toxoplasma gondii and degraded in its lysosome-like compartment, the vacuolar compartment (VAC), but the dynamics and route of endocytic trafficking remain undefined. Conserved endocytic components and plant-like features suggest T. gondii endocytic trafficking involves transit through early and late endosome-like compartments (ELCs) and potentially the trans-Golgi network (TGN) as in plants. However, exocytic trafficking to regulated secretory organelles, micronemes and rhoptries, also proceeds through ELCs and requires classical endocytic components, including a dynamin-related protein, DrpB. Here, we show that host cytosolic proteins are endocytosed within 7 minutes post-invasion, trafficked through ELCs en route to the VAC, and degraded within 30 minutes. We could not definitively interpret if ingested protein is trafficked through the TGN. We also found that parasites ingest material from the host cytosol throughout the parasite cell cycle. Ingested host proteins colocalize with immature microneme proteins, proM2AP and proMIC5, in transit to the micronemes, but not with the immature rhoptry protein proRON4, indicating that endocytic trafficking of ingested protein intersects with exocytic trafficking of microneme proteins. Finally, we show that conditional expression of a DrpB dominant negative mutant increases T. gondii ingestion of host-derived proteins, suggesting that DrpB is not required for parasite endocytosis.


Subject(s)
Endocytosis , Exocytosis , Protozoan Proteins/metabolism , Toxoplasma/metabolism , Animals , CHO Cells , Cricetinae , Cricetulus , Endosomes/metabolism , Golgi Apparatus/metabolism
11.
J Biol Chem ; 294(5): 1541-1553, 2019 02 01.
Article in English | MEDLINE | ID: mdl-30514763

ABSTRACT

Toxoplasma gondii is a ubiquitous, obligate intracellular eukaryotic parasite that causes congenital birth defects, disease in immunocompromised individuals, and blindness. Protein glycosylation plays an important role in the infectivity and evasion of immune responses of many eukaryotic parasites and is also of great relevance to vaccine design. Here we demonstrate that micronemal protein 2 (MIC2), a motility-associated adhesin of T. gondii, has highly glycosylated thrombospondin repeat (TSR) domains. Using affinity-purified MIC2 and MS/MS analysis along with enzymatic digestion assays, we observed that at least seven C-linked and three O-linked glycosylation sites exist within MIC2, with >95% occupancy at these O-glycosylation sites. We found that addition of O-glycans to MIC2 is mediated by a protein O-fucosyltransferase 2 homolog (TgPOFUT2) encoded by the TGGT1_273550 gene. Even though POFUT2 homologs are important for stabilizing motility-associated adhesins and for host infection in other apicomplexan parasites, loss of TgPOFUT2 in T. gondii had only a modest impact on MIC2 levels and the wider parasite proteome. Consistent with this, both plaque formation and tachyzoite invasion were broadly similar in the presence or absence of TgPOFUT2. These findings indicate that TgPOFUT2 O-glycosylates MIC2 and that this glycan, in contrast to previous findings in another study, is dispensable in T. gondii tachyzoites and for T. gondii infectivity.


Subject(s)
Fibroblasts/parasitology , Fucosyltransferases/metabolism , Host-Parasite Interactions , Membrane Proteins/metabolism , Protozoan Proteins/metabolism , Toxoplasma/pathogenicity , Toxoplasmosis/parasitology , Cells, Cultured , Fibroblasts/cytology , Fibroblasts/metabolism , Glycosylation , Humans , Proteome/analysis , Toxoplasmosis/metabolism
12.
Article in English | MEDLINE | ID: mdl-32540978

