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1.
PLoS Comput Biol ; 19(8): e1011090, 2023 08.
Artigo em Inglês | MEDLINE | ID: mdl-37549177

RESUMO

Complexome profiling allows large-scale, untargeted, and comprehensive characterization of protein complexes in a biological sample using a combined approach of separating intact protein complexes e.g., by native gel electrophoresis, followed by mass spectrometric analysis of the proteins in the resulting fractions. Over the last decade, its application has resulted in a large collection of complexome profiling datasets. While computational methods have been developed for the analysis of individual datasets, methods for large-scale comparative analysis of complexomes from multiple species are lacking. Here, we present Comparative Clustering (CompaCt), that performs fully automated integrative analysis of complexome profiling data from multiple species, enabling systematic characterization and comparison of complexomes. CompaCt implements a novel method for leveraging orthology in comparative analysis to allow systematic identification of conserved as well as taxon-specific elements of the analyzed complexomes. We applied this method to a collection of 53 complexome profiles spanning the major branches of the eukaryotes. We demonstrate the ability of CompaCt to robustly identify the composition of protein complexes, and show that integrated analysis of multiple datasets improves characterization of complexes from specific complexome profiles when compared to separate analyses. We identified novel candidate interactors and complexes in a number of species from previously analyzed datasets, like the emp24, the V-ATPase and mitochondrial ATP synthase complexes. Lastly, we demonstrate the utility of CompaCt for the automated large-scale characterization of the complexome of the mosquito Anopheles stephensi shedding light on the evolution of metazoan protein complexes. CompaCt is available from https://github.com/cmbi/compact-bio.


Assuntos
Eucariotos , Proteínas , Animais , Análise por Conglomerados , Células Eucarióticas/metabolismo , Espectrometria de Massas/métodos , Proteínas/metabolismo
2.
PLoS Pathog ; 17(12): e1010124, 2021 12.
Artigo em Inglês | MEDLINE | ID: mdl-34969059

RESUMO

The Apicomplexa phylum comprises thousands of distinct intracellular parasite species, including coccidians, haemosporidians, piroplasms, and cryptosporidia. These parasites are characterized by complex and divergent life cycles occupying a variety of host niches. Consequently, they exhibit distinct adaptations to the differences in nutritional availabilities, either relying on biosynthetic pathways or by salvaging metabolites from their host. Pantothenate (Pan, vitamin B5) is the precursor for the synthesis of an essential cofactor, coenzyme A (CoA), but among the apicomplexans, only the coccidian subgroup has the ability to synthesize Pan. While the pathway to synthesize CoA from Pan is largely conserved across all branches of life, there are differences in the redundancy of enzymes and possible alternative pathways to generate CoA from Pan. Impeding the scavenge of Pan and synthesis of Pan and CoA have been long recognized as potential targets for antimicrobial drug development, but in order to fully exploit these critical pathways, it is important to understand such differences. Recently, a potent class of pantothenamides (PanAms), Pan analogs, which target CoA-utilizing enzymes, has entered antimalarial preclinical development. The potential of PanAms to target multiple downstream pathways make them a promising compound class as broad antiparasitic drugs against other apicomplexans. In this review, we summarize the recent advances in understanding the Pan and CoA biosynthesis pathways, and the suitability of these pathways as drug targets in Apicomplexa, with a particular focus on the cyst-forming coccidian, Toxoplasma gondii, and the haemosporidian, Plasmodium falciparum.


Assuntos
Antiparasitários/farmacologia , Apicomplexa/metabolismo , Apicomplexa/parasitologia , Coenzima A/biossíntese , Ácido Pantotênico/biossíntese , Infecções por Protozoários , Animais , Humanos
3.
Cell Microbiol ; 22(2): e13123, 2020 02.
Artigo em Inglês | MEDLINE | ID: mdl-31652487

RESUMO

A hallmark of the biology of Plasmodium falciparum blood stage parasites is their extensive host cell remodelling, facilitated by parasite proteins that are exported into the erythrocyte. Although this area has received extensive attention, only a few exported parasite proteins have been analysed in detail, and much of this remodelling process remains unknown, particularly for gametocyte development. Recent advances to induce high rates of sexual commitment enable the production of large numbers of gametocytes. We used this approach to study the Plasmodium helical interspersed subtelomeric (PHIST) protein GEXP02, which is expressed during sexual development. We show by immunofluorescence that GEXP02 is exported to the gametocyte-infected host cell periphery. Co-immunoprecipitation revealed potential interactions between GEXP02 and components of the erythrocyte cytoskeleton as well as other exported parasite proteins. This indicates that GEXP02 targets the erythrocyte cytoskeleton and is likely involved in its remodelling. GEXP02 knock-out parasites show no obvious phenotype during gametocyte maturation, transmission through mosquitoes, and hepatocyte infection, suggesting auxiliary or redundant functions for this protein. In summary, we performed a detailed cellular and biochemical analysis of a sexual stage-specific exported parasite protein using a novel experimental approach that is broadly applicable to study the biology of P. falciparum gametocytes.


