Your browser doesn't support javascript.
loading
Show: 20 | 50 | 100
Results 1 - 20 de 711
Filter
Add more filters

Publication year range
1.
Cell ; 178(1): 216-228.e21, 2019 06 27.
Article in English | MEDLINE | ID: mdl-31204103

ABSTRACT

The Plasmodium falciparum reticulocyte-binding protein homolog 5 (PfRH5) is the leading target for next-generation vaccines against the disease-causing blood-stage of malaria. However, little is known about how human antibodies confer functional immunity against this antigen. We isolated a panel of human monoclonal antibodies (mAbs) against PfRH5 from peripheral blood B cells from vaccinees in the first clinical trial of a PfRH5-based vaccine. We identified a subset of mAbs with neutralizing activity that bind to three distinct sites and another subset of mAbs that are non-functional, or even antagonistic to neutralizing antibodies. We also identify the epitope of a novel group of non-neutralizing antibodies that significantly reduce the speed of red blood cell invasion by the merozoite, thereby potentiating the effect of all neutralizing PfRH5 antibodies as well as synergizing with antibodies targeting other malaria invasion proteins. Our results provide a roadmap for structure-guided vaccine development to maximize antibody efficacy against blood-stage malaria.


Subject(s)
Antibodies, Monoclonal/immunology , Antibodies, Neutralizing/immunology , Antibodies, Protozoan/immunology , Erythrocytes/parasitology , Malaria Vaccines/immunology , Malaria, Falciparum/immunology , Plasmodium falciparum/immunology , Adolescent , Adult , Animals , Binding Sites , Carrier Proteins/immunology , Cross Reactions/immunology , Epitopes/immunology , Female , HEK293 Cells , Healthy Volunteers , Humans , Malaria, Falciparum/parasitology , Male , Merozoites/physiology , Middle Aged , Plasmodium falciparum/metabolism , Protozoan Proteins/immunology , Rabbits , Rats , Rats, Sprague-Dawley , Young Adult
2.
Immunity ; 57(6): 1215-1224.e6, 2024 Jun 11.
Article in English | MEDLINE | ID: mdl-38788711

ABSTRACT

Malaria is a life-threatening disease of global health importance, particularly in sub-Saharan Africa. The growth inhibition assay (GIA) is routinely used to evaluate, prioritize, and quantify the efficacy of malaria blood-stage vaccine candidates but does not reliably predict either naturally acquired or vaccine-induced protection. Controlled human malaria challenge studies in semi-immune volunteers provide an unparalleled opportunity to robustly identify mechanistic correlates of protection. We leveraged this platform to undertake a head-to-head comparison of seven functional antibody assays that are relevant to immunity against the erythrocytic merozoite stage of Plasmodium falciparum. Fc-mediated effector functions were strongly associated with protection from clinical symptoms of malaria and exponential parasite multiplication, while the gold standard GIA was not. The breadth of Fc-mediated effector function discriminated clinical immunity following the challenge. These findings present a shift in the understanding of the mechanisms that underpin immunity to malaria and have important implications for vaccine development.


Subject(s)
Antibodies, Protozoan , Malaria Vaccines , Malaria, Falciparum , Plasmodium falciparum , Humans , Plasmodium falciparum/immunology , Malaria, Falciparum/immunology , Malaria, Falciparum/parasitology , Antibodies, Protozoan/immunology , Malaria Vaccines/immunology , Adult , Immunoglobulin Fc Fragments/immunology , Merozoites/immunology , Erythrocytes/parasitology , Erythrocytes/immunology , Female , Male , Young Adult
3.
Cell ; 167(3): 610-624, 2016 Oct 20.
Article in English | MEDLINE | ID: mdl-27768886

ABSTRACT

Malaria has been a major global health problem of humans through history and is a leading cause of death and disease across many tropical and subtropical countries. Over the last fifteen years renewed efforts at control have reduced the prevalence of malaria by over half, raising the prospect that elimination and perhaps eradication may be a long-term possibility. Achievement of this goal requires the development of new tools including novel antimalarial drugs and more efficacious vaccines as well as an increased understanding of the disease and biology of the parasite. This has catalyzed a major effort resulting in development and regulatory approval of the first vaccine against malaria (RTS,S/AS01) as well as identification of novel drug targets and antimalarial compounds, some of which are in human clinical trials.


