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1.
Nat Commun ; 15(1): 4385, 2024 May 23.
Artículo en Inglés | MEDLINE | ID: mdl-38782906

RESUMEN

The parasite Toxoplasma gondii persists in its hosts by converting from replicating tachyzoites to latent bradyzoites housed in tissue cysts. The molecular mechanisms that mediate T. gondii differentiation remain poorly understood. Through a mutagenesis screen, we identified translation initiation factor eIF1.2 as a critical factor for T. gondii differentiation. A F97L mutation in eIF1.2 or the genetic ablation of eIF1.2 (∆eif1.2) markedly impeded bradyzoite cyst formation in vitro and in vivo. We demonstrated, at single-molecule level, that the eIF1.2 F97L mutation impacts the scanning process of the ribosome preinitiation complex on a model mRNA. RNA sequencing and ribosome profiling experiments unveiled that ∆eif1.2 parasites are defective in upregulating bradyzoite induction factors BFD1 and BFD2 during stress-induced differentiation. Forced expression of BFD1 or BFD2 significantly restored differentiation in ∆eif1.2 parasites. Together, our findings suggest that eIF1.2 functions by regulating the translation of key differentiation factors necessary to establish chronic toxoplasmosis.


Asunto(s)
Toxoplasma , Toxoplasma/metabolismo , Toxoplasma/genética , Animales , Proteínas Protozoarias/metabolismo , Proteínas Protozoarias/genética , Toxoplasmosis/parasitología , Toxoplasmosis/metabolismo , Ratones , Mutación , Ribosomas/metabolismo , Biosíntesis de Proteínas , Femenino , ARN Mensajero/metabolismo , ARN Mensajero/genética , Diferenciación Celular , Humanos
2.
bioRxiv ; 2023 Nov 03.
Artículo en Inglés | MEDLINE | ID: mdl-37961607

RESUMEN

The parasite Toxoplasma gondii persists in its hosts by converting from replicating tachyzoites to latent bradyzoites housed in tissue cysts. The molecular mechanisms that mediate T. gondii differentiation remain poorly understood. Through a mutagenesis screen, we identified translation initiation factor eIF1.2 as a critical factor for T. gondii differentiation. A F97L mutation in eIF1.2 or the genetic ablation of eIF1.2 (Δ eIF1.2 ) markedly impeded bradyzoite cyst formation in vitro and in vivo . We demonstrated, at single-molecule level, that the eIF1.2 F97L mutation impacts the scanning process of the ribosome preinitiation complex on a model mRNA. RNA sequencing and ribosome profiling experiments unveiled that Δ eIF1.2 parasites are defective in the upregulating bradyzoite induction factors BFD1 and BFD2 during stress-induced differentiation. Forced expression of BFD1 or BFD2 significantly restored differentiation in Δ eIF1.2 parasites. Together, our findings suggest that eIF1.2 functions by regulating the translation of key differentiation factors necessary to establish chronic toxoplasmosis.

3.
EMBO J ; 42(23): e113155, 2023 Dec 01.
Artículo en Inglés | MEDLINE | ID: mdl-37886905

RESUMEN

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.


Asunto(s)
Toxoplasma , Toxoplasma/metabolismo , Micronema , Proteínas Protozoarias/metabolismo , Filogenia , Orgánulos/metabolismo
4.
PLoS Pathog ; 18(5): e1010139, 2022 05.
Artículo en Inglés | MEDLINE | ID: mdl-35512005

RESUMEN

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.


