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1.
Gastroenterology ; 163(6): 1643-1657.e14, 2022 12.
Article in English | MEDLINE | ID: mdl-36037995

ABSTRACT

BACKGROUND & AIMS: Necroptosis is a highly inflammatory mode of cell death that has been implicated in causing hepatic injury including steatohepatitis/ nonalcoholic steatohepatitis (NASH); however, the evidence supporting these claims has been controversial. A comprehensive, fundamental understanding of cell death pathways involved in liver disease critically underpins rational strategies for therapeutic intervention. We sought to define the role and relevance of necroptosis in liver pathology. METHODS: Several animal models of human liver pathology, including diet-induced steatohepatitis in male mice and diverse infections in both male and female mice, were used to dissect the relevance of necroptosis in liver pathobiology. We applied necroptotic stimuli to primary mouse and human hepatocytes to measure their susceptibility to necroptosis. Paired liver biospecimens from patients with NASH, before and after intervention, were analyzed. DNA methylation sequencing was also performed to investigate the epigenetic regulation of RIPK3 expression in primary human and mouse hepatocytes. RESULTS: Identical infection kinetics and pathologic outcomes were observed in mice deficient in an essential necroptotic effector protein, MLKL, compared with control animals. Mice lacking MLKL were indistinguishable from wild-type mice when fed a high-fat diet to induce NASH. Under all conditions tested, we were unable to induce necroptosis in hepatocytes. We confirmed that a critical activator of necroptosis, RIPK3, was epigenetically silenced in mouse and human primary hepatocytes and rendered them unable to undergo necroptosis. CONCLUSIONS: We have provided compelling evidence that necroptosis is disabled in hepatocytes during homeostasis and in the pathologic conditions tested in this study.


Subject(s)
Necroptosis , Non-alcoholic Fatty Liver Disease , Humans , Female , Male , Mice , Animals , Epigenesis, Genetic , Non-alcoholic Fatty Liver Disease/genetics , Hepatocytes , Receptor-Interacting Protein Serine-Threonine Kinases/genetics , Protein Kinases/genetics
2.
Biochem J ; 479(24): 2529-2546, 2022 12 22.
Article in English | MEDLINE | ID: mdl-36520108

ABSTRACT

Transmission blocking interventions can stop malaria parasite transmission from mosquito to human by inhibiting parasite infection in mosquitos. One of the most advanced candidates for a malaria transmission blocking vaccine is Pfs230. Pfs230 is the largest member of the 6-cysteine protein family with 14 consecutive 6-cysteine domains and is expressed on the surface of gametocytes and gametes. Here, we present the crystal structure of the first two 6-cysteine domains of Pfs230. We identified high affinity Pfs230-specific nanobodies that recognized gametocytes and bind to distinct sites on Pfs230, which were isolated from immunized alpacas. Using two non-overlapping Pfs230 nanobodies, we show that these nanobodies significantly blocked P. falciparum transmission and reduced the formation of exflagellation centers. Crystal structures of the transmission blocking nanobodies with the first 6-cysteine domain of Pfs230 confirm that they bind to different epitopes. In addition, these nanobodies bind to Pfs230 in the absence of the prodomain, in contrast with the binding of known Pfs230 transmission blocking antibodies. These results provide additional structural insight into Pfs230 domains and elucidate a mechanism of action of transmission blocking Pfs230 nanobodies.


Subject(s)
Malaria , Single-Domain Antibodies , Animals , Humans , Plasmodium falciparum/chemistry , Protozoan Proteins/chemistry , Antigens, Protozoan/chemistry , Cysteine , Antibodies, Protozoan
3.
Mol Microbiol ; 109(4): 458-473, 2018 08.
Article in English | MEDLINE | ID: mdl-29873127

ABSTRACT

Transmission of the malaria parasite Plasmodium falciparum involves infection of Anopheles mosquitoes. Here we characterize SOPT, a protein expressed in P. falciparum ookinetes that facilitates infection of the mosquito midgut. SOPT was identified on the basis that it contains a signal peptide, a PEXEL-like sequence and is expressed in asexual, ookinete and sporozoite stages, suggesting it is involved in infecting the human or mosquito host. SOPT is predicted to contain a subtilisin-like fold with a non-canonical catalytic triad and is orthologous to P. berghei PIMMS2. Localization studies reveal that SOPT is not exported to the erythrocyte but is expressed in ookinetes at the parasite periphery. SOPT-deficient parasites develop normally through the asexual and sexual stages and produce equivalent numbers of ookinetes to NF54 controls, however, they form fewer oocysts and sporozoites in mosquitoes. SOPT-deficient parasites were also unable to activate the immune-responsive midgut invasion marker SRPN6 after mosquito ingestion, suggesting they are defective for entry into the midgut. Disruption of SOPT in P. berghei (PIMMS2) did not affect other lifecycle stages or ookinete development but again resulted in fewer oocysts and sporozoites in mosquitoes. Collectively, this study shows that SOPT/PIMMS2 plays a conserved role in ookinetes of different Plasmodium species.