Subject(s)
Host-Parasite Interactions , Malaria, Falciparum , Plasmodium falciparum/growth & development , Adaptive Immunity , Animals , Antimalarials/therapeutic use , Communicable Disease Control/methods , Culicidae/parasitology , Disease Eradication/methods , Drug Resistance , Erythrocytes/parasitology , Global Health , Host-Parasite Interactions/immunology , Humans , Life Cycle Stages , Liver/parasitology , Malaria Vaccines/immunology , Malaria, Falciparum/immunology , Malaria, Falciparum/parasitology , Malaria, Falciparum/prevention & control , Malaria, Falciparum/transmission , Merozoites/growth & development , Plasmodium falciparum/immunology , Sporozoites/growth & development , Vaccines, Synthetic/immunology
4.
Nature ; 625(7994): 366-376, 2024 Jan.
Article in English | MEDLINE | ID: mdl-38093015

ABSTRACT

Sexual reproduction of Toxoplasma gondii, confined to the felid gut, remains largely uncharted owing to ethical concerns regarding the use of cats as model organisms. Chromatin modifiers dictate the developmental fate of the parasite during its multistage life cycle, but their targeting to stage-specific cistromes is poorly described1,2. Here we found that the transcription factors AP2XII-1 and AP2XI-2 operate during the tachyzoite stage, a hallmark of acute toxoplasmosis, to silence genes necessary for merozoites, a developmental stage critical for subsequent sexual commitment and transmission to the next host, including humans. Their conditional and simultaneous depletion leads to a marked change in the transcriptional program, promoting a full transition from tachyzoites to merozoites. These in vitro-cultured pre-gametes have unique protein markers and undergo typical asexual endopolygenic division cycles. In tachyzoites, AP2XII-1 and AP2XI-2 bind DNA as heterodimers at merozoite promoters and recruit MORC and HDAC3 (ref. 1), thereby limiting chromatin accessibility and transcription. Consequently, the commitment to merogony stems from a profound epigenetic rewiring orchestrated by AP2XII-1 and AP2XI-2. Successful production of merozoites in vitro paves the way for future studies on Toxoplasma sexual development without the need for cat infections and holds promise for the development of therapies to prevent parasite transmission.


Subject(s)
Cats , In Vitro Techniques , Life Cycle Stages , Toxoplasma , Animals , Cats/parasitology , Humans , Chromatin/genetics , Chromatin/metabolism , Disease Models, Animal , Epigenesis, Genetic , In Vitro Techniques/methods , Life Cycle Stages/genetics , Merozoites/genetics , Nuclear Proteins/metabolism , Promoter Regions, Genetic/genetics , Protozoan Proteins/genetics , Protozoan Proteins/metabolism , Toxoplasma/genetics , Toxoplasma/growth & development , Toxoplasma/physiology , Toxoplasmosis/genetics , Toxoplasmosis/parasitology , Toxoplasmosis/transmission , Transcription, Genetic
5.
Nature ; 625(7995): 578-584, 2024 Jan.
Article in English | MEDLINE | ID: mdl-38123677

ABSTRACT

The symptoms of malaria occur during the blood stage of infection, when parasites invade and replicate within human erythrocytes. The PfPCRCR complex1, containing PfRH5 (refs. 2,3), PfCyRPA, PfRIPR, PfCSS and PfPTRAMP, is essential for erythrocyte invasion by the deadliest human malaria parasite, Plasmodium falciparum. Invasion can be prevented by antibodies3-6 or nanobodies1 against each of these conserved proteins, making them the leading blood-stage malaria vaccine candidates. However, little is known about how PfPCRCR functions during invasion. Here we present the structure of the PfRCR complex7,8, containing PfRH5, PfCyRPA and PfRIPR, determined by cryogenic-electron microscopy. We test the hypothesis that PfRH5 opens to insert into the membrane9, instead showing that a rigid, disulfide-locked PfRH5 can mediate efficient erythrocyte invasion. We show, through modelling and an erythrocyte-binding assay, that PfCyRPA-binding antibodies5 neutralize invasion through a steric mechanism. We determine the structure of PfRIPR, showing that it consists of an ordered, multidomain core flexibly linked to an elongated tail. We also show that the elongated tail of PfRIPR, which is the target of growth-neutralizing antibodies6, binds to the PfCSS-PfPTRAMP complex on the parasite membrane. A modular PfRIPR is therefore linked to the merozoite membrane through an elongated tail, and its structured core presents PfCyRPA and PfRH5 to interact with erythrocyte receptors. This provides fresh insight into the molecular mechanism of erythrocyte invasion and opens the way to new approaches in rational vaccine design.


Subject(s)
Erythrocytes , Malaria, Falciparum , Multiprotein Complexes , Parasites , Plasmodium falciparum , Protozoan Proteins , Animals , Humans , Antibodies, Neutralizing/immunology , Antigens, Protozoan/chemistry , Antigens, Protozoan/immunology , Cryoelectron Microscopy , Disulfides/chemistry , Disulfides/metabolism , Erythrocytes/metabolism , Erythrocytes/parasitology , Malaria Vaccines/immunology , Malaria, Falciparum/immunology , Malaria, Falciparum/metabolism , Malaria, Falciparum/parasitology , Malaria, Falciparum/pathology , Merozoites/metabolism , Multiprotein Complexes/chemistry , Multiprotein Complexes/immunology , Multiprotein Complexes/metabolism , Multiprotein Complexes/ultrastructure , Parasites/metabolism , Parasites/pathogenicity , Plasmodium falciparum/metabolism , Plasmodium falciparum/pathogenicity , Protozoan Proteins/chemistry , Protozoan Proteins/immunology , Protozoan Proteins/metabolism , Protozoan Proteins/ultrastructure
6.
Nature ; 585(7826): 579-583, 2020 09.
Article in English | MEDLINE | ID: mdl-32939086