Asunto(s)
Parásitos , Toxoplasma , Animales , Concentración de Iones de Hidrógeno , Parásitos/metabolismo , Perforina/metabolismo , Proteínas Protozoarias/metabolismo , Toxoplasma/metabolismo , Vacuolas/metabolismo
5.
mSphere ; : e0044421, 2021 Jun 30.
Artículo en Inglés | MEDLINE | ID: mdl-34190588

RESUMEN

Egress from host cells is an essential step in the lytic cycle of T. gondii and other apicomplexan parasites; however, only a few parasite secretory proteins are known to affect this process. The putative metalloproteinase toxolysin 4 (TLN4) was previously shown to be an extensively processed microneme protein, but further characterization was impeded by the inability to genetically ablate TLN4. Here, we show that TLN4 has the structural properties of an M16 family metalloproteinase, that it possesses proteolytic activity on a model substrate, and that genetic disruption of TLN4 reduces the efficiency of egress from host cells. Complementation of the knockout strain with the TLN4 coding sequence significantly restored egress competency, affirming that the phenotype of the Δtln4 parasite was due to the absence of TLN4. This work identifies TLN4 as the first metalloproteinase and the second microneme protein to function in T. gondii egress. The study also lays a foundation for future mechanistic studies defining the precise role of TLN4 in parasite exit from host cells. IMPORTANCE After replicating within infected host cells, the single-celled parasite Toxoplasma gondii must rupture out of such cells in a process termed egress. Although it is known that T. gondii egress is an active event that involves disruption of host-derived membranes surrounding the parasite, very few proteins that are released by the parasite are known to facilitate egress. In this study, we identify a parasite secretory protease that is necessary for efficient and timely egress, laying the foundation for understanding precisely how this protease facilitates T. gondii exit from host cells.

6.
mBio ; 10(4)2019 08 06.
Artículo en Inglés | MEDLINE | ID: mdl-31387907

RESUMEN

Toxoplasma gondii is a ubiquitous pathogen that can cause encephalitis, congenital defects, and ocular disease. T. gondii has also been implicated as a risk factor for mental illness in humans. The parasite persists in the brain as slow-growing bradyzoites contained within intracellular cysts. No treatments exist to eliminate this form of parasite. Although proteolytic degradation within the parasite lysosome-like vacuolar compartment (VAC) is critical for bradyzoite viability, whether other aspects of the VAC are important for parasite persistence remains unknown. An ortholog of Plasmodium falciparum chloroquine resistance transporter (CRT), TgCRT, has previously been identified in T. gondii To interrogate the function of TgCRT in chronic-stage bradyzoites and its role in persistence, we knocked out TgCRT in a cystogenic strain and assessed VAC size, VAC digestion of host-derived proteins and parasite autophagosomes, and the viability of in vitro and in vivo bradyzoites. We found that whereas parasites deficient in TgCRT exhibit normal digestion within the VAC, they display a markedly distended VAC and their viability is compromised both in vitro and in vivo Interestingly, impairing VAC proteolysis in TgCRT-deficient bradyzoites restored VAC size, consistent with a role for TgCRT as a transporter of products of digestion from the VAC. In conjunction with earlier studies, our current findings suggest a functional link between TgCRT and VAC proteolysis. This study provides further evidence of a crucial role for the VAC in bradyzoite persistence and a new potential VAC target to abate chronic Toxoplasma infection.IMPORTANCE Individuals chronically infected with the intracellular parasite Toxoplasma gondii are at risk of experiencing reactivated disease that can result in progressive loss of vision. No effective treatments exist for chronic toxoplasmosis due in part to a poor understanding of the biology underlying chronic infection and a lack of well-validated potential targets. We show here that a T. gondii transporter is functionally linked to protein digestion within the parasite lysosome-like organelle and that this transporter is necessary to sustain chronic infection in culture and in experimentally infected mice. Ablating the transporter results in severe bloating of the lysosome-like organelle. Together with earlier work, this study suggests the parasite's lysosome-like organelle is vital for parasite survival, thus rendering it a potential target for diminishing infection and reducing the risk of reactivated disease.


Asunto(s)
Proteínas de Transporte de Membrana/metabolismo , Proteínas Protozoarias/metabolismo , Toxoplasma/crecimiento & desarrollo , Toxoplasma/metabolismo , Toxoplasmosis/parasitología , Vacuolas/metabolismo , Animales , Autofagosomas/metabolismo , Supervivencia Celular , Femenino , Humanos , Estadios del Ciclo de Vida , Lisosomas/genética , Lisosomas/metabolismo , Proteínas de Transporte de Membrana/genética , Ratones , Ratones Endogámicos C57BL , Proteolisis , Proteínas Protozoarias/genética , Toxoplasma/genética , Vacuolas/genética
7.
J Biol Chem ; 294(5): 1541-1553, 2019 02 01.
Artículo en Inglés | MEDLINE | ID: mdl-30514763

RESUMEN

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.