Subject(s)
Anopheles/parasitology , Digestive System/parasitology , Oocysts/growth & development , Plasmodium falciparum/pathogenicity , Protozoan Proteins/metabolism , Sporozoites/growth & development , Animals , Malaria, Falciparum/transmission , Mosquito Vectors/parasitology , Subtilisin/metabolism
4.
Cell Microbiol ; 19(9)2017 09.
Article in English | MEDLINE | ID: mdl-28371168

ABSTRACT

The malaria sporozoite injected by a mosquito migrates to the liver by traversing host cells. The sporozoite also traverses hepatocytes before invading a terminal hepatocyte and developing into exoerythrocytic forms. Hepatocyte infection is critical for parasite development into merozoites that infect erythrocytes, and the sporozoite is thus an important target for antimalarial intervention. Here, we investigated two abundant sporozoite proteins of the most virulent malaria parasite Plasmodium falciparum and show that they play important roles during cell traversal and invasion of human hepatocytes. Incubation of P. falciparum sporozoites with R1 peptide, an inhibitor of apical merozoite antigen 1 (AMA1) that blocks merozoite invasion of erythrocytes, strongly reduced cell traversal activity. Consistent with its inhibitory effect on merozoites, R1 peptide also reduced sporozoite entry into human hepatocytes. The strong but incomplete inhibition prompted us to study the AMA-like protein, merozoite apical erythrocyte-binding ligand (MAEBL). MAEBL-deficient P. falciparum sporozoites were severely attenuated for cell traversal activity and hepatocyte entry in vitro and for liver infection in humanized chimeric liver mice. This study shows that AMA1 and MAEBL are important for P. falciparum sporozoites to perform typical functions necessary for infection of human hepatocytes. These two proteins therefore have important roles during infection at distinct points in the life cycle, including the blood, mosquito, and liver stages.


Subject(s)
Hepatocytes/parasitology , Malaria, Falciparum/parasitology , Membrane Proteins/antagonists & inhibitors , Merozoites/growth & development , Plasmodium falciparum/pathogenicity , Protozoan Proteins/antagonists & inhibitors , Receptors, Cell Surface/antagonists & inhibitors , Sporozoites/growth & development , Animals , Anopheles/parasitology , Antigens, Protozoan/genetics , Cell Line , Disease Models, Animal , Erythrocytes/parasitology , Humans , Liver/parasitology , Membrane Proteins/genetics , Mice , Mice, SCID , Protozoan Proteins/genetics , Receptors, Cell Surface/genetics
5.
PLoS Pathog ; 11(12): e1005343, 2015 Dec.
Article in English | MEDLINE | ID: mdl-26694741

ABSTRACT

The most severe form of malaria in humans is caused by the protozoan parasite Plasmodium falciparum. The invasive form of malaria parasites is termed a merozoite and it employs an array of parasite proteins that bind to the host cell to mediate invasion. In Plasmodium falciparum, the erythrocyte binding-like (EBL) and reticulocyte binding-like (Rh) protein families are responsible for binding to specific erythrocyte receptors for invasion and mediating signalling events that initiate active entry of the malaria parasite. Here we have addressed the role of the cytoplasmic tails of these proteins in activating merozoite invasion after receptor engagement. We show that the cytoplasmic domains of these type 1 membrane proteins are phosphorylated in vitro. Depletion of PfCK2, a kinase implicated to phosphorylate these cytoplasmic tails, blocks P. falciparum invasion of red blood cells. We identify the crucial residues within the PfRh4 cytoplasmic domain that are required for successful parasite invasion. Live cell imaging of merozoites from these transgenic mutants show they attach but do not penetrate erythrocytes implying the PfRh4 cytoplasmic tail conveys signals important for the successful completion of the invasion process.