ABSTRACT

Toxoplasmosis is a potentially fatal infection for immunocompromised people and the developing fetus. Current medicines for toxoplasmosis have high rates of adverse effects that interfere with therapeutic and prophylactic regimens. Endochin-like quinolones (ELQs) are potent inhibitors of Toxoplasma gondii proliferation in vitro and in animal models of acute and latent infection. ELQ-316, in particular, was found to be effective orally against acute toxoplasmosis in mice and highly selective for T. gondii cytochrome b over human cytochrome b Despite its oral efficacy, the high crystallinity of ELQ-316 limits oral absorption, plasma concentrations, and therapeutic potential. A carbonate ester prodrug of ELQ-316, ELQ-334, was created to decrease crystallinity and increase oral bioavailability, which resulted in a 6-fold increase in both the maximum plasma concentration (Cmax) and the area under the curve (AUC) of ELQ-316. The increased bioavailability of ELQ-316, when administered as ELQ-334, resulted in efficacy against acute toxoplasmosis greater than that of an equivalent dose of ELQ-316 and had efficacy against latent toxoplasmosis similar to that of ELQ-316 administered intraperitoneally. Treatment with carbonate ester prodrugs is a successful strategy to overcome the limited oral bioavailability of ELQs for the treatment of toxoplasmosis.


Subject(s)
Prodrugs , Quinolones , Toxoplasma , Toxoplasmosis, Animal , Animals , Brain/parasitology , Carbonates , Esters , Mice , Toxoplasmosis, Animal/drug therapy
13.
PLoS Pathog ; 14(12): e1007476, 2018 12.
Article in English | MEDLINE | ID: mdl-30513119

ABSTRACT

Intracellular pathogens must egress from the host cell to continue their infectious cycle. Apicomplexans are a phylum of intracellular protozoans that have evolved members of the membrane attack complex and perforin (MACPF) family of pore forming proteins to disrupt cellular membranes for traversing cells during tissue migration or egress from a replicative vacuole following intracellular reproduction. Previous work showed that the apicomplexan Toxoplasma gondii secretes a perforin-like protein (TgPLP1) that contains a C-terminal Domain (CTD) which is necessary for efficient parasite egress. However, the structural basis for CTD membrane binding and egress competency remained unknown. Here, we present evidence that TgPLP1 CTD prefers binding lipids that are abundant in the inner leaflet of the lipid bilayer. Additionally, solving the high-resolution crystal structure of the TgPLP1 APCß domain within the CTD reveals an unusual double-layered ß-prism fold that resembles only one other protein of known structure. Three direct repeat sequences comprise subdomains, with each constituting a wall of the ß-prism fold. One subdomain features a protruding hydrophobic loop with an exposed tryptophan at its tip. Spectrophotometric measurements of intrinsic tryptophan fluorescence are consistent with insertion of the hydrophobic loop into a target membrane. Using CRISPR/Cas9 gene editing we show that parasite strains bearing mutations in the hydrophobic loop, including alanine substitution of the tip tryptophan, are equally deficient in egress as a strain lacking TgPLP1 altogether. Taken together our findings suggest a crucial role for the hydrophobic loop in anchoring TgPLP1 to the membrane to support its cytolytic activity and egress function.


Subject(s)
Perforin/metabolism , Protozoan Proteins/metabolism , Toxoplasma/pathogenicity , Toxoplasmosis/metabolism , Cell Membrane/metabolism , Humans , Perforin/chemistry , Protein Conformation , Protozoan Proteins/chemistry , Toxoplasma/chemistry
14.
Bioorg Med Chem Lett ; 28(10): 1972-1980, 2018 06 01.
Article in English | MEDLINE | ID: mdl-29650289

ABSTRACT

The neurotropic protozoan Toxoplasma gondii is the second leading cause of death due to foodborne illness in the US, and has been designated as one of five neglected parasitic infections by the Center for Disease Control and Prevention. Currently, no treatment options exist for the chronic dormant-phase Toxoplasma infection in the central nervous system (CNS). T. gondii cathepsin L (TgCPL) has recently been implicated as a novel viable target for the treatment of chronic toxoplasmosis. In this study, we report the first body of SAR work aimed at developing potent inhibitors of TgCPL with selectivity vs the human cathepsin L. Starting from a known inhibitor of human cathepsin L, and guided by structure-based design, we were able to modulate the selectivity for Toxoplasma vs human CPL by nearly 50-fold while modifying physiochemical properties to be more favorable for metabolic stability and CNS penetrance. The overall potency of our inhibitors towards TgCPL was improved from 2 µM to as low as 110 nM and we successfully demonstrated that an optimized analog 18b is capable of crossing the BBB (0.5 brain/plasma). This work is an important first step toward development of a CNS-penetrant probe to validate TgCPL as a feasible target for the treatment of chronic toxoplasmosis.