Asunto(s)
Fibroblastos/parasitología , Fucosiltransferasas/metabolismo , Interacciones Huésped-Parásitos , Proteínas de la Membrana/metabolismo , Proteínas Protozoarias/metabolismo , Toxoplasma/patogenicidad , Toxoplasmosis/parasitología , Células Cultivadas , Fibroblastos/citología , Fibroblastos/metabolismo , Glicosilación , Humanos , Proteoma/análisis , Toxoplasmosis/metabolismo
8.
PLoS Pathog ; 14(12): e1007476, 2018 12.
Artículo en Inglés | MEDLINE | ID: mdl-30513119

RESUMEN

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.


Asunto(s)
Perforina/metabolismo , Proteínas Protozoarias/metabolismo , Toxoplasma/patogenicidad , Toxoplasmosis/metabolismo , Membrana Celular/metabolismo , Humanos , Perforina/química , Conformación Proteica , Proteínas Protozoarias/química , Toxoplasma/química
9.
Nat Microbiol ; 2: 17096, 2017 Jun 19.
Artículo en Inglés | MEDLINE | ID: mdl-28628099

RESUMEN

Globally, nearly 2 billion people are infected with the intracellular protozoan Toxoplasma gondii1. This persistent infection can cause severe disease in immunocompromised people and is epidemiologically linked to major mental illnesses2 and cognitive impairment3. There are currently no options for curing this infection. The lack of effective therapeutics is due partly to a poor understanding of the essential pathways that maintain long-term infection. Although it is known that Toxoplasma replicates slowly within intracellular cysts demarcated with a cyst wall, precisely how it sustains itself and remodels organelles in this niche is unknown. Here, we identify a key role for proteolysis within the parasite lysosomal organelle (the vacuolar compartment or VAC) in turnover of autophagosomes and persistence during neural infection. We found that disrupting a VAC-localized cysteine protease compromised VAC digestive function and markedly reduced chronic infection. Death of parasites lacking the VAC protease was preceded by accumulation of undigested autophagosomes in the parasite cytoplasm. These findings suggest an unanticipated function for parasite lysosomal degradation in chronic infection, and identify an intrinsic role for autophagy in the T. gondii parasite and its close relatives. This work also identifies a key element of Toxoplasma persistence and suggests that VAC proteolysis is a prospective target for pharmacological development.


Asunto(s)
Autofagosomas/metabolismo , Interacciones Huésped-Patógeno , Lisosomas/metabolismo , Toxoplasma/fisiología , Animales , Supervivencia Celular , Células Cultivadas , Proteasas de Cisteína/genética , Proteasas de Cisteína/metabolismo , Fibroblastos/parasitología , Técnicas de Inactivación de Genes , Humanos , Ratones Endogámicos C57BL , Neuronas/parasitología , Proteolisis , Proteínas Protozoarias/genética , Proteínas Protozoarias/metabolismo , Toxoplasma/enzimología , Toxoplasma/metabolismo
10.
Cell ; 166(6): 1423-1435.e12, 2016 Sep 08.
Artículo en Inglés | MEDLINE | ID: mdl-27594426

RESUMEN

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.