Subject(s)
Erythrocytes/microbiology , Malaria, Falciparum/metabolism , Phosphotransferases/metabolism , Plasmodium falciparum/metabolism , Protozoan Proteins/metabolism , Amino Acid Sequence , Humans , Merozoites/metabolism , Molecular Sequence Data , Phosphorylation , Plasmodium falciparum/pathogenicity
6.
PLoS Biol ; 12(7): e1001897, 2014 Jul.
Article in English | MEDLINE | ID: mdl-24983235

ABSTRACT

The malaria parasite Plasmodium falciparum exports several hundred proteins into the infected erythrocyte that are involved in cellular remodeling and severe virulence. The export mechanism involves the Plasmodium export element (PEXEL), which is a cleavage site for the parasite protease, Plasmepsin V (PMV). The PMV gene is refractory to deletion, suggesting it is essential, but definitive proof is lacking. Here, we generated a PEXEL-mimetic inhibitor that potently blocks the activity of PMV isolated from P. falciparum and Plasmodium vivax. Assessment of PMV activity in P. falciparum revealed PEXEL cleavage occurs cotranslationaly, similar to signal peptidase. Treatment of P. falciparum-infected erythrocytes with the inhibitor caused dose-dependent inhibition of PEXEL processing as well as protein export, including impaired display of the major virulence adhesin, PfEMP1, on the erythrocyte surface, and cytoadherence. The inhibitor killed parasites at the trophozoite stage and knockdown of PMV enhanced sensitivity to the inhibitor, while overexpression of PMV increased resistance. This provides the first direct evidence that PMV activity is essential for protein export in Plasmodium spp. and for parasite survival in human erythrocytes and validates PMV as an antimalarial drug target.


Subject(s)
Aspartic Acid Endopeptidases/antagonists & inhibitors , Aspartic Acid Proteases/antagonists & inhibitors , Oligopeptides/pharmacology , Protozoan Proteins/antagonists & inhibitors , Sulfonamides/pharmacology , Endoplasmic Reticulum/metabolism , Erythrocytes/parasitology , Humans , Protein Transport/drug effects , Protozoan Proteins/metabolism
7.
Traffic ; 14(5): 532-50, 2013 May.
Article in English | MEDLINE | ID: mdl-23387285

ABSTRACT

Plasmodium falciparum exports several hundred effector proteins that remodel the host erythrocyte and enable parasites to acquire nutrients, sequester in the circulation and evade immune responses. The majority of exported proteins contain the Plasmodium export element (PEXEL; RxLxE/Q/D) in their N-terminus, which is proteolytically cleaved in the parasite endoplasmic reticulum by Plasmepsin V, and is necessary for export. Several exported proteins lack a PEXEL or contain noncanonical motifs. Here, we assessed whether Plasmepsin V could process the N-termini of diverse protein families in P. falciparum. We show that Plasmepsin V cleaves N-terminal sequences from RIFIN, STEVOR and RESA multigene families, the latter of which contain a relaxed PEXEL (RxLxxE). However, Plasmepsin V does not cleave the N-terminal sequence of the major exported virulence factor erythrocyte membrane protein 1 (PfEMP1) or the PEXEL-negative exported proteins SBP-1 or REX-2. We probed the substrate specificity of Plasmepsin V and determined that lysine at the PEXEL P3 position, which is present in PfEMP1 and other putatively exported proteins, blocks Plasmepsin V activity. Furthermore, isoleucine at position P1 also blocked Plasmepsin V activity. The specificity of Plasmepsin V is therefore exquisitely confined and we have used this novel information to redefine the predicted P. falciparum PEXEL exportome.


Subject(s)
Aspartic Acid Endopeptidases/metabolism , Erythrocytes/parasitology , Membrane Proteins/metabolism , Plasmodium falciparum/metabolism , Protozoan Proteins/metabolism , Amino Acid Motifs , Antigens, Protozoan/metabolism , Carrier Proteins/metabolism , Chromatography, High Pressure Liquid , Computational Biology , Endoplasmic Reticulum/metabolism , Erythrocytes/cytology , Humans , Protein Structure, Tertiary , Software , Subcellular Fractions , Virulence Factors/metabolism
8.
Mol Microbiol ; 91(4): 762-76, 2014 Feb.
Article in English | MEDLINE | ID: mdl-24350823

ABSTRACT

Intra-erythrocytic stages of the malaria parasite, Plasmodium falciparum, are thought to be dependent on de novo synthesis of phosphatidylinositol, as red blood cells (RBC) lack the capacity to synthesize this phospholipid. The myo-inositol headgroup of PI can either be synthesized de novo or scavenged from the RBC. An untargeted metabolite profiling of P. falciparum infected RBC showed that trophozoite and schizont stages accumulate high levels of myo-inositol-3-phosphate, indicating increased de novo biosynthesis of myo-inositol from glucose 6-phosphate. Metabolic labelling studies with (13) C-U-glucose in the presence and absence of exogenous inositol confirmed that de novo myo-inositol synthesis occurs in parallel with myo-inositol salvage pathways. Unexpectedly, while both endogenous and scavenged myo-inositol was used to synthesize bulk PI, only de novo-synthesized myo-inositol was incorporated into GPI glycolipids. Moreover, gene disruption studies suggested that the INO1 gene, encoding myo-inositol 3-phosphate synthase, is essential in asexual parasite stages. Together these findings suggest that P. falciparum asexual stages are critically dependent on de novo myo-inositol biosynthesis for assembly of a sub-pool of PI species and GPI biosynthesis. These findings highlight unexpected complexity in phospholipid biosynthesis in P. falciparum and a lack of redundancy in some nutrient salvage versus endogenous biosynthesis pathways.


