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1.
mSphere ; 8(4): e0023323, 2023 08 24.
Artículo en Inglés | MEDLINE | ID: mdl-37366629

RESUMEN

Nonsense-mediated decay (NMD) is a conserved mRNA quality control process that eliminates transcripts bearing a premature termination codon. In addition to its role in removing erroneous transcripts, NMD is involved in post-transcriptional regulation of gene expression via programmed intron retention in metazoans. The apicomplexan parasite Plasmodium falciparum shows relatively high levels of intron retention, but it is unclear whether these variant transcripts are functional targets of NMD. In this study, we use CRISPR-Cas9 to disrupt and epitope-tag the P. falciparum orthologs of two core NMD components: PfUPF1 (PF3D7_1005500) and PfUPF2 (PF3D7_0925800). We localize both PfUPF1 and PfUPF2 to puncta within the parasite cytoplasm and show that these proteins interact with each other and other mRNA-binding proteins. Using RNA-seq, we find that although these core NMD orthologs are expressed and interact in P. falciparum, they are not required for degradation of nonsense transcripts. Furthermore, our work suggests that the majority of intron retention in P. falciparum has no functional role and that NMD is not required for parasite growth ex vivo. IMPORTANCE In many organisms, the process of destroying nonsense transcripts is dependent on a small set of highly conserved proteins. We show that in the malaria parasite, these proteins do not impact the abundance of nonsense transcripts. Furthermore, we demonstrate efficient CRISPR-Cas9 editing of the malaria parasite using commercial Cas9 nuclease and synthetic guide RNA, streamlining genomic modifications in this genetically intractable organism.


Asunto(s)
Malaria , Plasmodium falciparum , Humanos , Plasmodium falciparum/genética , Plasmodium falciparum/metabolismo , Degradación de ARNm Mediada por Codón sin Sentido , Regulación de la Expresión Génica , ARN Mensajero/genética
2.
Mol Biochem Parasitol ; 250: 111487, 2022 07.
Artículo en Inglés | MEDLINE | ID: mdl-35605814

RESUMEN

The Malaria in Melbourne 2021 conference was held online in October. This conference aims to provide a platform for students and early career researchers to share their research and develop new collaborative networks. The program covered a broad range of topics including antimalarial drug development, epidemiology, immunology, molecular and cellular biology, and other emerging technologies. This article summarises recent advances in Plasmodium research presented at the Malaria in Melbourne 2021 conference.


Asunto(s)
Antimaláricos , Malaria , Plasmodium , Antimaláricos/uso terapéutico , Humanos , Malaria/epidemiología , Plasmodium/genética
3.
Mol Syst Biol ; 17(4): e10023, 2021 04.
Artículo en Inglés | MEDLINE | ID: mdl-33821563

RESUMEN

The malaria parasite, Plasmodium falciparum, proliferates rapidly in human erythrocytes by actively scavenging multiple carbon sources and essential nutrients from its host cell. However, a global overview of the metabolic capacity of intraerythrocytic stages is missing. Using multiplex 13 C-labelling coupled with untargeted mass spectrometry and unsupervised isotopologue grouping, we have generated a draft metabolome of P. falciparum and its host erythrocyte consisting of 911 and 577 metabolites, respectively, corresponding to 41% of metabolites and over 70% of the metabolic reaction predicted from the parasite genome. An additional 89 metabolites and 92 reactions were identified that were not predicted from genomic reconstructions, with the largest group being associated with metabolite damage-repair systems. Validation of the draft metabolome revealed four previously uncharacterised enzymes which impact isoprenoid biosynthesis, lipid homeostasis and mitochondrial metabolism and are necessary for parasite development and proliferation. This study defines the metabolic fate of multiple carbon sources in P. falciparum, and highlights the activity of metabolite repair pathways in these rapidly growing parasite stages, opening new avenues for drug discovery.