Asunto(s)
Apicomplexa/genética , Repeticiones Palindrómicas Cortas Agrupadas y Regularmente Espaciadas , Estudio de Asociación del Genoma Completo , Interacciones Huésped-Parásitos , Proteínas Protozoarias/genética , Proteínas Protozoarias/metabolismo , Toxoplasma/genética , Células Cultivadas , Claudinas/genética , Claudinas/metabolismo , Fibroblastos/parasitología , Genoma de Protozoos/genética , Humanos , Malaria Falciparum/parasitología , Malaria Falciparum/fisiopatología , Plasmodium falciparum/genética , Toxoplasmosis/parasitología , Toxoplasmosis/fisiopatología
11.
mSphere ; 1(1)2016.
Artículo en Inglés | MEDLINE | ID: mdl-27303694

RESUMEN

Toxoplasma gondii and its Plasmodium kin share a well-conserved invasion process, including sequential secretion of adhesive molecules for host cell attachment and invasion. However, only a few orthologs have been shown to be important for efficient invasion by both genera. Bioinformatic screening to uncover potential new players in invasion identified a previously unrecognized T. gondii ortholog of Plasmodium glycosylphosphatidylinositol-anchored micronemal antigen (TgGAMA). We show that TgGAMA localizes to the micronemes and is processed into several proteolytic products within the parasite prior to secretion onto the parasite surface during invasion. TgGAMA from parasite lysate bound to several different host cell types in vitro, suggesting a role in parasite attachment. Consistent with this function, tetracycline-regulatable TgGAMA and TgGAMA knockout strains showed significant reductions in host cell invasion at the attachment step, with no defects in any of the other stages of the parasite lytic cycle. Together, the results of this work reveal a new conserved component of the adhesive repertoire of apicomplexan parasites. IMPORTANCE Toxoplasma gondii is a successful human pathogen in the same phylum as malaria-causing Plasmodium parasites. Invasion of a host cell is an essential process that begins with secretion of adhesive proteins onto the parasite surface for attachment and subsequent penetration of the host cell. Conserved invasion proteins likely play roles that were maintained through the divergence of these parasites. Here, we identify a new conserved invasion protein called glycosylphosphatidylinositol-anchored micronemal antigen (GAMA). Tachyzoites lacking TgGAMA were partially impaired in parasite attachment and invasion of host cells, yielding the first genetic evidence of a specific role in parasite entry into host cells. These findings widen our appreciation of the repertoire of conserved proteins that apicomplexan parasites employ for cell invasion.

12.
J Biol Chem ; 290(3): 1432-41, 2015 Jan 16.
Artículo en Inglés | MEDLINE | ID: mdl-25411252

RESUMEN

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.


Asunto(s)
Proteínas de la Membrana/química , Proteínas Protozoarias/química , Toxoplasma/química , Animales , Sitios de Unión , Células CHO , Carbohidratos/química , Cricetinae , Cricetulus , Fibroblastos/parasitología , Galectinas/química , Eliminación de Gen , Humanos , Interacciones Hidrofóbicas e Hidrofílicas , Ligandos , Espectroscopía de Resonancia Magnética , Complejos Multiproteicos/química , Mutación , Unión Proteica , Conformación Proteica , Pliegue de Proteína , Estructura Terciaria de Proteína , Trombospondinas/química
13.
Infect Immun ; 82(10): 4358-68, 2014 Oct.
Artículo en Inglés | MEDLINE | ID: mdl-25092910

RESUMEN

The obligate intracellular parasite Toxoplasma gondii critically relies on host cell invasion during infection. Proteins secreted from the apical micronemes are central components for host cell recognition, invasion, egress, and virulence. Although previous work established that the sporozoite protein with an altered thrombospondin repeat (SPATR) is a micronemal protein conserved in other apicomplexan parasites, including Plasmodium, Neospora, and Eimeria, no genetic evidence of its contribution to invasion has been reported. SPATR contains a predicted epidermal growth factor domain and two thrombospondin type 1 repeats, implying a role in host cell recognition. In this study, we assess the contribution of T. gondii SPATR (TgSPATR) to T. gondii invasion by genetically ablating it and restoring its expression by genetic complementation. Δspatr parasites were ~50% reduced in invasion compared to parental strains, a defect that was reversed in the complemented strain. In mouse virulence assays, Δspatr parasites were significantly attenuated, with ~20% of mice surviving infection. Given the conservation of this protein among the Apicomplexa, we assessed whether the Plasmodium falciparum SPATR ortholog (PfSPATR) could complement the absence of the TgSPATR. Although PfSPATR showed correct micronemal localization, it did not reverse the invasion deficiency of Δspatr parasites, because of an apparent failure in secretion. Overall, the results suggest that TgSPATR contributes to invasion and virulence, findings that have implications for the many genera and life stages of apicomplexans that express SPATR.