Subject(s)
GPI-Linked Proteins/metabolism , Glycolipids/metabolism , Inositol/biosynthesis , Plasmodium falciparum/physiology , Erythrocytes/parasitology , Glucose-6-Phosphate/metabolism , Humans , Isotope Labeling , Plasmodium falciparum/metabolism
9.
J Immunol ; 191(2): 785-94, 2013 Jul 15.
Article in English | MEDLINE | ID: mdl-23776178

ABSTRACT

Abs that inhibit Plasmodium falciparum invasion of erythrocytes form an important component of human immunity against malaria, but key target Ags are largely unknown. Phenotypic variation by P. falciparum mediates the evasion of inhibitory Abs, contributing to the capacity of P. falciparum to cause repeat and chronic infections. However, Ags involved in mediating immune evasion have not been defined, and studies of the function of human Abs are limited. In this study, we used novel approaches to determine the importance of P. falciparum erythrocyte-binding Ags (EBAs), which are important invasion ligands, as targets of human invasion-inhibitory Abs and define their role in contributing to immune evasion through variation in function. We evaluated the invasion-inhibitory activity of acquired Abs from malaria-exposed children and adults from Kenya, using P. falciparum with disruption of genes encoding EBA140, EBA175, and EBA181, either individually or combined as EBA140/EBA175 or EBA175/EBA181 double knockouts. Our findings provide important new evidence that variation in the expression and function of the EBAs plays an important role in evasion of acquired Abs and that a substantial amount of phenotypic diversity results from variation in expression of different EBAs that contributes to immune evasion by P. falciparum. All three EBAs were identified as important targets of naturally acquired inhibitory Abs demonstrated by differential inhibition of parental parasites greater than EBA knockout lines. This knowledge will help to advance malaria vaccine development and suggests that multiple invasion ligands need to be targeted to overcome the capacity of P. falciparum for immune evasion.


Subject(s)
Antibodies, Protozoan/immunology , Antigens, Protozoan/immunology , Carrier Proteins/immunology , Immune Evasion , Protozoan Proteins/immunology , Adolescent , Adult , Aged , Aged, 80 and over , Antibodies, Protozoan/blood , Antigens, Protozoan/genetics , Carrier Proteins/genetics , Child , Child, Preschool , Erythrocytes/metabolism , Erythrocytes/parasitology , Female , Gene Knockout Techniques , Genetic Variation , Humans , Malaria, Falciparum/blood , Malaria, Falciparum/immunology , Malaria, Falciparum/parasitology , Male , Membrane Proteins , Middle Aged , Plasmodium falciparum/immunology , Protozoan Proteins/genetics , Young Adult
10.
PLoS Pathog ; 7(6): e1002075, 2011 Jun.
Article in English | MEDLINE | ID: mdl-21698217

ABSTRACT

Plasmodium falciparum, the causative agent of the most severe form of malaria in humans invades erythrocytes using multiple ligand-receptor interactions. The P. falciparum reticulocyte binding-like homologue proteins (PfRh or PfRBL) are important for entry of the invasive merozoite form of the parasite into red blood cells. We have analysed two members of this protein family, PfRh2a and PfRh2b, and show they undergo a complex series of proteolytic cleavage events before and during merozoite invasion. We show that PfRh2a undergoes a cleavage event in the transmembrane region during invasion consistent with activity of the membrane associated PfROM4 protease that would result in release of the ectodomain into the supernatant. We also show that PfRh2a and PfRh2b bind to red blood cells and have defined the erythrocyte-binding domain to a 15 kDa region at the N-terminus of each protein. Antibodies to this receptor-binding region block merozoite invasion demonstrating the important function of this domain. This region of PfRh2a and PfRh2b has potential in a combination vaccine with other erythrocyte binding ligands for induction of antibodies that would block a broad range of invasion pathways for P. falciparum into human erythrocytes.