ABSTRACT

Malaria has had a major effect on the human genome, with many protective polymorphisms-such as the sickle-cell trait-having been selected to high frequencies in malaria-endemic regions1,2. The blood group variant Dantu provides 74% protection against all forms of severe malaria in homozygous individuals3-5, a similar degree of protection to that afforded by the sickle-cell trait and considerably greater than that offered by the best malaria vaccine. Until now, however, the protective mechanism has been unknown. Here we demonstrate the effect of Dantu on the ability of the merozoite form of the malaria parasite Plasmodium falciparum to invade red blood cells (RBCs). We find that Dantu is associated with extensive changes to the repertoire of proteins found on the RBC surface, but, unexpectedly, inhibition of invasion does not correlate with specific RBC-parasite receptor-ligand interactions. By following invasion using video microscopy, we find a strong link between RBC tension and merozoite invasion, and identify a tension threshold above which invasion rarely occurs, even in non-Dantu RBCs. Dantu RBCs have higher average tension than non-Dantu RBCs, meaning that a greater proportion resist invasion. These findings provide both an explanation for the protective effect of Dantu, and fresh insight into why the efficiency of P. falciparum invasion might vary across the heterogenous populations of RBCs found both within and between individuals.


Subject(s)
Blood Group Antigens/genetics , Erythrocytes/cytology , Erythrocytes/parasitology , Malaria, Falciparum/pathology , Malaria, Falciparum/prevention & control , Plasmodium falciparum/metabolism , Polymorphism, Genetic , Blood Group Antigens/classification , Blood Group Antigens/metabolism , Child , Erythrocytes/metabolism , Erythrocytes/pathology , Female , Genotype , Humans , Kenya , Ligands , Male , Merozoites/metabolism , Merozoites/pathogenicity , Microscopy, Video , Plasmodium falciparum/growth & development , Plasmodium falciparum/pathogenicity
7.
Mol Microbiol ; 121(5): 940-953, 2024 05.
Article in English | MEDLINE | ID: mdl-38419272

ABSTRACT

Plasmodium is an obligate intracellular parasite that requires intense lipid synthesis for membrane biogenesis and survival. One of the principal membrane components is oleic acid, which is needed to maintain the membrane's biophysical properties and fluidity. The malaria parasite can modify fatty acids, and stearoyl-CoA Δ9-desaturase (Scd) is an enzyme that catalyzes the synthesis of oleic acid by desaturation of stearic acid. Scd is dispensable in P. falciparum blood stages; however, its role in mosquito and liver stages remains unknown. We show that P. berghei Scd localizes to the ER in the blood and liver stages. Disruption of Scd in the rodent malaria parasite P. berghei did not affect parasite blood stage propagation, mosquito stage development, or early liver-stage development. However, when Scd KO sporozoites were inoculated intravenously or by mosquito bite into mice, they failed to initiate blood-stage infection. Immunofluorescence analysis revealed that organelle biogenesis was impaired and merozoite formation was abolished, which initiates blood-stage infections. Genetic complementation of the KO parasites restored merozoite formation to a level similar to that of WT parasites. Mice immunized with Scd KO sporozoites confer long-lasting sterile protection against infectious sporozoite challenge. Thus, the Scd KO parasite is an appealing candidate for inducing protective pre-erythrocytic immunity and hence its utility as a GAP.


Subject(s)
Liver , Malaria , Merozoites , Organelle Biogenesis , Plasmodium berghei , Sporozoites , Stearoyl-CoA Desaturase , Plasmodium berghei/genetics , Plasmodium berghei/growth & development , Plasmodium berghei/metabolism , Plasmodium berghei/enzymology , Animals , Mice , Liver/parasitology , Merozoites/growth & development , Merozoites/metabolism , Malaria/parasitology , Stearoyl-CoA Desaturase/metabolism , Stearoyl-CoA Desaturase/genetics , Sporozoites/growth & development , Sporozoites/metabolism , Protozoan Proteins/metabolism , Protozoan Proteins/genetics , Anopheles/parasitology , Female , Endoplasmic Reticulum/metabolism
8.
PLoS Pathog ; 19(9): e1011182, 2023 09.
Article in English | MEDLINE | ID: mdl-37713419