Asunto(s)
Proteínas Protozoarias/metabolismo , Trombospondinas/metabolismo , Toxoplasma/patogenicidad , Factores de Virulencia/metabolismo , Animales , Modelos Animales de Enfermedad , Femenino , Eliminación de Gen , Prueba de Complementación Genética , Ratones , Proteínas Protozoarias/genética , Análisis de Supervivencia , Trombospondinas/genética , Toxoplasma/genética , Toxoplasmosis Animal , Virulencia , Factores de Virulencia/genética
14.
PLoS One ; 8(5): e64693, 2013.
Artículo en Inglés | MEDLINE | ID: mdl-23741372

RESUMEN

Toxoplasma gondii critically relies on cell invasion as a survival strategy to evade immune clearance during infection. Although it was widely thought that Toxoplasma entry is parasite directed and that the host cell is largely a passive victim, recent studies have suggested that host components such as microfilaments and microtubules indeed contribute to entry. Hence to identify additional host factors, we performed a high-throughput siRNA screen of a human siRNA library targeting druggable proteins using a novel inducible luciferase based invasion assay. The top 100 hits from the primary screen that showed the strongest decreases in invasion were subjected to confirmation by secondary screening, revealing 24 proteins that are potentially involved in Toxoplasma entry into host cells. Interestingly, 6 of the hits appear to affect parasite invasion by modifying host cell actin dynamics, resulting in increased deposition of F-actin at the periphery of the cell. These findings support the emerging notion that host actin dynamics are important for Toxoplasma invasion along with identifying several novel host factors that potentially participate in parasite entry.


Asunto(s)
Citoesqueleto de Actina/metabolismo , Actinas/genética , Ensayos Analíticos de Alto Rendimiento/métodos , Microtúbulos/metabolismo , ARN Interferente Pequeño/genética , Toxoplasma/fisiología , Citoesqueleto de Actina/parasitología , Citoesqueleto de Actina/ultraestructura , Actinas/metabolismo , Genes Reporteros , Células HeLa , Ensayos Analíticos de Alto Rendimiento/instrumentación , Interacciones Huésped-Parásitos , Humanos , Luciferasas/genética , Luciferasas/metabolismo , Microtúbulos/parasitología , Microtúbulos/ultraestructura , ARN Interferente Pequeño/metabolismo
15.
Mol Biochem Parasitol ; 184(2): 71-81, 2012 Aug.
Artículo en Inglés | MEDLINE | ID: mdl-22580100

RESUMEN

The pyrimidine biosynthesis pathway in the protozoan pathogen Toxoplasma gondii is essential for parasite growth during infection. To investigate the properties of dihydroorotate dehydrogenase (TgDHOD), the fourth enzyme in the T. gondii pyrimidine pathway, we expressed and purified recombinant TgDHOD. TgDHOD exhibited a specific activity of 84U/mg, a k(cat) of 89s(-1), a K(m)=60µM for l-dihydroorotate, and a K(m)=29µM for decylubiquinone (Q(D)). Quinones lacking or having short isoprenoid side chains yielded lower k(cat)s than Q(D). As expected, fumarate was a poor electron acceptor for this family 2 DHOD. The IC(50)s determined for A77-1726, the active derivative of the human DHOD inhibitor leflunomide, and related compounds MD249 and MD209 were, 91µM, 96µM, and 60µM, respectively. The enzyme was not significantly affected by brequinar or TTFA, known inhibitors of human DHOD, or by atovaquone. DSM190, a known inhibitor of Plasmodium falciparum DHOD, was a poor inhibitor of TgDHOD. TgDHOD exhibits a lengthy 157-residue N-terminal extension, consistent with a potential organellar targeting signal. We constructed C-terminally c-myc tagged TgDHODs to examine subcellular localization of TgDHOD in transgenic parasites expressing the tagged protein. Using both exogenous and endogenous expression strategies, anti-myc fluorescence signal colocalized with antibodies against the mitochondrial marker ATPase. These findings demonstrate that TgDHOD is associated with the parasite's mitochondrion, revealing this organelle as the site of orotate production in T. gondii. The TgDHOD gene appears to be essential because while gene tagging was successful at the TgDHOD gene locus, attempts to delete the TgDHOD gene were not successful in the KU80 background. Collectively, our study suggests that TgDHOD is an excellent target for the development of anti-Toxoplasma drugs.