Assuntos
Membrana Eritrocítica/metabolismo , Células Germinativas/citologia , Malária Falciparum/parasitologia , Plasmodium falciparum/fisiologia , Proteínas de Protozoários/fisiologia , Interações Hospedeiro-Parasita , Humanos
4.
Mol Microbiol ; 101(1): 78-91, 2016 07.
Artigo em Inglês | MEDLINE | ID: mdl-26991313

RESUMO

Multidrug resistance (MDR) proteins belong to the B subfamily of the ATP Binding Cassette (ABC) transporters, which export a wide range of compounds including pharmaceuticals. In this study, we used reverse genetics to study the role of all seven Plasmodium MDR proteins during the life cycle of malaria parasites. Four P. berghei genes (encoding MDR1, 4, 6 and 7) were refractory to deletion, indicating a vital role during blood stage multiplication and validating them as potential targets for antimalarial drugs. Mutants lacking expression of MDR2, MDR3 and MDR5 were generated in both P. berghei and P. falciparum, indicating a dispensable role for blood stage development. Whereas P. berghei mutants lacking MDR3 and MDR5 had a reduced blood stage multiplication in vivo, blood stage growth of P. falciparum mutants in vitro was not significantly different. Oocyst maturation and sporozoite formation in Plasmodium mutants lacking MDR2 or MDR5 was reduced. Sporozoites of these P. berghei mutants were capable of infecting mice and life cycle completion, indicating the absence of vital roles during liver stage development. Our results demonstrate vital and dispensable roles of MDR proteins during blood stages and an important function in sporogony for MDR2 and MDR5 in both Plasmodium species.


Assuntos
Culicidae/parasitologia , Proteínas Associadas à Resistência a Múltiplos Medicamentos/metabolismo , Plasmodium berghei/efeitos dos fármacos , Plasmodium berghei/metabolismo , Plasmodium falciparum/efeitos dos fármacos , Plasmodium falciparum/metabolismo , Animais , Antimaláricos/farmacologia , Resistência a Múltiplos Medicamentos , Feminino , Estágios do Ciclo de Vida , Malária/parasitologia , Malária Falciparum/parasitologia , Masculino , Proteínas de Membrana Transportadoras/metabolismo , Camundongos , Camundongos Endogâmicos BALB C , Camundongos Endogâmicos C57BL , Proteínas Associadas à Resistência a Múltiplos Medicamentos/genética , Oócitos/metabolismo , Plasmodium berghei/genética , Plasmodium berghei/crescimento & desenvolvimento , Plasmodium falciparum/genética , Plasmodium falciparum/crescimento & desenvolvimento , Esporozoítos/metabolismo
5.
J Immunol ; 194(10): 4860-70, 2015 May 15.
Artigo em Inglês | MEDLINE | ID: mdl-25862814

RESUMO

Cerebral malaria is one of the most severe complications of malaria disease, attributed to a complicated series of immune reactions in the host. The syndrome is marked by inflammatory immune responses, margination of leukocytes, and parasitized erythrocytes in cerebral vessels leading to breakdown of the blood-brain barrier. We show that chemical attenuation of the parasite at the very early, clinically silent liver stage suppresses parasite development, delays the time until parasites establish blood-stage infection, and provokes an altered host immune response, modifying immunopathogenesis and protecting from cerebral disease. The early response is proinflammatory and cell mediated, with increased T cell activation in the liver and spleen, and greater numbers of effector T cells, cytokine-secreting T cells, and proliferating, proinflammatory cytokine-producing T cells. Dendritic cell numbers, T cell activation, and infiltration of CD8(+) T cells to the brain are decreased later in infection, possibly mediated by the anti-inflammatory cytokine IL-10. Strikingly, protection can be transferred to naive animals by adoptive transfer of lymphocytes from the spleen at very early times of infection. Our data suggest that a subpopulation belonging to CD8(+) T cells as early as day 2 postinfection is responsible for protection. These data indicate that liver stage-directed early immune responses can moderate the overall downstream host immune response and modulate severe malaria outcome.