Asunto(s)
Marcaje Isotópico , Redes y Vías Metabólicas , Metabolómica , Parásitos/metabolismo , Plasmodium falciparum/metabolismo , Animales , Transporte de Electrón , Eritrocitos/parasitología , Glicina Hidroximetiltransferasa/metabolismo , Hemoglobinas/metabolismo , Humanos , Análisis de Flujos Metabólicos , Metaboloma , Mitocondrias/metabolismo , Parásitos/crecimiento & desarrollo , Fosfoproteínas Fosfatasas/metabolismo , Plasmodium falciparum/crecimiento & desarrollo , Proteínas Protozoarias/metabolismo , Serina/metabolismo , Terpenos/metabolismo , Trofozoítos/metabolismo
4.
mBio ; 12(2)2021 04 27.
Artículo en Inglés | MEDLINE | ID: mdl-33906926

RESUMEN

Posttranscriptional regulation of gene expression is central to the development and replication of the malaria parasite, Plasmodium falciparum, within its human host. The timely coordination of RNA maturation, homeostasis, and protein synthesis relies on the recruitment of specific RNA-binding proteins to their cognate target mRNAs. One possible mediator of such mRNA-protein interactions is the N6-methylation of adenosines (m6A), a prevalent mRNA modification of parasite mRNA transcripts. Here, we used RNA protein pulldowns, RNA modification mass spectrometry, and quantitative proteomics to identify two P. falciparum YTH domain proteins (PfYTH.1 and PfYTH.2) as m6A-binding proteins during parasite blood-stage development. Interaction proteomics revealed that PfYTH.2 associates with the translation machinery, including multiple subunits of the eukaryotic initiation factor 3 (eIF3) and poly(A)-binding proteins. Furthermore, knock sideways of PfYTH.2 coupled with ribosome profiling showed that this m6A reader is essential for parasite survival and is a repressor of mRNA translation. Together, these data reveal an important missing link in the m6A-mediated mechanism controlling mRNA translation in a unicellular eukaryotic pathogen.IMPORTANCE Infection with the unicellular eukaryotic pathogen Plasmodium falciparum causes malaria, a mosquito-borne disease affecting more than 200 million and killing 400,000 people each year. Underlying the asexual replication within human red blood cells is a tight regulatory network of gene expression and protein synthesis. A widespread mechanism of posttranscriptional gene regulation is the chemical modification of adenosines (m6A), through which the fate of individual mRNA transcripts can be changed. Here, we report on the protein machinery that "reads" this modification and "translates" it into a functional outcome. We provide mechanistic insight into one m6A reader protein and show that it interacts with the translational machinery and acts as a repressor of mRNA translation. This m6A-mediated phenotype has not been described in other eukaryotes as yet, and the functional characterization of the m6A interactome will ultimately open new avenues to combat the disease.


Asunto(s)
Regulación de la Expresión Génica , Plasmodium falciparum/genética , Proteínas Protozoarias/genética , Proteínas Protozoarias/metabolismo , Adenosina/metabolismo , Eritrocitos/parasitología , Humanos , Malaria Falciparum/parasitología , Metilación , Plasmodium falciparum/metabolismo , Proteómica , Procesamiento Postranscripcional del ARN , ARN Mensajero/metabolismo
5.
mBio ; 11(2)2020 03 17.
Artículo en Inglés | MEDLINE | ID: mdl-32184257

RESUMEN

The malaria parasite Plasmodium falciparum traffics the virulence protein P. falciparum erythrocyte membrane protein 1 (PfEMP1) to the surface of infected red blood cells (RBCs) via membranous organelles, known as the Maurer's clefts. We developed a method for efficient enrichment of Maurer's clefts and profiled the protein composition of this trafficking organelle. We identified 13 previously uncharacterized or poorly characterized Maurer's cleft proteins. We generated transfectants expressing green fluorescent protein (GFP) fusions of 7 proteins and confirmed their Maurer's cleft location. Using co-immunoprecipitation and mass spectrometry, we generated an interaction map of proteins at the Maurer's clefts. We identified two key clusters that may function in the loading and unloading of PfEMP1 into and out of the Maurer's clefts. We focus on a putative PfEMP1 loading complex that includes the protein GEXP07/CX3CL1-binding protein 2 (CBP2). Disruption of GEXP07 causes Maurer's cleft fragmentation, aberrant knobs, ablation of PfEMP1 surface expression, and loss of the PfEMP1-mediated adhesion. ΔGEXP07 parasites have a growth advantage compared to wild-type parasites, and the infected RBCs are more deformable and more osmotically fragile.IMPORTANCE The trafficking of the virulence antigen PfEMP1 and its presentation at the knob structures at the surface of parasite-infected RBCs are central to severe adhesion-related pathologies such as cerebral and placental malaria. This work adds to our understanding of how PfEMP1 is trafficked to the RBC membrane by defining the protein-protein interaction networks that function at the Maurer's clefts controlling PfEMP1 loading and unloading. We characterize a protein needed for virulence protein trafficking and provide new insights into the mechanisms for host cell remodeling, parasite survival within the host, and virulence.