Subject(s)
Antiprotozoal Agents/chemistry , Cathepsin L/antagonists & inhibitors , Central Nervous System/metabolism , Dipeptides/chemistry , Protease Inhibitors/chemistry , Protozoan Proteins/antagonists & inhibitors , Animals , Antiprotozoal Agents/metabolism , Antiprotozoal Agents/pharmacology , Binding Sites , Blood-Brain Barrier/drug effects , Blood-Brain Barrier/metabolism , Catalytic Domain , Cathepsin L/metabolism , Dipeptides/metabolism , Dipeptides/pharmacology , Half-Life , Humans , Inhibitory Concentration 50 , Mice , Microsomes, Liver/metabolism , Molecular Dynamics Simulation , Permeability/drug effects , Protease Inhibitors/metabolism , Protease Inhibitors/pharmacology , Protozoan Proteins/metabolism , Structure-Activity Relationship , Toxoplasma/drug effects , Toxoplasma/enzymology
15.
Parasitology ; 145(9): 1119-1126, 2018 08.
Article in English | MEDLINE | ID: mdl-29463318

ABSTRACT

Although the application of CRISPR/Cas9 genome engineering approaches was first reported in apicomplexan parasites only 3 years ago, this technology has rapidly become an essential component of research on apicomplexan parasites. This review briefly describes the history of CRISPR/Cas9 and the principles behind its use along with documenting its implementation in apicomplexan parasites, especially Plasmodium spp. and Toxoplasma gondii. We also discuss the recent use of CRISPR/Cas9 for whole genome screening of gene knockout mutants in T. gondii and highlight its use for seminal genetic manipulations of Cryptosporidium spp. Finally, we consider new variations of CRISPR/Cas9 that have yet to be implemented in apicomplexans. Whereas CRISPR/Cas9 has already accelerated rapid interrogation of gene function in apicomplexans, the full potential of this technology is yet to be realized as new variations and innovations are integrated into the field.


Subject(s)
Apicomplexa/genetics , CRISPR-Associated Protein 9/genetics , CRISPR-Cas Systems , Genetic Engineering/methods , Genome, Protozoan , Animals , Cryptosporidium/genetics , Gene Knockout Techniques , Humans , Mice , Plasmodium/genetics , Recombination, Genetic , Toxoplasma/genetics
16.
Nanomedicine ; 14(2): 461-469, 2018 02.
Article in English | MEDLINE | ID: mdl-29203146

ABSTRACT

Diagnosis of clinical toxoplasmosis remains a challenge, thus limiting the availability of human clinical samples. Though murine models are an approximation of human response, their definitive infection status and tissue availability make them critical to the diagnostic development process. Hydrogel mesh nanoparticles were used to concentrate antigen to detectable levels for mass spectrometry. Seven Toxoplasma gondii isolates were used to develop a panel of potential peptide sequences for detection by parallel reaction monitoring (PRM) mass spectrometry. Nanoparticles were incubated with decreasing concentrations of tachyzoite lysate to explore the limits of detection of PRM. Mice whose toxoplasmosis infection status was confirmed by quantitative real-time PCR had urine tested by PRM after hydrogel mesh concentration for known T. gondii peptides. Peptides from GRA1, GRA12, ROP4, ROP5, SAG1, and SAG2A proteins were detected by PRM after nanoparticle concentration of urine, confirming detection of T. gondii antigen in the urine of an infected mouse.