Subject(s)
Antibodies, Protozoan/pharmacology , Merozoites/immunology , Plasmodium falciparum/immunology , Protein Interaction Domains and Motifs/immunology , Protozoan Proteins/immunology , Animals , Antibodies, Protozoan/immunology , Cells, Cultured , Endocytosis/drug effects , Erythrocytes/metabolism , Erythrocytes/parasitology , Humans , Merozoites/drug effects , Merozoites/metabolism , Merozoites/physiology , Mice , Molecular Sequence Data , Plasmodium falciparum/drug effects , Plasmodium falciparum/physiology , Protein Binding/drug effects , Protozoan Proteins/chemistry , Protozoan Proteins/metabolism , Rabbits
11.
PLoS Pathog ; 7(9): e1002199, 2011 Sep.
Article in English | MEDLINE | ID: mdl-21909261

ABSTRACT

Invasion of erythrocytes by Plasmodium falciparum involves a complex cascade of protein-protein interactions between parasite ligands and host receptors. The reticulocyte binding-like homologue (PfRh) protein family is involved in binding to and initiating entry of the invasive merozoite into erythrocytes. An important member of this family is PfRh5. Using ion-exchange chromatography, immunoprecipitation and mass spectroscopy, we have identified a novel cysteine-rich protein we have called P. falciparumRh5 interacting protein (PfRipr) (PFC1045c), which forms a complex with PfRh5 in merozoites. Mature PfRipr has a molecular weight of 123 kDa with 10 epidermal growth factor-like domains and 87 cysteine residues distributed along the protein. In mature schizont stages this protein is processed into two polypeptides that associate and form a complex with PfRh5. The PfRipr protein localises to the apical end of the merozoites in micronemes whilst PfRh5 is contained within rhoptries and both are released during invasion when they form a complex that is shed into the culture supernatant. Antibodies to PfRipr1 potently inhibit merozoite attachment and invasion into human red blood cells consistent with this complex playing an essential role in this process.


Subject(s)
Carrier Proteins/metabolism , Epidermal Growth Factor/metabolism , Erythrocytes/parasitology , Plasmodium falciparum/physiology , Protozoan Proteins/metabolism , Animals , Humans , Merozoites/physiology
12.
Blood ; 118(7): 1923-33, 2011 Aug 18.
Article in English | MEDLINE | ID: mdl-21685372

ABSTRACT

The Plasmodium falciparum adhesin PfRh4 binds to complement receptor type-1 (CR1) on human erythrocytes and mediates a glycophorin-independent invasion pathway. CR1 is a complement regulator and immune-adherence receptor on erythrocytes required for shuttling of C3b/C4b-opsonized particles to liver and spleen for phagocytosis. Using recombinant CR1 constructs, we mapped the recognition site for PfRh4 to complement control protein modules 1 to 3 (CCP1-3) at the membrane-distal amino terminus of CR1. This region of CR1 binds to C4b and C3b and accelerates decay of both classic pathway and alternative pathway C3 and C5 convertases. CCP1-3 competed for PfRh4 binding to erythroid CR1 and inhibited the PfRh4-CR1 invasion pathways across a wide range of P falciparum strains. PfRh4 did not bind significantly to other CR1 constructs, including CCP15-17, which is 85% identical to CCP1-3. PfRh4 binding to CR1 did not affect its C3b/C4b binding capability, and we show evidence for a ternary complex between CCP1-3, C4b, and PfRh4. PfRh4 binding specifically inhibited CR1's convertase decay-accelerating activity, whereas there was no effect on factor H-mediated decay-accelerating activity. These results increase our understanding of the functional implications of CR1 engagement with PfRh4 and highlight the interplay between complement regulation and infection.


Subject(s)
Erythrocytes/parasitology , Host-Parasite Interactions , Malaria, Falciparum/parasitology , Membrane Proteins/metabolism , Plasmodium falciparum/physiology , Protozoan Proteins/metabolism , Receptors, Complement/metabolism , Humans , Protein Binding , Recombinant Proteins/metabolism
13.
Proc Natl Acad Sci U S A ; 107(40): 17327-32, 2010 Oct 05.
Article in English | MEDLINE | ID: mdl-20855594

ABSTRACT

Plasmodium falciparum is responsible for the most severe form of malaria disease in humans, causing more than 1 million deaths each year. As an obligate intracellular parasite, P. falciparum's ability to invade erythrocytes is essential for its survival within the human host. P. falciparum invades erythrocytes using multiple host receptor-parasite ligand interactions known as invasion pathways. Here we show that CR1 is the host erythrocyte receptor for PfRh4, a major P. falciparum ligand essential for sialic acid-independent invasion. PfRh4 and CR1 interact directly, with a K(d) of 2.9 µM. PfRh4 binding is strongly correlated with the CR1 level on the erythrocyte surface. Parasite invasion via sialic acid-independent pathways is reduced in low-CR1 erythrocytes due to limited availability of this receptor on the surface. Furthermore, soluble CR1 can competitively block binding of PfRh4 to the erythrocyte surface and specifically inhibit sialic acid-independent parasite invasion. These results demonstrate that CR1 is an erythrocyte receptor used by the parasite ligand PfRh4 for P. falciparum invasion.