Asunto(s)
Membrana Eritrocítica/metabolismo , Eritrocitos/citología , Interacciones Huésped-Parásitos , Plasmodium falciparum/metabolismo , Proteínas Protozoarias/metabolismo , Proteínas Portadoras/metabolismo , Línea Celular , Membrana Eritrocítica/parasitología , Eritrocitos/parasitología , Humanos , Proteínas de la Membrana , Plasmodium falciparum/genética , Plasmodium falciparum/patogenicidad , Mapas de Interacción de Proteínas , Transporte de Proteínas , Proteínas Protozoarias/genética
6.
Genome Biol ; 20(1): 151, 2019 08 01.
Artículo en Inglés | MEDLINE | ID: mdl-31370870

RESUMEN

BACKGROUND: In multicellular organisms, alternative splicing is central to tissue differentiation and identity. Unicellular protists lack multicellular tissue but differentiate into variable cell types during their life cycles. The role of alternative splicing in transitions between cell types and establishing cellular identity is currently unknown in any unicellular organism. RESULTS: To test whether alternative splicing in unicellular protists plays a role in cellular differentiation, we conduct RNA-seq to compare splicing in female and male sexual stages to asexual intraerythrocytic stages in the rodent malaria parasite Plasmodium berghei. We find extensive changes in alternative splicing between stages and a role for alternative splicing in sexual differentiation. Previously, general gametocyte differentiation was shown to be modulated by specific transcription factors. Here, we show that alternative splicing establishes a subsequent layer of regulation, controlling genes relating to consequent sex-specific differentiation of gametocytes. CONCLUSIONS: We demonstrate that alternative splicing is reprogrammed during cellular differentiation of a unicellular protist. Disruption of an alternative splicing factor, PbSR-MG, perturbs sex-specific alternative splicing and decreases the ability of the parasites to differentiate into male gametes and oocysts, thereby reducing transmission between vertebrate and insect hosts. Our results reveal alternative splicing as an integral, stage-specific phenomenon in these protists and as a regulator of cellular differentiation that arose early in eukaryotic evolution.


Asunto(s)
Empalme Alternativo , Plasmodium berghei/genética , Animales , Células Germinativas/metabolismo , Estadios del Ciclo de Vida/genética , Ratones , Plasmodium berghei/crecimiento & desarrollo , Plasmodium berghei/metabolismo , Transcripción Genética
7.
PLoS Biol ; 17(7): e3000376, 2019 07.
Artículo en Inglés | MEDLINE | ID: mdl-31318858

RESUMEN

Apicomplexan parasites possess a plastid organelle called the apicoplast. Inhibitors that selectively target apicoplast housekeeping functions, including DNA replication and protein translation, are lethal for the parasite, and several (doxycycline, clindamycin, and azithromycin) are in clinical use as antimalarials. A major limitation of such drugs is that treated parasites only arrest one intraerythrocytic development cycle (approximately 48 hours) after treatment commences, a phenotype known as the 'delayed death' effect. The molecular basis of delayed death is a long-standing mystery in parasitology, and establishing the mechanism would aid rational clinical implementation of apicoplast-targeted drugs. Parasites undergoing delayed death transmit defective apicoplasts to their daughter cells and cannot produce the sole, blood-stage essential metabolic product of the apicoplast: the isoprenoid precursor isopentenyl-pyrophosphate. How the isoprenoid precursor depletion kills the parasite remains unknown. We investigated the requirements for the range of isoprenoids in the human malaria parasite Plasmodium falciparum and characterised the molecular and morphological phenotype of parasites experiencing delayed death. Metabolomic profiling reveals disruption of digestive vacuole function in the absence of apicoplast derived isoprenoids. Three-dimensional electron microscopy reveals digestive vacuole fragmentation and the accumulation of cytostomal invaginations, characteristics common in digestive vacuole disruption. We show that digestive vacuole disruption results from a defect in the trafficking of vesicles to the digestive vacuole. The loss of prenylation of vesicular trafficking proteins abrogates their membrane attachment and function and prevents the parasite from feeding. Our data show that the proximate cause of delayed death is an interruption of protein prenylation and consequent cellular trafficking defects.