Subject(s)
Hydrogels/chemistry , Mass Spectrometry/methods , Nanoparticles/chemistry , Protozoan Proteins/urine , Toxoplasma/isolation & purification , Toxoplasmosis/diagnosis , Animals , Female , Mice , Toxoplasmosis/parasitology , Toxoplasmosis/urine
17.
J Biol Chem ; 291(8): 3725-46, 2016 Feb 19.
Article in English | MEDLINE | ID: mdl-26694607

ABSTRACT

The protozoan parasite Toxoplasma gondii develops within a parasitophorous vacuole (PV) in mammalian cells, where it scavenges cholesterol. When cholesterol is present in excess in its environment, the parasite expulses this lipid into the PV or esterifies it for storage in lipid bodies. Here, we characterized a unique T. gondii homologue of mammalian lecithin:cholesterol acyltransferase (LCAT), a key enzyme that produces cholesteryl esters via transfer of acyl groups from phospholipids to the 3-OH of free cholesterol, leading to the removal of excess cholesterol from tissues. TgLCAT contains a motif characteristic of serine lipases "AHSLG" and the catalytic triad consisting of serine, aspartate, and histidine (SDH) from LCAT enzymes. TgLCAT is secreted by the parasite, but unlike other LCAT enzymes it is cleaved into two proteolytic fragments that share the residues of the catalytic triad and need to be reassembled to reconstitute enzymatic activity. TgLCAT uses phosphatidylcholine as substrate to form lysophosphatidylcholine that has the potential to disrupt membranes. The released fatty acid is transferred to cholesterol, but with a lower transesterification activity than mammalian LCAT. TgLCAT is stored in a subpopulation of dense granule secretory organelles, and following secretion, it localizes to the PV and parasite plasma membrane. LCAT-null parasites have impaired growth in vitro, reduced virulence in animals, and exhibit delays in egress from host cells. Parasites overexpressing LCAT show increased virulence and faster egress. These observations demonstrate that TgLCAT influences the outcome of an infection, presumably by facilitating replication and egress depending on the developmental stage of the parasite.


Subject(s)
Phosphatidylcholine-Sterol O-Acyltransferase/metabolism , Protozoan Proteins/metabolism , Toxoplasma/enzymology , Toxoplasma/pathogenicity , Toxoplasmosis/enzymology , Catalytic Domain , Cell Line , Humans , Phosphatidylcholine-Sterol O-Acyltransferase/chemistry , Phosphatidylcholine-Sterol O-Acyltransferase/genetics , Protozoan Proteins/chemistry , Protozoan Proteins/genetics , Toxoplasma/genetics , Toxoplasmosis/genetics , Toxoplasmosis/pathology
18.
J Biol Chem ; 290(3): 1432-41, 2015 Jan 16.
Article in English | MEDLINE | ID: mdl-25411252

ABSTRACT

Toxoplasma gondii parasites must actively invade host cells to propagate. Secretory microneme proteins have been shown to be important for both gliding motility and active invasion. MIC2-M2AP is a protein complex that is essential for productive motility and rapid invasion by binding to host cell surface receptors. To investigate the architecture of the MIC2 and M2AP complex, we identified the minimal domains sufficient for interaction and solved the NMR solution structure of the globular domain of M2AP. We found that M2AP adopts a modified galectin fold similar to the C-terminal domain of another microneme protein, MIC1. NMR and immunoprecipitation analyses implicated hydrophobic residues on one face of the M2AP galectin fold in binding to the membrane proximal sixth thrombospondin type I repeat domain of MIC2. Our findings provide a second example of a galectin fold adapted for microneme protein-protein interactions and suggest a conserved strategy for the assembly and folding of diverse protein complexes.