Assuntos
Fígado/imunologia , Fígado/virologia , Malária/imunologia , Malária/patologia , Aminoquinolinas/farmacologia , Animais , Antivirais/farmacologia , Modelos Animais de Doenças , Progressão da Doença , Citometria de Fluxo , Imuno-Histoquímica , Camundongos , Camundongos Endogâmicos C57BL , Plasmodium berghei , Reação em Cadeia da Polimerase em Tempo Real
6.
Eukaryot Cell ; 14(6): 528-34, 2015 Jun.
Artigo em Inglês | MEDLINE | ID: mdl-25820521

RESUMO

Malaria pathology is linked to remodeling of red blood cells by eukaryotic Plasmodium parasites. Central to host cell refurbishment is the trafficking of parasite-encoded virulence factors through the Plasmodium translocon of exported proteins (PTEX). Much of our understanding of its function is based on experimental work with cultured Plasmodium falciparum, yet direct consequences of PTEX impairment during an infection remain poorly defined. Using the murine malaria model parasite Plasmodium berghei, it is shown here that efficient sequestration to the pulmonary, adipose, and brain tissue vasculature is dependent on the PTEX components thioredoxin 2 (TRX2) and PTEX88. While TRX2-deficient parasites remain virulent, PTEX88-deficient parasites no longer sequester in the brain, correlating with abolishment of cerebral complications in infected mice. However, an apparent trade-off for virulence attenuation was spleen enlargement, which correlates with a strongly reduced schizont-to-ring-stage transition. Strikingly, general protein export is unaffected in PTEX88-deficient mutants that mature normally in vitro. Thus, PTEX88 is pivotal for tissue sequestration in vivo, parasite virulence, and preventing exacerbation of spleen pathology, but these functions do not correlate with general protein export to the host erythrocyte. The presented data suggest that the protein export machinery of Plasmodium parasites and their underlying mechanistic features are considerably more complex than previously anticipated and indicate challenges for targeted intervention strategies.


Assuntos
Plasmodium berghei/patogenicidade , Proteínas de Protozoários/metabolismo , Tiorredoxinas/metabolismo , Animais , Encéfalo/parasitologia , Camundongos , Plasmodium berghei/crescimento & desenvolvimento , Transporte Proteico , Proteínas de Protozoários/genética , Baço/parasitologia , Tiorredoxinas/genética
7.
Mol Microbiol ; 91(2): 315-25, 2014 Jan.
Artigo em Inglês | MEDLINE | ID: mdl-24237419

RESUMO

Homeostasis of the trace element copper is essential to all eukaryotic life. Copper serves as a cofactor in metalloenzymes and catalyses electron transfer reactions as well as the generation of potentially toxic reactive oxygen species. Here, we describe the functional characterization of an evolutionarily highly conserved, predicted copper-transporting P-type ATPase (CuTP) in the murine malaria model parasite Plasmodium berghei. Live imaging of a parasite line expressing a fluorescently tagged CuTP demonstrated that CuTP is predominantly located in vesicular bodies of the parasite. A P. berghei loss-of-function mutant line was readily obtained and showed no apparent defect in in vivo blood stage growth. Parasite transmission through the mosquito vector was severely affected, but not entirely abolished. We show that male and female gametocytes are abundant in cutp(-) parasites, but activation of male microgametes and exflagellation were strongly impaired. This specific defect could be mimicked by addition of the copper chelator neocuproine to wild-type gametocytes. A cross-fertilization assay demonstrated that female fertility was also severely abrogated. In conclusion, we provide experimental genetic and pharmacological evidence that a healthy copper homeostasis is critical to malaria parasite fertility of both genders of gametocyte and, hence, to transmission to the mosquito vector.