Subject(s)
Erythrocytes/metabolism , Erythrocytes/parasitology , Membrane Proteins/metabolism , Plasmodium falciparum/metabolism , Plasmodium falciparum/pathogenicity , Protozoan Proteins/metabolism , Receptors, Complement/metabolism , Animals , Erythrocytes/cytology , Humans , Membrane Proteins/genetics , N-Acetylneuraminic Acid/metabolism , Plasmodium falciparum/genetics , Protein Binding , Protozoan Proteins/genetics , Receptors, Complement/genetics , Recombinant Proteins/genetics , Recombinant Proteins/metabolism
14.
Commun Biol ; 6(1): 861, 2023 08 18.
Article in English | MEDLINE | ID: mdl-37596377

ABSTRACT

The malaria parasite uses actin-based mechanisms throughout its lifecycle to control a range of biological processes including intracellular trafficking, gene regulation, parasite motility and invasion. In this work we assign functions to the Plasmodium falciparum formins 1 and 2 (FRM1 and FRM2) proteins in asexual and sexual blood stage development. We show that FRM1 is essential for merozoite invasion and FRM2 is required for efficient cell division. We also observed divergent functions for FRM1 and FRM2 in gametocyte development. Conditional deletion of FRM1 leads to a delay in gametocyte stage progression. We show that FRM2 controls the actin and microtubule cytoskeletons in developing gametocytes, with premature removal of the protein resulting in a loss of transmissible stage V gametocytes. Lastly, we show that targeting formin proteins with the small molecule inhibitor of formin homology domain 2 (SMIFH2) leads to a multistage block in asexual and sexual stage parasite development.


Subject(s)
Actins , Plasmodium falciparum , Actins/genetics , Formins , Plasmodium falciparum/genetics , Cell Division , Cytoskeleton
15.
Nat Commun ; 13(1): 4400, 2022 07 29.
Article in English | MEDLINE | ID: mdl-35906227

ABSTRACT

Tryptophan C-mannosylation stabilizes proteins bearing a thrombospondin repeat (TSR) domain in metazoans. Here we show that Plasmodium falciparum expresses a DPY19 tryptophan C-mannosyltransferase in the endoplasmic reticulum and that DPY19-deficiency abolishes C-glycosylation, destabilizes members of the TRAP adhesin family and inhibits transmission to mosquitoes. Imaging P. falciparum gametogenesis in its entirety in four dimensions using lattice light-sheet microscopy reveals defects in ΔDPY19 gametocyte egress and exflagellation. While egress is diminished, ΔDPY19 microgametes still fertilize macrogametes, forming ookinetes, but these are abrogated for mosquito infection. The gametogenesis defects correspond with destabilization of MTRAP, which we show is C-mannosylated in P. falciparum, and the ookinete defect is concordant with defective CTRP secretion on the ΔDPY19 background. Genetic complementation of DPY19 restores ookinete infectivity, sporozoite production and C-mannosylation activity. Therefore, tryptophan C-mannosylation by DPY19 ensures TSR protein quality control at two lifecycle stages for successful transmission of the human malaria parasite.


Subject(s)
Culicidae , Malaria, Falciparum , Animals , Culicidae/metabolism , Glycosylation , Humans , Malaria, Falciparum/parasitology , Plasmodium falciparum/genetics , Plasmodium falciparum/metabolism , Protozoan Proteins/genetics , Protozoan Proteins/metabolism , Thrombospondins/metabolism , Tryptophan/metabolism
16.
Infect Immun ; 79(3): 1107-17, 2011 Mar.
Article in English | MEDLINE | ID: mdl-21149582

ABSTRACT

Plasmodium falciparum causes the most severe form of malaria in humans and invades erythrocytes using multiple ligand-receptor interactions. Two important protein families involved in erythrocyte binding are the erythrocyte binding-like (EBL) and the reticulocyte binding-like (RBL or P. falciparum Rh [PfRh]) proteins. We constructed P. falciparum lines lacking expression of EBL proteins by creating single and double knockouts of the corresponding genes for eba-175, eba-181, and eba-140 and show that the EBL and PfRh proteins function cooperatively, consistent with them playing a similar role in merozoite invasion. We provide evidence that PfRh and EBL proteins functionally interact, as loss of function of EBA-181 ablates the ability of PfRh2a/b protein antibodies to inhibit merozoite invasion. Additionally, loss of function of some ebl genes results in selection for increased transcription of the PfRh family. This provides a rational basis for considering PfRh and EBL proteins for use as a combination vaccine against P. falciparum. We immunized rabbits with combinations of PfRh and EBL proteins to test the ability of antibodies to block merozoite invasion in growth inhibition assays. A combination of EBA-175, PfRh2a/b, and PfRh4 recombinant proteins induced antibodies that potently blocked merozoite invasion. This validates the use of a combination of these ligands as a potential vaccine that would have broad activity against P. falciparum.