Asunto(s)
Mitocondrias/enzimología , Oxidorreductasas actuantes sobre Donantes de Grupo CH-CH/química , Proteínas Protozoarias/química , Pirimidinas/biosíntesis , Toxoplasma/enzimología , Secuencia de Aminoácidos , Vías Biosintéticas , Clonación Molecular , Secuencia Conservada , Dihidroorotato Deshidrogenasa , Inhibidores Enzimáticos/química , Técnicas de Inactivación de Genes , Cinética , Datos de Secuencia Molecular , Ácido Orótico/análogos & derivados , Ácido Orótico/química , Oxidación-Reducción , Oxidorreductasas actuantes sobre Donantes de Grupo CH-CH/antagonistas & inhibidores , Oxidorreductasas actuantes sobre Donantes de Grupo CH-CH/genética , Oxidorreductasas actuantes sobre Donantes de Grupo CH-CH/metabolismo , Señales de Clasificación de Proteína , Transporte de Proteínas , Proteolisis , Proteínas Protozoarias/antagonistas & inhibidores , Proteínas Protozoarias/genética , Proteínas Protozoarias/metabolismo
16.
Dev Genes Evol ; 220(11-12): 315-27, 2011 Mar.
Artículo en Inglés | MEDLINE | ID: mdl-21384171

RESUMEN

SPARC is a multifunctional matricellular glycoprotein with complex, transient tissue distribution during embryonic development. In Xenopus laevis embryos, zygotic activation of SPARC is first detected during late gastrulation, undergoing rapid changes in its spatiotemporal distribution throughout organogenesis. Injections of anti-sense Xenopus SPARC morpholinos (XSMOs) into 2- and 4-cell embryos led to a dose-dependent dissociation of embryos during neurula and tailbud stages of development. Animal cap explants derived from XSMO-injected embryos also dissociated, resulting in the formation of amorphous ciliated microspheres. At low doses of XSMOs, lens cataracts were formed, phenocopying that observed in Sparc-null mice. At XSMOs concentrations that did not result in a loss of axial tissue integrity, adhesion between myotomes at intersomitic borders was compromised with a reduction in SPARC concentration. The combined data suggest a critical requirement for SPARC during post-gastrula development in Xenopus embryos and that SPARC, directly or indirectly, promotes cell-cell adhesion in vivo.


Asunto(s)
Catarata/genética , Adhesión Celular , Cristalino/embriología , Osteonectina/metabolismo , Proteínas de Xenopus/metabolismo , Xenopus laevis/embriología , Animales , Catarata/metabolismo , Técnicas de Silenciamiento del Gen , Cristalino/citología , Cristalino/metabolismo , Osteonectina/genética , Proteínas de Xenopus/genética , Xenopus laevis/genética , Xenopus laevis/metabolismo
17.
PLoS Pathog ; 6(9): e1001094, 2010 Sep 09.
Artículo en Inglés | MEDLINE | ID: mdl-20844581