Asunto(s)
Apicoplastos/metabolismo , Espacio Intracelular/metabolismo , Plasmodium falciparum/metabolismo , Proteínas Protozoarias/metabolismo , Animales , Antimaláricos/farmacología , Muerte Celular/efectos de los fármacos , Hemiterpenos/metabolismo , Hemiterpenos/farmacología , Humanos , Espacio Intracelular/efectos de los fármacos , Espacio Intracelular/parasitología , Malaria Falciparum/parasitología , Metabolómica/métodos , Compuestos Organofosforados/metabolismo , Compuestos Organofosforados/farmacología , Plasmodium falciparum/efectos de los fármacos , Plasmodium falciparum/fisiología , Prenilación de Proteína/efectos de los fármacos , Transporte de Proteínas/efectos de los fármacos , Vacuolas/efectos de los fármacos , Vacuolas/metabolismo , Vacuolas/parasitología
8.
Traffic ; 19(8): 605-623, 2018 08.
Artículo en Inglés | MEDLINE | ID: mdl-29696751

RESUMEN

Plasmodium falciparum, which causes malaria, extensively remodels its human host cells, particularly erythrocytes. Remodelling is essential for parasite survival by helping to avoid host immunity and assisting in the uptake of plasma nutrients to fuel rapid growth. Host cell renovation is carried out by hundreds of parasite effector proteins that are exported into the erythrocyte across an enveloping parasitophorous vacuole membrane (PVM). The Plasmodium translocon for exported (PTEX) proteins is thought to span the PVM and provide a channel that unfolds and extrudes proteins across the PVM into the erythrocyte. We show that exported reporter proteins containing mouse dihydrofolate reductase domains that inducibly resist unfolding become trapped at the parasite surface partly colocalizing with PTEX. When cargo is trapped, loop-like extensions appear at the PVM containing both trapped cargo and PTEX protein EXP2, but not additional components HSP101 and PTEX150. Following removal of the block-inducing compound, export of reporter proteins only partly recovers possibly because much of the trapped cargo is spatially segregated in the loop regions away from PTEX. This suggests that parasites have the means to isolate unfoldable cargo proteins from PTEX-containing export zones to avert disruption of protein export that would reduce parasite growth.


Asunto(s)
Malaria Falciparum/parasitología , Parásitos/metabolismo , Plasmodium falciparum/metabolismo , Transporte de Proteínas/fisiología , Proteínas Protozoarias/metabolismo , Animales , Eritrocitos/parasitología , Humanos , Malaria Falciparum/sangre , Ratones , Vacuolas/parasitología
9.
PLoS Pathog ; 13(10): e1006659, 2017 Oct.
Artículo en Inglés | MEDLINE | ID: mdl-28985225

RESUMEN

Transmission of malaria parasites relies on the formation of a specialized blood form called the gametocyte. Gametocytes of the human pathogen, Plasmodium falciparum, adopt a crescent shape. Their dramatic morphogenesis is driven by the assembly of a network of microtubules and an underpinning inner membrane complex (IMC). Using super-resolution optical and electron microscopies we define the ultrastructure of the IMC at different stages of gametocyte development. We characterize two new proteins of the gametocyte IMC, called PhIL1 and PIP1. Genetic disruption of PhIL1 or PIP1 ablates elongation and prevents formation of transmission-ready mature gametocytes. The maturation defect is accompanied by failure to form an enveloping IMC and a marked swelling of the digestive vacuole, suggesting PhIL1 and PIP1 are required for correct membrane trafficking. Using immunoprecipitation and mass spectrometry we reveal that PhIL1 interacts with known and new components of the gametocyte IMC.


Asunto(s)
Microtúbulos/metabolismo , Plasmodium falciparum/crecimiento & desarrollo , Desarrollo Sexual/fisiología , Animales , Microscopía Electrónica/métodos , Microtúbulos/ultraestructura , Plasmodium falciparum/ultraestructura , Transporte de Proteínas
10.
Nat Commun ; 8: 16044, 2017 07 10.
Artículo en Inglés | MEDLINE | ID: mdl-28691708

RESUMEN

The malaria parasite, Plasmodium falciparum, displays the P. falciparum erythrocyte membrane protein 1 (PfEMP1) on the surface of infected red blood cells (RBCs). We here examine the physical organization of PfEMP1 trafficking intermediates in infected RBCs and determine interacting partners using an epitope-tagged minimal construct (PfEMP1B). We show that parasitophorous vacuole (PV)-located PfEMP1B interacts with components of the PTEX (Plasmodium Translocon of EXported proteins) as well as a novel protein complex, EPIC (Exported Protein-Interacting Complex). Within the RBC cytoplasm PfEMP1B interacts with components of the Maurer's clefts and the RBC chaperonin complex. We define the EPIC interactome and, using an inducible knockdown approach, show that depletion of one of its components, the parasitophorous vacuolar protein-1 (PV1), results in altered knob morphology, reduced cell rigidity and decreased binding to CD36. Accordingly, we show that deletion of the Plasmodium berghei homologue of PV1 is associated with attenuation of parasite virulence in vivo.