Subject(s)
Erythrocytes/parasitology , Malaria/metabolism , Plasmodium falciparum/pathogenicity , Protozoan Proteins/metabolism , Reticulocytes/parasitology , Animals , Antibodies, Protozoan/immunology , Antibodies, Protozoan/metabolism , Coculture Techniques , Enzyme-Linked Immunosorbent Assay , Erythrocytes/immunology , Erythrocytes/metabolism , Gene Knockout Techniques , Humans , Immunoblotting , Malaria/immunology , Malaria Vaccines/immunology , Plasmodium falciparum/genetics , Plasmodium falciparum/metabolism , Protozoan Proteins/genetics , Protozoan Proteins/immunology , Rabbits , Reticulocytes/immunology , Reticulocytes/metabolism , Reverse Transcriptase Polymerase Chain Reaction , Transfection
17.
Neurobiol Dis ; 42(3): 368-80, 2011 Jun.
Article in English | MEDLINE | ID: mdl-21303696

ABSTRACT

CMT4D disease is a severe autosomal recessive demyelinating neuropathy with extensive axonal loss leading to early disability, caused by mutations in the N-myc downstream regulated gene 1 (NDRG1). NDRG1 is expressed at particularly high levels in the Schwann cell (SC), but its physiological function(s) are unknown. To help with their understanding, we characterise the phenotype of a new mouse model, stretcher (str), with total Ndrg1 deficiency, in comparison with the hypomorphic Ndrg1 knock-out (KO) mouse. While both models display normal initial myelination and a transition to overt pathology between weeks 3 and 5, the markedly more severe str phenotype suggests that even low Ndrg1 expression results in significant phenotype rescue. Neither model replicates fully the features of CMT4D: although axon damage is present, regenerative capacity is unimpaired and the mice do not display the early severe axonal loss typical of the human disease. The widespread large fibre demyelination coincides precisely with the period of rapid growth of the animals and the dramatic (160-500-fold) increase in myelin volume and length in large fibres. This is followed by stabilisation after week 10, while small fibres remain unaffected. Gene expression profiling of str peripheral nerve reveals non-specific secondary changes at weeks 5 and 10 and preliminary data point to normal proteasomal function. Our findings do not support the proposed roles of NDRG1 in growth arrest, terminal differentiation, gene expression regulation and proteasomal degradation. Impaired SC trafficking failing to meet the considerable demands of nerve growth, emerges as the likely pathogenetic mechanism in NDRG1 deficiency.


Subject(s)
Cell Cycle Proteins/metabolism , Demyelinating Diseases/metabolism , Intracellular Signaling Peptides and Proteins/metabolism , Myelin Sheath/metabolism , Schwann Cells/metabolism , Animals , Blotting, Western , Cell Cycle Proteins/genetics , Charcot-Marie-Tooth Disease/genetics , Charcot-Marie-Tooth Disease/metabolism , Charcot-Marie-Tooth Disease/pathology , Demyelinating Diseases/genetics , Demyelinating Diseases/pathology , Disease Models, Animal , Electrophysiology , Gene Expression , Intracellular Signaling Peptides and Proteins/genetics , Mice , Mice, Knockout , Myelin Sheath/genetics , Myelin Sheath/pathology , Refsum Disease/genetics , Refsum Disease/metabolism , Refsum Disease/pathology , Schwann Cells/pathology , Sciatic Nerve/metabolism , Sciatic Nerve/pathology
18.
Infect Immun ; 78(6): 2734-44, 2010 Jun.
Article in English | MEDLINE | ID: mdl-20368343

ABSTRACT

Genetic linkage studies of the host response to Leishmania major, the causative agent of cutaneous leishmaniasis, have identified significant genetic complexity in humans and mice. In the mouse model, multiple loci have been implicated in susceptibility to infection, but to date, the genes underlying these loci have not been identified. We now describe the contribution of a novel candidate gene, Fli1, to both L. major resistance and enhanced wound healing. We have previously mapped the L. major response locus, lmr2, to proximal chromosome 9 in a genetic cross between the resistant C57BL/6 strain and the susceptible BALB/c strain. We now show that the presence of the resistant C57BL/6 lmr2 allele in susceptible BALB/c mice confers an enhanced L. major resistance and wound healing phenotype. Fine mapping of the lmr2 locus permitted the localization of the lmr2 quantitative trait locus to a 5-Mb interval comprising 21 genes, of which microarray analysis was able to identify differential expression in 1 gene-Fli1. Analysis of Fli1 expression in wounded and L. major-infected skin and naïve and infected lymph nodes validated the importance of Fli1 in lesion resolution and wound healing and identified 3 polymorphisms in the Fli1 promoter, among which a GA repeat element may be the important contributor.