RESUMEN

Apicomplexans employ a peripheral membrane system called the inner membrane complex (IMC) for critical processes such as host cell invasion and daughter cell formation. We have identified a family of proteins that define novel sub-compartments of the Toxoplasma gondii IMC. These IMC Sub-compartment Proteins, ISP1, 2 and 3, are conserved throughout the Apicomplexa, but do not appear to be present outside the phylum. ISP1 localizes to the apical cap portion of the IMC, while ISP2 localizes to a central IMC region and ISP3 localizes to a central plus basal region of the complex. Targeting of all three ISPs is dependent upon N-terminal residues predicted for coordinated myristoylation and palmitoylation. Surprisingly, we show that disruption of ISP1 results in a dramatic relocalization of ISP2 and ISP3 to the apical cap. Although the N-terminal region of ISP1 is necessary and sufficient for apical cap targeting, exclusion of other family members requires the remaining C-terminal region of the protein. This gate-keeping function of ISP1 reveals an unprecedented mechanism of interactive and hierarchical targeting of proteins to establish these unique sub-compartments in the Toxoplasma IMC. Finally, we show that loss of ISP2 results in severe defects in daughter cell formation during endodyogeny, indicating a role for the ISP proteins in coordinating this unique process of Toxoplasma replication.


Asunto(s)
División Celular , Membrana Celular/metabolismo , Fibroblastos/parasitología , Proteínas de la Membrana/metabolismo , Proteínas Protozoarias/metabolismo , Toxoplasma/fisiología , Toxoplasmosis/metabolismo , Secuencia de Aminoácidos , Animales , Western Blotting , Células Cultivadas , Fibroblastos/citología , Prepucio/citología , Prepucio/parasitología , Humanos , Inmunización , Inmunoglobulina G/inmunología , Masculino , Proteínas de la Membrana/genética , Proteínas de la Membrana/inmunología , Ratones , Ratones Endogámicos BALB C , Datos de Secuencia Molecular , Mutagénesis Sitio-Dirigida , Proteínas Protozoarias/genética , Proteínas Protozoarias/inmunología , ARN Mensajero/genética , Reacción en Cadena de la Polimerasa de Transcriptasa Inversa , Homología de Secuencia de Aminoácido , Toxoplasmosis/genética , Toxoplasmosis/parasitología
18.
Cell Microbiol ; 12(12): 1792-808, 2010 Dec.
Artículo en Inglés | MEDLINE | ID: mdl-20678172

RESUMEN

Host cell invasion by Toxoplasma gondii is critically dependent upon adhesive proteins secreted from the micronemes. Proteolytic trimming of microneme contents occurs rapidly after their secretion onto the parasite surface and is proposed to regulate adhesive complex activation to enhance binding to host cell receptors. However, the proteases responsible and their exact function are still unknown. In this report, we show that T. gondii tachyzoites lacking the microneme subtilisin protease TgSUB1 have a profound defect in surface processing of secreted microneme proteins. Notably parasites lack protease activity responsible for proteolytic trimming of MIC2, MIC4 and M2AP after release onto the parasite surface. Although complementation with full-length TgSUB1 restores processing, complementation of Δsub1 parasites with TgSUB1 lacking the GPI anchor (Δsub1::ΔGPISUB1) only partially restores microneme protein processing. Loss of TgSUB1 decreases cell attachment and in vitro gliding efficiency leading to lower initial rates of invasion. Δsub1 and Δsub1::ΔGPISUB1 parasites are also less virulent in mice. Thus TgSUB1 is involved in micronemal protein processing and regulation of adhesive properties of macromolecular adhesive complexes involved in host cell invasion.


Asunto(s)
Adhesión Celular , Proteínas Protozoarias/metabolismo , Subtilisinas/metabolismo , Toxoplasma/enzimología , Toxoplasma/metabolismo , Factores de Virulencia/metabolismo , Animales , Moléculas de Adhesión Celular/metabolismo , Células Cultivadas , Modelos Animales de Enfermedad , Eliminación de Gen , Prueba de Complementación Genética , Humanos , Locomoción , Proteínas de la Membrana/metabolismo , Ratones , Proteínas Protozoarias/genética , Subtilisinas/genética , Toxoplasma/patogenicidad , Toxoplasma/fisiología , Toxoplasmosis Animal/parasitología , Virulencia , Factores de Virulencia/genética
19.
Cytoskeleton (Hoboken) ; 67(9): 586-98, 2010 Sep.
Artículo en Inglés | MEDLINE | ID: mdl-20658557