ABSTRACT

The Plasmodium falciparum reticulocyte-binding protein homolog 5 (PfRH5) is the current leading blood-stage malaria vaccine candidate. PfRH5 functions as part of the pentameric PCRCR complex containing PTRAMP, CSS, PfCyRPA and PfRIPR, all of which are essential for infection of human red blood cells (RBCs). To trigger RBC invasion, PfRH5 engages with RBC protein basigin in a step termed the RH5-basigin binding stage. Although we know increasingly more about how antibodies specific for PfRH5 can block invasion, much less is known about how antibodies recognizing other members of the PCRCR complex can inhibit invasion. To address this, we performed live cell imaging using monoclonal antibodies (mAbs) which bind PfRH5 and PfCyRPA. We measured the degree and timing of the invasion inhibition, the stage at which it occurred, as well as subsequent events. We show that parasite invasion is blocked by individual mAbs, and the degree of inhibition is enhanced when combining a mAb specific for PfRH5 with one binding PfCyRPA. In addition to directly establishing the invasion-blocking capacity of the mAbs, we identified a secondary action of certain mAbs on extracellular parasites that had not yet invaded where the mAbs appeared to inactivate the parasites by triggering a developmental pathway normally only seen after successful invasion. These findings suggest that epitopes within the PfCyRPA-PfRH5 sub-complex that elicit these dual responses may be more effective immunogens than neighboring epitopes by both blocking parasites from invading and rapidly inactivating extracellular parasites. These two protective mechanisms, prevention of invasion and inactivation of uninvaded parasites, resulting from antibody to a single epitope indicate a possible route to the development of more effective vaccines.


Subject(s)
Basigin , Merozoites , Humans , Animals , Plasmodium falciparum , Antibodies, Monoclonal , Epitopes
9.
PLoS Pathog ; 19(3): e1011210, 2023 03.
Article in English | MEDLINE | ID: mdl-36996035

ABSTRACT

Plasmodium parasites have a complex life cycle alternating between a mosquito and a vertebrate host. Following the bite of an Anopheles female mosquito, Plasmodium sporozoites are transmitted from the skin to the liver; their first place of replication within the host. Successfully invaded sporozoites undergo a massive replication and growth involving asynchronous DNA replication and division that results in the generation of tens of thousands or even hundreds of thousands of merozoites depending on the Plasmodium species. The generation of a high number of daughter parasites requires biogenesis and segregation of organelles to finally reach a relatively synchronous cytokinesis event. At the end of liver stage (LS) development, merozoites are packed into merosomes and released into the bloodstream. They are then liberated and infect red blood cells to again produce merozoites by schizogony for the erythrocytic stage of the life cycle. Although parasite LS and asexual blood stage (ABS) differ in many respects, important similarities exist between the two. This review focuses on the cell division of Plasmodium parasite LS in comparison with other life cycle stages especially the parasite blood stage.


Subject(s)
Liver , Plasmodium , Animals , Cytokinesis , Life Cycle Stages , Liver/parasitology , Merozoites , Plasmodium/physiology , Skin , Sporozoites
10.
PLoS Pathog ; 19(12): e1011807, 2023 Dec.
Article in English | MEDLINE | ID: mdl-38051755

ABSTRACT

Malaria is caused by the rapid proliferation of Plasmodium parasites in patients and disease severity correlates with the number of infected red blood cells in circulation. Parasite multiplication within red blood cells is called schizogony and occurs through an atypical multinucleated cell division mode. The mechanisms regulating the number of daughter cells produced by a single progenitor are poorly understood. We investigated underlying regulatory principles by quantifying nuclear multiplication dynamics in Plasmodium falciparum and knowlesi using super-resolution time-lapse microscopy. This confirmed that the number of daughter cells was consistent with a model in which a counter mechanism regulates multiplication yet incompatible with a timer mechanism. P. falciparum cell volume at the start of nuclear division correlated with the final number of daughter cells. As schizogony progressed, the nucleocytoplasmic volume ratio, which has been found to be constant in all eukaryotes characterized so far, increased significantly, possibly to accommodate the exponentially multiplying nuclei. Depleting nutrients by dilution of culture medium caused parasites to produce fewer merozoites and reduced proliferation but did not affect cell volume or total nuclear volume at the end of schizogony. Our findings suggest that the counter mechanism implicated in malaria parasite proliferation integrates extracellular resource status to modify progeny number during blood stage infection.