Assuntos
Adenosina Trifosfatases/metabolismo , Proteínas de Transporte de Cátions/metabolismo , Cobre/metabolismo , Culicidae/parasitologia , Malária/parasitologia , Plasmodium berghei/enzimologia , Proteínas de Protozoários/metabolismo , Animais , ATPases Transportadoras de Cobre , Modelos Animais de Doenças , Feminino , Fertilidade , Malária/metabolismo , Masculino , Camundongos , Camundongos Endogâmicos C57BL , Mutação , Fenantrolinas/farmacologia , Plasmodium berghei/genética , Plasmodium berghei/crescimento & desenvolvimento , Plasmodium berghei/patogenicidade
8.
Cell Microbiol ; 16(5): 751-67, 2014 May.
Artigo em Inglês | MEDLINE | ID: mdl-24471657

RESUMO

Malaria parasites have two actin isoforms, ubiquitous actin1 and specialized actin2. Actin2 is essential for late male gametogenesis, prior to egress from the host erythrocyte. Here, we examined whether the two actins fulfil overlapping functions in Plasmodium berghei. Replacement of actin2 with actin1 resulted in partial complementation of the defects in male gametogenesis and, thus, viable ookinetes were formed, able to invade the midgut epithelium and develop into oocysts. However, these remained small and their DNA was undetectable at day 8 after infection. As a consequence sporogony did not occur, resulting in a complete block of parasite transmission. Furthermore, we show that expression of actin2 is tightly controlled in female stages. The actin2 transcript is translationally repressed in female gametocytes, but translated in female gametes. The protein persists until mature ookinetes; this expression is strictly dependent on the maternally derived expression. Genetic crosses revealed that actin2 functions at an early stage of ookinete formation and that parasites lacking actin2 are unable to undergo sporogony in the mosquito midgut. Our results provide insights into the specialized role of actin2 in Plasmodium development in the mosquito and suggest that the two actin isoforms have distinct biological functions.


Assuntos
Actinas/metabolismo , Plasmodium berghei/crescimento & desenvolvimento , Plasmodium berghei/genética , Esporos de Protozoários/crescimento & desenvolvimento , Esporos de Protozoários/genética , Actinas/genética , Animais , Cruzamentos Genéticos , Culicidae/parasitologia , Teste de Complementação Genética , Mucosa Intestinal/parasitologia , Plasmodium berghei/citologia , Esporos de Protozoários/citologia
9.
Nature ; 455(7214): 757-63, 2008 Oct 09.
Artigo em Inglês | MEDLINE | ID: mdl-18843361

RESUMO

The human malaria parasite Plasmodium vivax is responsible for 25-40% of the approximately 515 million annual cases of malaria worldwide. Although seldom fatal, the parasite elicits severe and incapacitating clinical symptoms and often causes relapses months after a primary infection has cleared. Despite its importance as a major human pathogen, P. vivax is little studied because it cannot be propagated continuously in the laboratory except in non-human primates. We sequenced the genome of P. vivax to shed light on its distinctive biological features, and as a means to drive development of new drugs and vaccines. Here we describe the synteny and isochore structure of P. vivax chromosomes, and show that the parasite resembles other malaria parasites in gene content and metabolic potential, but possesses novel gene families and potential alternative invasion pathways not recognized previously. Completion of the P. vivax genome provides the scientific community with a valuable resource that can be used to advance investigation into this neglected species.


Assuntos
Genoma de Protozoário/genética , Genômica , Malária Vivax/parasitologia , Plasmodium vivax/genética , Motivos de Aminoácidos , Animais , Artemisininas/metabolismo , Artemisininas/farmacologia , Atovaquona/metabolismo , Atovaquona/farmacologia , Núcleo Celular/genética , Cromossomos/genética , Sequência Conservada/genética , Eritrócitos/parasitologia , Evolução Molecular , Haplorrinos/parasitologia , Humanos , Isocoros/genética , Ligantes , Malária Vivax/metabolismo , Família Multigênica , Plasmodium vivax/efeitos dos fármacos , Plasmodium vivax/patogenicidade , Plasmodium vivax/fisiologia , Análise de Sequência de DNA , Especificidade da Espécie , Sintenia/genética
10.
bioRxiv ; 2024 May 13.
Artigo em Inglês | MEDLINE | ID: mdl-38352445

RESUMO

The malaria causing parasite, Plasmodium falciparum, replicates through a tightly orchestrated process termed schizogony, where approximately 32 daughter parasites are formed in a single infected red blood cell and thousands of daughter cells in mosquito or liver stages. One-per-cell organelles, such as the mitochondrion and apicoplast, need to be properly divided and segregated to ensure a complete set of organelles per daughter parasites. Although this is highly essential, details about the processes and mechanisms involved remain unknown. We developed a new reporter parasite line that allows visualization of the mitochondrion in blood and mosquito stages. Using high-resolution 3D-imaging, we found that the mitochondrion orients in a cartwheel structure, prior to stepwise, non-geometric division during the last stage of schizogony. Analysis of focused ion beam scanning electron microscopy (FIB-SEM) data confirmed these mitochondrial division stages. Furthermore, these data allowed us to elucidate apicoplast division steps, highlighted its close association with the mitochondrion, and showed putative roles of the centriolar plaques (CPs) in apicoplast segregation. These observations form the foundation for a new detailed mechanistic model of mitochondrial and apicoplast division and segregation during P. falciparum schizogony and pave the way for future studies into the proteins and protein complexes involved in organelle division and segregation.