Subject(s)
Genetic Predisposition to Disease , Leishmania major/immunology , Leishmaniasis, Cutaneous/immunology , Proto-Oncogene Protein c-fli-1/physiology , Wound Healing , Animals , Chromosome Mapping , Crosses, Genetic , Female , Gene Expression Profiling , Genetic Loci , Mice , Mice, Inbred BALB C , Mice, Inbred C57BL , Polymorphism, Genetic , Promoter Regions, Genetic
19.
Cell Rep ; 30(13): 4343-4354.e4, 2020 03 31.
Article in English | MEDLINE | ID: mdl-32234472

ABSTRACT

Plasmodium sporozoites infect the liver and develop into exoerythrocytic merozoites that initiate blood-stage disease. The hepatocyte molecular pathways that permit or abrogate parasite replication and merozoite formation have not been thoroughly explored, and a deeper understanding may identify therapeutic strategies to mitigate malaria. Cellular inhibitor of apoptosis (cIAP) proteins regulate cell survival and are co-opted by intracellular pathogens to support development. Here, we show that cIAP1 levels are upregulated during Plasmodium liver infection and that genetic or pharmacological targeting of cIAPs using clinical-stage antagonists preferentially kills infected hepatocytes and promotes immunity. Using gene-targeted mice, the mechanism was defined as TNF-TNFR1-mediated apoptosis via caspases 3 and 8 to clear parasites. This study reveals the importance of cIAPs to Plasmodium infection and demonstrates that host-directed antimalarial drugs can eliminate liver parasites and induce immunity while likely providing a high barrier to resistance in the parasite.


Subject(s)
Apoptosis , Hepatocytes/pathology , Liver/pathology , Liver/parasitology , Malaria/pathology , Malaria/parasitology , Administration, Oral , Animals , Apoptosis/drug effects , Biological Availability , Caspase 3/metabolism , Culicidae/parasitology , Dipeptides/administration & dosage , Dipeptides/pharmacology , Hepatocytes/drug effects , Immunity/drug effects , Indoles/administration & dosage , Indoles/pharmacology , Inhibitor of Apoptosis Proteins/antagonists & inhibitors , Inhibitor of Apoptosis Proteins/metabolism , Life Cycle Stages/drug effects , Malaria/immunology , Plasmodium/drug effects , Plasmodium/growth & development , Plasmodium/metabolism , Protozoan Proteins/metabolism , Sporozoites/drug effects , Sporozoites/physiology , Thiazoles/pharmacology , Tumor Necrosis Factor-alpha/metabolism
20.
Cell Host Microbe ; 27(4): 642-658.e12, 2020 04 08.
Article in English | MEDLINE | ID: mdl-32109369

ABSTRACT

Artemisin combination therapy (ACT) is the main treatment option for malaria, which is caused by the intracellular parasite Plasmodium. However, increased resistance to ACT highlights the importance of finding new drugs. Recently, the aspartic proteases Plasmepsin IX and X (PMIX and PMX) were identified as promising drug targets. In this study, we describe dual inhibitors of PMIX and PMX, including WM382, that block multiple stages of the Plasmodium life cycle. We demonstrate that PMX is a master modulator of merozoite invasion and direct maturation of proteins required for invasion, parasite development, and egress. Oral administration of WM382 cured mice of P. berghei and prevented blood infection from the liver. In addition, WM382 was efficacious against P. falciparum asexual infection in humanized mice and prevented transmission to mosquitoes. Selection of resistant P. falciparum in vitro was not achievable. Together, these show that dual PMIX and PMX inhibitors are promising candidates for malaria treatment and prevention.


Subject(s)
Antimalarials/pharmacology , Aspartic Acid Endopeptidases/drug effects , Malaria/drug therapy , Animals , Disease Transmission, Infectious/prevention & control , Life Cycle Stages/drug effects , Merozoites/drug effects , Mice , Mice, Transgenic , Plasmodium berghei/drug effects , Plasmodium falciparum/drug effects
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