Subject(s)
Malaria, Falciparum , Malaria , Parasites , Animals , Humans , Parasites/physiology , Malaria, Falciparum/parasitology , Malaria/parasitology , Plasmodium falciparum/physiology , Merozoites/physiology , Erythrocytes/parasitology
11.
PLoS Pathog ; 18(6): e1010643, 2022 06.
Article in English | MEDLINE | ID: mdl-35731833

ABSTRACT

Plasmodium sporozoites that are transmitted by blood-feeding female Anopheles mosquitoes invade hepatocytes for an initial round of intracellular replication, leading to the release of merozoites that invade and multiply within red blood cells. Sporozoites and merozoites share a number of proteins that are expressed by both stages, including the Apical Membrane Antigen 1 (AMA1) and the Rhoptry Neck Proteins (RONs). Although AMA1 and RONs are essential for merozoite invasion of erythrocytes during asexual blood stage replication of the parasite, their function in sporozoites was still unclear. Here we show that AMA1 interacts with RONs in mature sporozoites. By using DiCre-mediated conditional gene deletion in P. berghei, we demonstrate that loss of AMA1, RON2 or RON4 in sporozoites impairs colonization of the mosquito salivary glands and invasion of mammalian hepatocytes, without affecting transcellular parasite migration. Three-dimensional electron microscopy data showed that sporozoites enter salivary gland cells through a ring-like structure and by forming a transient vacuole. The absence of a functional AMA1-RON complex led to an altered morphology of the entry junction, associated with epithelial cell damage. Our data establish that AMA1 and RONs facilitate host cell invasion across Plasmodium invasive stages, and suggest that sporozoites use the AMA1-RON complex to efficiently and safely enter the mosquito salivary glands to ensure successful parasite transmission. These results open up the possibility of targeting the AMA1-RON complex for transmission-blocking antimalarial strategies.


Subject(s)
Anopheles , Plasmodium , Animals , Female , Anopheles/parasitology , Mammals , Merozoites/metabolism , Plasmodium/metabolism , Plasmodium berghei/genetics , Protozoan Proteins/metabolism , Sporozoites/metabolism
12.
Microb Pathog ; 186: 106484, 2024 Jan.
Article in English | MEDLINE | ID: mdl-38052278

ABSTRACT

Sexual reproduction plays a crucial role in the transmission and life cycle of toxoplasmosis. The merozoites are the only developmental stage capable of differentiation into male and female gametes, thereby initiating sexual reproduction to form oocysts that are excreted into the environment. Hence, our study aimed to perform proteomic analyses of T. gondii Pru strain merozoites, a pre-sexual developmental stage in cat IECs, and tachyzoites, an asexual developmental stage, using the tandem mass tag (TMT) method in order to identify the differentially expressed proteins (DEPs) of merozoites. Proteins functions were subjected to cluster analysis, and DEPs were validated through the qPCR method. The results showed that a total of 106 proteins were identified, out of which 85 proteins had quantitative data. Among these, 15 proteins were differentially expressed within merozoites, with four exhibiting up-regulation and being closely associated with the material and energy metabolism as well as the cell division of T. gondii. Two novel DEPs, namely S8GHL5 and A0A125YP41, were identified, and their homologous family members have been demonstrated to play regulatory roles in oocyte maturation and spermatogenesis in other species. Therefore, they may potentially exhibit regulatory functions during the differentiation of micro- and macro-gametophytes at the initiation stage of sexual reproduction in T. gondii. In conclusion, our results showed that the metabolic and divisional activities in the merozoites surpass those in the tachyzoites, thereby providing structural, material, and energetic support for gametophytes development. The discovery of two novel DEPs associated with sexual reproduction represents a significant advancement in understanding Toxoplasma sexual reproduction initiation and oocyst formation.


Subject(s)
Parasites , Toxoplasma , Animals , Male , Female , Toxoplasma/genetics , Toxoplasma/chemistry , Merozoites/chemistry , Merozoites/metabolism , Proteomics/methods , Protozoan Proteins/genetics , Protozoan Proteins/metabolism , Oocysts , Reproduction , Transcription Factors/metabolism
13.
Immunity ; 42(3): 580-90, 2015 Mar 17.
Article in English | MEDLINE | ID: mdl-25786180

ABSTRACT

Antibodies play major roles in immunity to malaria; however, a limited understanding of mechanisms mediating protection is a major barrier to vaccine development. We have demonstrated that acquired human anti-malarial antibodies promote complement deposition on the merozoite to mediate inhibition of erythrocyte invasion through C1q fixation and activation of the classical complement pathway. Antibody-mediated complement-dependent (Ab-C') inhibition was the predominant invasion-inhibitory activity of human antibodies; most antibodies were non-inhibitory without complement. Inhibitory activity was mediated predominately via C1q fixation, and merozoite surface proteins 1 and 2 were identified as major targets. Complement fixation by antibodies was very strongly associated with protection from both clinical malaria and high-density parasitemia in a prospective longitudinal study of children. Ab-C' inhibitory activity could be induced by human immunization with a candidate merozoite surface-protein vaccine. Our findings demonstrate that human anti-malarial antibodies have evolved to function by fixing complement for potent invasion-inhibitory activity and protective immunity.