11.
iScience ; 26(12): 108542, 2023 Dec 15.
Artigo em Inglês | MEDLINE | ID: mdl-38089575

RESUMO

Several hematologic diseases, including malaria, diabetes, and sickle cell anemia, result in a reduced red blood cell deformability. This deformability can be measured using a microfluidic device with channels of varying width. Nevertheless, it is challenging to algorithmically recognize large numbers of red blood cells and quantify their deformability from image data. Deep learning has become the method of choice to handle noisy and complex image data. However, it requires a significant amount of labeled data to train the neural networks. By creating images of cells and mimicking noise and plasticity in those images, we generate synthetic data to train a network to detect and segment red blood cells from video-recordings, without the need for manually annotated labels. Using this new method, we uncover significant differences between the deformability of RBCs infected with different strains of Plasmodium falciparum, providing clues to the variation in virulence of these strains.

12.
Mol Microbiol ; 81(6): 1511-25, 2011 Sep.
Artigo em Inglês | MEDLINE | ID: mdl-21848587

RESUMO

Malaria parasites undergo a population expansion inside the host liver before disease onset. Developmental arrest inside host hepatocytes elicits protective immune responses. Therefore, elucidation of the molecular mechanisms leading to mature hepatic merozoites, which initiate the pathogenic blood phase, also informs anti-malaria vaccine strategies. Using targeted gene deletion in the rodent model malaria parasite Plasmodium berghei, we show that a Plasmodium-specific Apicoplast protein plays an important role for Liver Merozoite formation (PALM). While the resulting knockout mutants develop normally for most of the life cycle, merozoite release into the blood stream and the ability to establish an infection are severely impaired. Presence of a signature blood-stage antigen, merozoite surface protein 1 and normal apicoplast morphology indicate that the inability to finalize merozoite segregation is a direct consequence of loss of PALM function. Experimental immunization of mice with as few as two doses of palm(-) sporozoites can elicit sterile protection up to 110 days after final immunization. Our data establish that a tailor-made arrest in the final steps of hepatic merozoite formation can induce strong protective immune responses and that malaria parasites employ a distinct apicoplast protein for efficient formation of pre-erythrocytic merozoites.


Assuntos
Técnicas de Inativação de Genes , Fígado/parasitologia , Merozoítos/crescimento & desenvolvimento , Plasmodium berghei/patogenicidade , Proteínas de Protozoários/metabolismo , Fatores de Virulência/metabolismo , Sequência de Aminoácidos , Animais , Modelos Animais de Doenças , Perfilação da Expressão Gênica , Malária/parasitologia , Malária/patologia , Vacinas Antimaláricas/imunologia , Camundongos , Camundongos Endogâmicos C57BL , Microscopia de Fluorescência , Dados de Sequência Molecular , Plasmodium berghei/genética , Plasmodium berghei/crescimento & desenvolvimento , Plasmodium berghei/imunologia , Proteínas de Protozoários/genética , Homologia de Sequência de Aminoácidos , Vacinas Atenuadas/imunologia , Virulência , Fatores de Virulência/genética
13.
Cell Microbiol ; 13(11): 1714-30, 2011 Nov.
Artigo em Inglês | MEDLINE | ID: mdl-21790945

RESUMO

Male gametogenesis occurs directly after uptake of malaria parasites by the mosquito vector and leads to the release of eight nucleated flagellar gametes. Here, we report that one of the two parasite actin isoforms, named actin II, is essential for this process. Disruption of actin II in Plasmodium berghei resulted in viable asexual blood stages, but male gametogenesis was specifically inhibited. Upon activation, male gametocyte DNA was replicated normally and axonemes assembled, but egress from the host cell was inhibited, and axoneme motility abolished. The major actin isoform, actin I, displayed dual localization to the cytoplasm and the nucleus in male gametocytes. After activation actin I was found to be restricted to the cytoplasm. In actII(-) mutant parasites, this re-localization was abolished and actin I remained in both cellular compartments. These findings reveal vital and pleiotropic functions for the actin II isoform in male gametogenesis of the malaria parasite.