RESUMEN

The asexually proliferating stages of apicomplexan parasites cause acute symptoms of diseases such as malaria, cryptosporidiosis and toxoplasmosis. These stages are characterized by the presence of two independent microtubule organizing centers (MTOCs). Centrioles are found at the poles of the intranuclear spindle. The apical polar ring (APR), a MTOC unique to apicomplexans, organizes subpellicular microtubules which impose cell shape and apical polarity on these protozoa. Here we describe the characteristics of a novel protein that localizes to the APR of Toxoplasma gondii which we have named ring-1 (RNG1). There are related RNG1 proteins in Neospora caninum and Sarcocystis neurona but no obvious homologs in Plasmodium spp., Cryptosporidium spp. or Babesia spp. RNG1 is a small, low-complexity, detergent-insoluble protein that assembles at the APR very late in the process of daughter parasite replication. We were unable to knock-out the RNG1 gene, suggesting that its gene product is essential. Tagged RNG1 lines have also allowed us to visualize the APR during growth of Toxoplasma in the microtubule-disrupting drug oryzalin. Oryzalin inhibits nuclear division and cytokinesis although Toxoplasma growth continues, and similar to earlier observations of unchecked centriole duplication in oryzalin-treated parasites, the APR continues to duplicate during aberrant parasite growth.


Asunto(s)
Centro Organizador de los Microtúbulos/fisiología , Proteínas Protozoarias/genética , Toxoplasma/metabolismo , Animales , Neospora/metabolismo , Octoxinol/farmacología , Proteínas Protozoarias/efectos de los fármacos , Proteínas Protozoarias/metabolismo , Sarcocystis/metabolismo , Solubilidad
20.
J Biol Chem ; 284(39): 26839-50, 2009 Sep 25.
Artículo en Inglés | MEDLINE | ID: mdl-19596863

RESUMEN

The protozoan parasite Toxoplasma gondii relies on post-translational modification, including proteolysis, of proteins required for recognition and invasion of host cells. We have characterized the T. gondii cysteine protease cathepsin L (TgCPL), one of five cathepsins found in the T. gondii genome. We show that TgCPL is the primary target of the compound morpholinurea-leucyl-homophenyl-vinyl sulfone phenyl (LHVS), which was previously shown to inhibit parasite invasion by blocking the release of invasion proteins from microneme secretory organelles. As shown by fluorescently labeled LHVS and TgCPL-specific antibodies, TgCPL is associated with a discrete vesicular structure in the apical region of extracellular parasites but is found in multiple puncta throughout the cytoplasm of intracellular replicating parasites. LHVS fails to label cells lacking TgCPL due to targeted disruption of the TgCPL gene in two different parasite strains. We present a structural model for the inhibition of TgCPL by LHVS based on a 2.0 A resolution crystal structure of TgCPL in complex with its propeptide. We discuss possible roles for TgCPL as a protease involved in the degradation or limited proteolysis of parasite proteins involved in invasion.


Asunto(s)
Catepsinas/metabolismo , Cisteína Endopeptidasas/metabolismo , Inhibidores de Cisteína Proteinasa/farmacología , Dipéptidos/farmacología , Proteínas Protozoarias/metabolismo , Sulfonas/farmacología , Toxoplasma/enzimología , Animales , Dominio Catalítico , Catepsina L , Catepsinas/química , Catepsinas/genética , Cristalización , Cristalografía por Rayos X , Cisteína Endopeptidasas/química , Cisteína Endopeptidasas/genética , Inhibidores de Cisteína Proteinasa/química , Dipéptidos/química , Immunoblotting , Microscopía Fluorescente , Modelos Moleculares , Datos de Secuencia Molecular , Mutación , Péptidos/química , Péptidos/metabolismo , Precursores de Proteínas/química , Precursores de Proteínas/metabolismo , Estructura Terciaria de Proteína , Proteínas Protozoarias/antagonistas & inhibidores , Proteínas Protozoarias/química , Proteínas Protozoarias/genética , Sulfonas/química , Toxoplasma/genética
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