Subject(s)
Antibodies, Protozoan/biosynthesis , Complement C1q/metabolism , Malaria Vaccines/immunology , Malaria, Falciparum/prevention & control , Merozoites/immunology , Parasitemia/prevention & control , Plasmodium falciparum/immunology , Adolescent , Animals , Antigens, Protozoan/genetics , Antigens, Protozoan/immunology , Child , Child, Preschool , Complement Fixation Tests , Complement Pathway, Classical , Erythrocytes/immunology , Erythrocytes/parasitology , Female , Gene Expression , Host-Pathogen Interactions , Humans , Immunoglobulin G/biosynthesis , Malaria Vaccines/administration & dosage , Malaria, Falciparum/immunology , Malaria, Falciparum/parasitology , Male , Merozoite Surface Protein 1/antagonists & inhibitors , Merozoite Surface Protein 1/genetics , Merozoite Surface Protein 1/immunology , Parasitemia/immunology , Parasitemia/parasitology , Prospective Studies , Protozoan Proteins/antagonists & inhibitors , Protozoan Proteins/genetics , Protozoan Proteins/immunology
14.
PLoS Biol ; 19(12): e3001483, 2021 12.
Article in English | MEDLINE | ID: mdl-34879056

ABSTRACT

Cyclic adenosine monophosphate (cAMP)-dependent protein kinase A (PKA) signalling is essential for the proliferation of Plasmodium falciparum malaria blood stage parasites. The mechanisms regulating the activity of the catalytic subunit PfPKAc, however, are only partially understood, and PfPKAc function has not been investigated in gametocytes, the sexual blood stage forms that are essential for malaria transmission. By studying a conditional PfPKAc knockdown (cKD) mutant, we confirm the essential role for PfPKAc in erythrocyte invasion by merozoites and show that PfPKAc is involved in regulating gametocyte deformability. We furthermore demonstrate that overexpression of PfPKAc is lethal and kills parasites at the early phase of schizogony. Strikingly, whole genome sequencing (WGS) of parasite mutants selected to tolerate increased PfPKAc expression levels identified missense mutations exclusively in the gene encoding the parasite orthologue of 3-phosphoinositide-dependent protein kinase-1 (PfPDK1). Using targeted mutagenesis, we demonstrate that PfPDK1 is required to activate PfPKAc and that T189 in the PfPKAc activation loop is the crucial target residue in this process. In summary, our results corroborate the importance of tight regulation of PfPKA signalling for parasite survival and imply that PfPDK1 acts as a crucial upstream regulator in this pathway and potential new drug target.


Subject(s)
3-Phosphoinositide-Dependent Protein Kinases/metabolism , Cyclic AMP-Dependent Protein Kinases/metabolism , Plasmodium falciparum/metabolism , 3-Phosphoinositide-Dependent Protein Kinases/genetics , Animals , Catalytic Domain , Cell Line , Cyclic AMP-Dependent Protein Kinase Catalytic Subunits/metabolism , Cyclic AMP-Dependent Protein Kinases/genetics , Erythrocytes/parasitology , Humans , Malaria , Malaria, Falciparum/parasitology , Merozoites , Parasites/metabolism , Protozoan Proteins/metabolism
15.
PLoS Biol ; 19(10): e3001408, 2021 10.
Article in English | MEDLINE | ID: mdl-34695132

ABSTRACT

We have combined chemical biology and genetic modification approaches to investigate the importance of protein myristoylation in the human malaria parasite, Plasmodium falciparum. Parasite treatment during schizogony in the last 10 to 15 hours of the erythrocytic cycle with IMP-1002, an inhibitor of N-myristoyl transferase (NMT), led to a significant blockade in parasite egress from the infected erythrocyte. Two rhoptry proteins were mislocalized in the cell, suggesting that rhoptry function is disrupted. We identified 16 NMT substrates for which myristoylation was significantly reduced by NMT inhibitor (NMTi) treatment, and, of these, 6 proteins were substantially reduced in abundance. In a viability screen, we showed that for 4 of these proteins replacement of the N-terminal glycine with alanine to prevent myristoylation had a substantial effect on parasite fitness. In detailed studies of one NMT substrate, glideosome-associated protein 45 (GAP45), loss of myristoylation had no impact on protein location or glideosome assembly, in contrast to the disruption caused by GAP45 gene deletion, but GAP45 myristoylation was essential for erythrocyte invasion. Therefore, there are at least 3 mechanisms by which inhibition of NMT can disrupt parasite development and growth: early in parasite development, leading to the inhibition of schizogony and formation of "pseudoschizonts," which has been described previously; at the end of schizogony, with disruption of rhoptry formation, merozoite development and egress from the infected erythrocyte; and at invasion, when impairment of motor complex function prevents invasion of new erythrocytes. These results underline the importance of P. falciparum NMT as a drug target because of the pleiotropic effect of its inhibition.