Assuntos
Actinas/metabolismo , Flagelos/fisiologia , Plasmodium berghei/fisiologia , Actinas/genética , Sequência de Aminoácidos , Animais , Núcleo Celular/química , Análise por Conglomerados , Culicidae/parasitologia , Citoplasma/química , Técnicas de Inativação de Genes , Microscopia Eletrônica de Transmissão , Microscopia de Fluorescência , Dados de Sequência Molecular , Filogenia , Homologia de Sequência de Aminoácidos
14.
Nat Commun ; 13(1): 2158, 2022 04 20.
Artigo em Inglês | MEDLINE | ID: mdl-35444200

RESUMO

Drug resistance and a dire lack of transmission-blocking antimalarials hamper malaria elimination. Here, we present the pantothenamide MMV693183 as a first-in-class acetyl-CoA synthetase (AcAS) inhibitor to enter preclinical development. Our studies demonstrate attractive drug-like properties and in vivo efficacy in a humanized mouse model of Plasmodium falciparum infection. The compound shows single digit nanomolar in vitro activity against P. falciparum and P. vivax clinical isolates, and potently blocks P. falciparum transmission to Anopheles mosquitoes. Genetic and biochemical studies identify AcAS as the target of the MMV693183-derived antimetabolite, CoA-MMV693183. Pharmacokinetic-pharmacodynamic modelling predict that a single 30 mg oral dose is sufficient to cure a malaria infection in humans. Toxicology studies in rats indicate a > 30-fold safety margin in relation to the predicted human efficacious exposure. In conclusion, MMV693183 represents a promising candidate for further (pre)clinical development with a novel mode of action for treatment of malaria and blocking transmission.


Assuntos
Antimaláricos , Antagonistas do Ácido Fólico , Malária Falciparum , Malária Vivax , Malária , Animais , Antimaláricos/farmacologia , Antimaláricos/uso terapêutico , Malária/tratamento farmacológico , Malária Falciparum/tratamento farmacológico , Malária Vivax/tratamento farmacológico , Camundongos , Ácido Pantotênico/análogos & derivados , Plasmodium falciparum/genética , Ratos
15.
J Immunol ; 183(1): 677-86, 2009 Jul 01.
Artigo em Inglês | MEDLINE | ID: mdl-19535639

RESUMO

Maternal alloantibodies against the human platelet Ag (HPA)-1a allotype of the platelet beta(3) integrin GpIIb/IIIa can cause severe fetal or neonatal hemorrhage. Almost all anti-HPA-1a-immune mothers are homozygous for HPA-1b and carry HLA-DR52a (DRB3*0101). The single Pro(33) -->Leu substitution (HPA-1b-->HPA-1a) was previously predicted to create a binding motif for HLA-DR52a that can lead to alloimmunization. We have isolated six CD4(+) T cell clones from three such mothers, which all respond to intact HPA-1a(+), but not HPA-1b(+), platelets. We used them to define the "core" and "anchor" residues of this natural T cell epitope. Molecular modeling based on a recently published crystal structure can explain the preferential presentation of the Leu(33) (but not Pro(33) variant) by HLA-DR52a rather than the linked HLA-DR3 or the allelic DR52b. The modeling also predicts efficient anchoring at position 33 by several alternative hydrophobic alpha-amino acids; indeed, a recently identified variant with Val(33) is presented well to two clones, and is therefore potentially alloimmunogenic. Finally, these HPA-1a-specific T cell clones use a variety of T cell receptors, but all have a "Th1" (IFN-gamma-producing) profile and are suitable for testing selective immunotherapies that might be applicable in vivo.


Assuntos
Apresentação de Antígeno/imunologia , Antígenos de Plaquetas Humanas/imunologia , Epitopos de Linfócito T/imunologia , Antígenos HLA-DR/imunologia , Isoanticorpos/sangue , Mães , Células Th1/imunologia , Sequência de Aminoácidos , Antígenos de Plaquetas Humanas/metabolismo , Células Cultivadas , Células Clonais , Técnicas de Cocultura , Epitopos de Linfócito T/metabolismo , Feminino , Antígenos HLA-DR/metabolismo , Humanos , Integrina beta3 , Isoanticorpos/biossíntese , Dados de Sequência Molecular , Células Th1/metabolismo
16.
mBio ; 12(4): e0140921, 2021 08 31.
Artigo em Inglês | MEDLINE | ID: mdl-34425697