Subject(s)
Membrane Proteins/chemistry , Protozoan Proteins/chemistry , Toxoplasma/chemistry , Animals , Binding Sites , CHO Cells , Carbohydrates/chemistry , Cricetinae , Cricetulus , Fibroblasts/parasitology , Galectins/chemistry , Gene Deletion , Humans , Hydrophobic and Hydrophilic Interactions , Ligands , Magnetic Resonance Spectroscopy , Multiprotein Complexes/chemistry , Mutation , Protein Binding , Protein Conformation , Protein Folding , Protein Structure, Tertiary , Thrombospondins/chemistry
19.
Mol Microbiol ; 96(6): 1159-75, 2015 Jun.
Article in English | MEDLINE | ID: mdl-25777509

ABSTRACT

The intracellular parasite Toxoplasma gondii converts from a rapidly replicating tachyzoite form during acute infection to a quiescent encysted bradyzoite stage that persists inside long-lived cells during chronic infection. Bradyzoites adopt reduced metabolism and slow replication while waiting for an opportunity to recrudesce the infection within the host. Interconversion between these two developmental stages is characterized by expression of glycolytic isoenzymes that play key roles in parasite metabolism. The parasite genome encodes two isoforms of lactate dehydrogenase (LDH1 and LDH2) and enolase (ENO1 and ENO2) that are expressed in a stage-specific manner. Expression of different isoforms of these enzymes allows T. gondii to rapidly adapt to diverse metabolic requirements necessary for either a rapid replication of the tachyzoite stage or a quiescent lifestyle typical of the bradyzoites. Herein we identified unspliced forms of LDH and ENO transcripts produced during transition between these two parasite stages suggestive of an intron retention mechanism to promptly exchange glycolytic isoforms for rapid adaptation to environmental changes. We also identified key regulatory elements in the ENO transcription units, revealing cooperation between the ENO2 5'-untranslated region and the ENO2 intron, along with identifying a role for the ENO1 3'-untranslated region in stage-specific expression.


Subject(s)
Introns , L-Lactate Dehydrogenase/biosynthesis , Phosphopyruvate Hydratase/biosynthesis , Toxoplasma/enzymology , Toxoplasma/genetics , Animals , Gene Expression Regulation, Bacterial , Gene Expression Regulation, Developmental , Genes, Protozoan , Glycolysis , Humans , Isoenzymes , L-Lactate Dehydrogenase/genetics , L-Lactate Dehydrogenase/metabolism , Mice , Phosphopyruvate Hydratase/genetics , Phosphopyruvate Hydratase/metabolism , Toxoplasma/growth & development , Toxoplasmosis, Animal/parasitology
20.
Curr Genet ; 62(1): 31-8, 2016 Feb.
Article in English | MEDLINE | ID: mdl-26194054

ABSTRACT

Apicomplexan parasites including Toxoplasma gondii and Plasmodium species have complex life cycles that include multiple hosts and differentiation through several morphologically distinct stages requiring marked changes in gene expression. This review highlights emerging evidence implicating regulation of mRNA splicing as a mechanism to prime these parasites for rapid gene expression upon differentiation. We summarize the most important insights in alternative splicing including its role in regulating gene expression by decreasing mRNA abundance via 'Regulated Unproductive Splicing and Translation'. As a related but less well-understood mechanism, we discuss also our recent work suggesting a role for intron retention for precluding translation of stage specific isoforms of T. gondii glycolytic enzymes. We additionally provide new evidence that intron retention might be a widespread mechanism during parasite differentiation. Supporting this notion, recent genome-wide analysis of Toxoplasma and Plasmodium suggests intron retention is more pervasive than heretofore thought. These findings parallel recent emergence of intron retention being more prevalent in mammals than previously believed, thereby adding to the established roles in plants, fungi and unicellular eukaryotes. Deeper mechanistic studies of intron retention will provide important insight into its role in regulating gene expression in apicomplexan parasites and more general in eukaryotic organisms.


Subject(s)
Alternative Splicing , Gene Expression Regulation , RNA Processing, Post-Transcriptional , Animals , Genomics , Humans , Introns , Parasites/genetics , Parasites/metabolism , Protein Biosynthesis , Proteome , Toxoplasma/genetics , Toxoplasma/metabolism
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