Subject(s)
Erythrocytes/parasitology , Myristic Acid/metabolism , Plasmodium falciparum/metabolism , Protozoan Proteins/metabolism , Acyltransferases/antagonists & inhibitors , Acyltransferases/metabolism , Animals , CRISPR-Cas Systems/genetics , Cell Survival/drug effects , Enzyme Inhibitors/pharmacology , Erythrocytes/drug effects , Lipoylation/drug effects , Merozoites/drug effects , Merozoites/metabolism , Parasites/drug effects , Parasites/growth & development , Plasmodium falciparum/drug effects , Plasmodium falciparum/enzymology , Plasmodium falciparum/ultrastructure , Solubility , Substrate Specificity/drug effects
16.
Proc Natl Acad Sci U S A ; 118(48)2021 11 30.
Article in English | MEDLINE | ID: mdl-34819379

ABSTRACT

Plasmodium malaria parasites are obligate intracellular protozoans that use a unique form of locomotion, termed gliding motility, to move through host tissues and invade cells. The process is substrate dependent and powered by an actomyosin motor that drives the posterior translocation of extracellular adhesins which, in turn, propel the parasite forward. Gliding motility is essential for tissue translocation in the sporozoite and ookinete stages; however, the short-lived erythrocyte-invading merozoite stage has never been observed to undergo gliding movement. Here we show Plasmodium merozoites possess the ability to undergo gliding motility in vitro and that this mechanism is likely an important precursor step for successful parasite invasion. We demonstrate that two human infective species, Plasmodium falciparum and Plasmodium knowlesi, have distinct merozoite motility profiles which may reflect distinct invasion strategies. Additionally, we develop and validate a higher throughput assay to evaluate the effects of genetic and pharmacological perturbations on both the molecular motor and the complex signaling cascade that regulates motility in merozoites. The discovery of merozoite motility provides a model to study the glideosome and adds a dimension for work aiming to develop treatments targeting the blood stage invasion pathways.


Subject(s)
Erythrocytes/parasitology , Merozoites/physiology , Plasmodium falciparum/genetics , Plasmodium/metabolism , Protozoan Proteins/metabolism , Sporozoites/physiology , Actin Cytoskeleton/metabolism , Actomyosin/chemistry , Animals , Erythrocytes/cytology , Human Umbilical Vein Endothelial Cells , Humans , Inhibitory Concentration 50 , Locomotion , Membrane Proteins/metabolism , Signal Transduction
17.
Mem Inst Oswaldo Cruz ; 119: e230217, 2024.
Article in English | MEDLINE | ID: mdl-38537036

ABSTRACT

BACKGROUND: Malaria is an infectious disease caused by protozoan parasites belonging to the genus Plasmodium. Human-to-human transmission depends on a mosquito vector; thus, the interruption of parasite transmission from humans to mosquitoes is an important approach in the fight against malaria. The parasite stages infectious to mosquitoes are the gametocytes, sexual stages that are ingested by the vector during a blood meal and transform into male and female gametes in the midgut. Immunity against sexual stage antigens expressed by gametocytes, gametes, and the zygote formed after fertilisation can interrupt the parasite sexual cycle in the mosquito. This transmission blocking immunity is mediated by specific antibodies ingested during the mosquito blood feed, inhibiting the parasite development in the midgut. Merozoite thrombospondin related anonymous protein (MTRAP) is a merozoite and gametocyte surface protein essential for gamete egress from erythrocytes and for parasite transmission to mosquitoes. OBJECTIVES: Here, we evaluated the potential of the P. berghei MTRAP to elicit antibodies with the ability to inhibit gamete fertilisation in vitro. METHODS: We expressed a soluble recombinant PbMTRAP and used it to immunise BALB/c mice. The transmission blocking activity of the anti-rPbMTRAP antibodies was tested through in vivo challenge experiments followed by in vitro conversion assays. FINDINGS: Immunisations with the rPbMTRAP induced a strong antibody response and the antibodies recognised the native protein by Western Blot and IFA. Anti-rPbMTRAP present in the blood stream of immunised mice partially inhibited gamete conversion into ookinetes. CONCLUSION: Our results indicate that antibodies to PbMTRAP may reduce but are not sufficient to completely block transmission.


Subject(s)
Culicidae , Malaria , Male , Female , Humans , Animals , Mice , Protozoan Proteins , Plasmodium berghei , Merozoites , Malaria/prevention & control
18.
Parasitol Res ; 123(4): 190, 2024 Apr 22.
Article in English | MEDLINE | ID: mdl-38647704