RESUMO

Apicomplexan parasites, such as Toxoplasma gondii and Plasmodium falciparum, are the cause of many important human and animal diseases. While T. gondii tachyzoites replicate through endodyogeny, during which two daughter cells are formed within the parental cell, P. falciparum replicates through schizogony, where up to 32 parasites are formed in a single infected red blood cell and even thousands of daughter cells during mosquito- or liver-stage development. These processes require a tightly orchestrated division and distribution over the daughter parasites of one-per-cell organelles such as the mitochondrion and apicoplast. Although proper organelle segregation is highly essential, the molecular mechanism and the key proteins involved remain largely unknown. In this review, we describe organelle dynamics during cell division in T. gondii and P. falciparum, summarize the current understanding of the molecular mechanisms underlying organelle fission in these parasites, and introduce candidate fission proteins.


Assuntos
Apicoplastos/metabolismo , Plasmodium falciparum/fisiologia , Toxoplasma/fisiologia , Animais , Apicoplastos/genética , Eritrócitos/parasitologia , Humanos , Mitocôndrias/genética , Mitocôndrias/metabolismo , Parasitos/metabolismo , Plasmodium falciparum/genética , Proteínas de Protozoários/genética , Toxoplasma/genética
17.
Nat Commun ; 12(1): 3820, 2021 06 21.
Artigo em Inglês | MEDLINE | ID: mdl-34155201

RESUMO

Our current understanding of mitochondrial functioning is largely restricted to traditional model organisms, which only represent a fraction of eukaryotic diversity. The unusual mitochondrion of malaria parasites is a validated drug target but remains poorly understood. Here, we apply complexome profiling to map the inventory of protein complexes across the pathogenic asexual blood stages and the transmissible gametocyte stages of Plasmodium falciparum. We identify remarkably divergent composition and clade-specific additions of all respiratory chain complexes. Furthermore, we show that respiratory chain complex components and linked metabolic pathways are up to 40-fold more prevalent in gametocytes, while glycolytic enzymes are substantially reduced. Underlining this functional switch, we find that cristae are exclusively present in gametocytes. Leveraging these divergent properties and stage dynamics for drug development presents an attractive opportunity to discover novel classes of antimalarials and increase our repertoire of gametocytocidal drugs.


Assuntos
Estágios do Ciclo de Vida , Mitocôndrias/metabolismo , Plasmodium falciparum/metabolismo , Complexo de Proteínas da Cadeia de Transporte de Elétrons/metabolismo , Complexo de Proteínas da Cadeia de Transporte de Elétrons/ultraestrutura , Evolução Molecular , Mitocôndrias/ultraestrutura , Proteínas Mitocondriais/metabolismo , Proteínas Mitocondriais/ultraestrutura , Complexos Multiproteicos/metabolismo , Complexos Multiproteicos/ultraestrutura , Fosforilação Oxidativa , Plasmodium falciparum/crescimento & desenvolvimento , Plasmodium falciparum/ultraestrutura , Proteínas de Protozoários/metabolismo , Proteínas de Protozoários/ultraestrutura , Especificidade da Espécie
18.
Nat Commun ; 12(1): 4806, 2021 08 10.
Artigo em Inglês | MEDLINE | ID: mdl-34376675

RESUMO

The malaria parasite Plasmodium falciparum replicates inside erythrocytes in the blood of infected humans. During each replication cycle, a small proportion of parasites commits to sexual development and differentiates into gametocytes, which are essential for parasite transmission via the mosquito vector. Detailed molecular investigation of gametocyte biology and transmission has been hampered by difficulties in generating large numbers of these highly specialised cells. Here, we engineer P. falciparum NF54 inducible gametocyte producer (iGP) lines for the routine mass production of synchronous gametocytes via conditional overexpression of the sexual commitment factor GDV1. NF54/iGP lines consistently achieve sexual commitment rates of 75% and produce viable gametocytes that are transmissible by mosquitoes. We also demonstrate that further genetic engineering of NF54/iGP parasites is a valuable tool for the targeted exploration of gametocyte biology. In summary, we believe the iGP approach developed here will greatly expedite basic and applied malaria transmission stage research.


Assuntos
Sistemas CRISPR-Cas , Malária Falciparum/sangue , Plasmodium falciparum/genética , Esporos de Protozoários/genética , Animais , Anopheles/parasitologia , Células Cultivadas , Eritrócitos/parasitologia , Hepatócitos/citologia , Hepatócitos/parasitologia , Interações Hospedeiro-Parasita , Humanos , Malária Falciparum/parasitologia , Malária Falciparum/transmissão , Microscopia de Fluorescência , Mosquitos Vetores/parasitologia , Plasmodium falciparum/fisiologia , Esporos de Protozoários/fisiologia , Esporozoítos/genética , Esporozoítos/fisiologia
19.
Biochim Biophys Acta Bioenerg ; 1862(7): 148411, 2021 07 01.
Artigo em Inglês | MEDLINE | ID: mdl-33722514

RESUMO

Complexome profiling is an emerging 'omics' approach that systematically interrogates the composition of protein complexes (the complexome) of a sample, by combining biochemical separation of native protein complexes with mass-spectrometry based quantitation proteomics. The resulting fractionation profiles hold comprehensive information on the abundance and composition of the complexome, and have a high potential for reuse by experimental and computational researchers. However, the lack of a central resource that provides access to these data, reported with adequate descriptions and an analysis tool, has limited their reuse. Therefore, we established the ComplexomE profiling DAta Resource (CEDAR, www3.cmbi.umcn.nl/cedar/), an openly accessible database for depositing and exploring mass spectrometry data from complexome profiling studies. Compatibility and reusability of the data is ensured by a standardized data and reporting format containing the "minimum information required for a complexome profiling experiment" (MIACE). The data can be accessed through a user-friendly web interface, as well as programmatically using the REST API portal. Additionally, all complexome profiles available on CEDAR can be inspected directly on the website with the profile viewer tool that allows the detection of correlated profiles and inference of potential complexes. In conclusion, CEDAR is a unique, growing and invaluable resource for the study of protein complex composition and dynamics across biological systems.


Assuntos
Bases de Dados Factuais , Complexos Multiproteicos/metabolismo , Proteínas/metabolismo , Proteoma/metabolismo , Software , Humanos , Proteoma/análise
20.
mSphere ; 6(5): e0061421, 2021 10 27.
Artigo em Inglês | MEDLINE | ID: mdl-34494883

RESUMO

Plasmodium species have a single mitochondrion that is essential for their survival and has been successfully targeted by antimalarial drugs. Most mitochondrial proteins are imported into this organelle, and our picture of the Plasmodium mitochondrial proteome remains incomplete. Many data sources contain information about mitochondrial localization, including proteome and gene expression profiles, orthology to mitochondrial proteins from other species, coevolutionary relationships, and amino acid sequences, each with different coverage and reliability. To obtain a comprehensive, prioritized list of Plasmodium falciparum mitochondrial proteins, we rigorously analyzed and integrated eight data sets using Bayesian statistics into a predictive score per protein for mitochondrial localization. At a corrected false discovery rate of 25%, we identified 445 proteins with a sensitivity of 87% and a specificity of 97%. They include proteins that have not been identified as mitochondrial in other eukaryotes but have characterized homologs in bacteria that are involved in metabolism or translation. Mitochondrial localization of seven Plasmodium berghei orthologs was confirmed by epitope labeling and colocalization with a mitochondrial marker protein. One of these belongs to a newly identified apicomplexan mitochondrial protein family that in P. falciparum has four members. With the experimentally validated mitochondrial proteins and the complete ranked P. falciparum proteome, which we have named PlasmoMitoCarta, we present a resource to study unique proteins of Plasmodium mitochondria. IMPORTANCE The unique biology and medical relevance of the mitochondrion of the malaria parasite Plasmodium falciparum have made it the subject of many studies. However, we actually do not have a comprehensive assessment of which proteins reside in this organelle. Many omics data are available that are predictive of mitochondrial localization, such as proteomics data and expression data. Individual data sets are, however, rarely complete and can provide conflicting evidence. We integrated a wide variety of available omics data in a manner that exploits the relative strengths of the data sets. Our analysis gave a predictive score for the mitochondrial localization to each nuclear encoded P. falciparum protein and identified 445 likely mitochondrial proteins. We experimentally validated the mitochondrial localization of seven of the new mitochondrial proteins, confirming the quality of the complete list. These include proteins that have not been observed mitochondria before, adding unique mitochondrial functions to P. falciparum.


Assuntos
Mitocôndrias/genética , Proteínas Mitocondriais/genética , Plasmodium falciparum/crescimento & desenvolvimento , Plasmodium falciparum/genética , Proteínas de Protozoários/genética , Animais , Teorema de Bayes , Feminino , Masculino , Camundongos , Dinâmica Mitocondrial , Proteínas Mitocondriais/metabolismo , Proteômica , Proteínas de Protozoários/metabolismo , Reprodutibilidade dos Testes
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