ABSTRACT

The intracellular protozoan Eimeria tenella is responsible for avian coccidiosis which is characterized by host intestinal damage. During developmental cycle, E. tenella undergoes versatile transitional stages such as oocyst, sporozoites, merozoites, and gametocytes. These developmental transitions involve changes in cell shape and cell size requiring cytoskeletal remodeling and changes in membrane proteins, which may require transcriptional and translational regulations as well as post-translational modification of proteins. Palmitoylation is a post-translational modification (PTM) of protein that orchestrates protein targeting, folding, stability, regulated enzymatic activity and even epigenetic regulation of gene expression. Previous research revealed that protein palmitoylation play essential role in Toxoplasma gondii, Trypanosoma cruzi, Trichomonas vaginalis, and several Plasmodium parasites. Until now, there is little information on the enzymes related to palmitoylation and role of protein acylation or palmitoylation in E. tenella. Therefore, palmitome of the second-generation merozoite of E. tenella was investigated. We identified a total of 2569 palmitoyl-sites that were assigned to 2145 palmitoyl-peptides belonging to 1561 protein-groups that participated in biological processes including parasite morphology, motility and host cell invasion. In addition, RNA biosynthesis, protein biosynthesis, folding, proteasome-ubiquitin degradation, and enzymes involved in PTMs, carbohydrate metabolism, glycan biosynthesis, and mitochondrial respiratory chain as well as vesicle trafficking were identified. The study allowed us to decipher the broad influence of palmitoylation in E. tenella biology, and its potential roles in the pathobiology of E. tenella infection. Raw data are publicly available at iProX with the dataset identifier PXD045061.


Subject(s)
Eimeria tenella , Lipoylation , Merozoites , Protozoan Proteins , Eimeria tenella/genetics , Eimeria tenella/metabolism , Merozoites/metabolism , Protozoan Proteins/metabolism , Protozoan Proteins/genetics , Animals , Protein Processing, Post-Translational , Coccidiosis/parasitology , Coccidiosis/veterinary
19.
J Infect Dis ; 228(6): 759-768, 2023 09 15.
Article in English | MEDLINE | ID: mdl-37150885

ABSTRACT

BACKGROUND: Studies have demonstrated the protective role of antibodies against malaria. Young children are known to be particularly vulnerable to malaria, pointing to the evolution of naturally acquired clinical immunity over time. However, whether changes in antibody functionality track with the acquisition of naturally acquired malaria immunity remains incompletely understood. METHODS: Using systems serology, we characterized sporozoite- and merozoite-specific antibody profiles of uninfected Malian children before the malaria season who differed in their ability to control parasitemia and fever following Plasmodium falciparum (Pf) infection. We then assessed the contributions of individual traits to overall clinical outcomes, focusing on the immunodominant sporozoite CSP and merozoite AMA1 and MSP1 antigens. RESULTS: Humoral immunity evolved with age, with an expansion of both magnitude and functional quality, particularly within blood-stage phagocytic antibody activity. Moreover, concerning clinical outcomes postinfection, protected children had higher antibody-dependent neutrophil activity along with higher levels of MSP1-specific IgG3 and IgA and CSP-specific IgG3 and IgG4 prior to the malaria season. CONCLUSIONS: These data point to the natural evolution of functional humoral immunity to Pf with age and highlight particular antibody Fc-effector profiles associated with the control of malaria in children, providing clues for the design of next-generation vaccines or therapeutics.


Subject(s)
Malaria, Falciparum , Malaria , Animals , Humans , Child , Child, Preschool , Plasmodium falciparum , Merozoite Surface Protein 1 , Neutrophils , Antigens, Protozoan , Antibodies, Protozoan , Adaptive Immunity , Merozoites , Immunoglobulin G , Autoantibodies
20.
PLoS Pathog ; 17(7): e1009750, 2021 07.
Article in English | MEDLINE | ID: mdl-34324609

ABSTRACT

The human malaria parasite, Plasmodium falciparum possesses unique gliding machinery referred to as the glideosome that powers its entry into the insect and vertebrate hosts. Several parasite proteins including Photosensitized INA-labelled protein 1 (PhIL1) have been shown to associate with glideosome machinery. Here we describe a novel PhIL1 associated protein complex that co-exists with the glideosome motor complex in the inner membrane complex of the merozoite. Using an experimental genetics approach, we characterized the role(s) of three proteins associated with PhIL1: a glideosome associated protein- PfGAPM2, an IMC structural protein- PfALV5, and an uncharacterized protein-referred here as PfPhIP (PhIL1 Interacting Protein). Parasites lacking PfPhIP or PfGAPM2 were unable to invade host RBCs. Additionally, the downregulation of PfPhIP resulted in significant defects in merozoite segmentation. Furthermore, the PfPhIP and PfGAPM2 depleted parasites showed abrogation of reorientation/gliding. However, initial attachment with host RBCs was not affected in these parasites. Together, the data presented here show that proteins of the PhIL1-associated complex play an important role in the orientation of P. falciparum merozoites following initial attachment, which is crucial for the formation of a tight junction and hence invasion of host erythrocytes.


Subject(s)
Erythrocytes/parasitology , Malaria, Falciparum/metabolism , Malaria, Falciparum/parasitology , Merozoites/metabolism , Protozoan Proteins/metabolism , Humans
SELECTION OF CITATIONS
SEARCH DETAIL