Asunto(s)
Interacciones Huésped-Patógeno , Plasmodium falciparum/metabolismo , Proteínas Protozoarias/metabolismo , Animales , Proteínas Portadoras/metabolismo , Adhesión Celular , Femenino , Técnicas de Silenciamiento del Gen , Proteínas de la Membrana/metabolismo , Ratones Endogámicos C57BL , Plasmodium berghei/genética , Plasmodium falciparum/patogenicidad , Transporte de Proteínas
11.
PLoS One ; 11(2): e0149296, 2016.
Artículo en Inglés | MEDLINE | ID: mdl-26886275

RESUMEN

Pathogenesis of malaria infections is linked to remodeling of erythrocytes, a process dependent on the trafficking of hundreds of parasite-derived proteins into the host erythrocyte. Recent studies have demonstrated that the Plasmodium translocon of exported proteins (PTEX) serves as the central gateway for trafficking of these proteins, as inducible knockdown of the core PTEX constituents blocked the trafficking of all classes of cargo into the erythrocyte. However, the role of the auxiliary component PTEX88 in protein export remains less clear. Here we have used inducible knockdown technologies in P. falciparum and P. berghei to assess the role of PTEX88 in parasite development and protein export, which reveal that the in vivo growth of PTEX88-deficient parasites is hindered. Interestingly, we were unable to link this observation to a general defect in export of a variety of known parasite proteins, suggesting that PTEX88 functions in a different fashion to the core PTEX components. Strikingly, PTEX88-deficient P. berghei were incapable of causing cerebral malaria despite a robust pro-inflammatory response from the host. These parasites also exhibited a reduced ability to sequester in peripheral tissues and were removed more readily from the circulation by the spleen. In keeping with these findings, PTEX88-deficient P. falciparum-infected erythrocytes displayed reduced binding to the endothelial cell receptor, CD36. This suggests that PTEX88 likely plays a specific direct or indirect role in mediating parasite sequestration rather than making a universal contribution to the trafficking of all exported proteins.


Asunto(s)
Técnicas de Silenciamiento del Gen , Parásitos/patogenicidad , Plasmodium berghei/patogenicidad , Plasmodium falciparum/patogenicidad , Proteínas Protozoarias/metabolismo , Animales , Antígenos CD36/metabolismo , Adhesión Celular , Femenino , Glucosamina/metabolismo , Inmunidad , Inflamación/inmunología , Inflamación/patología , Ratones Endogámicos C57BL , Parásitos/crecimiento & desarrollo , Unión Proteica , Transporte de Proteínas , Virulencia
12.
Mol Microbiol ; 98(6): 1101-14, 2015 Dec.
Artículo en Inglés | MEDLINE | ID: mdl-26304012

RESUMEN

The malaria parasite Plasmodium falciparum dramatically remodels its host red blood cell to enhance its own survival, using a secretory membrane system that it establishes outside its own cell. Cisternal organelles, called Maurer's clefts, act as a staging point for the forward trafficking of virulence proteins to the red blood cell (RBC) membrane. The Ring-EXported Protein-1 (REX1) is a Maurer's cleft resident protein. We show that inducible knockdown of REX1 causes stacking of Maurer's cleft cisternae without disrupting the organization of the knob-associated histidine-rich protein at the RBC membrane. Genetic dissection of the REX1 sequence shows that loss of a repeat sequence domain results in the formation of giant Maurer's cleft stacks. The stacked Maurer's clefts are decorated with tether-like structures and retain the ability to dock onto the RBC membrane skeleton. The REX1 mutant parasites show deficient export of the major virulence protein, PfEMP1, to the red blood cell surface and markedly reduced binding to the endothelial cell receptor, CD36. REX1 is predicted to form a largely α-helical structure, with a repetitive charge pattern in the repeat sequence domain, providing potential insights into the role of REX1 in Maurer's cleft sculpting.


Asunto(s)
Plasmodium falciparum/metabolismo , Proteínas Protozoarias/metabolismo , Factores de Virulencia/química , Factores de Virulencia/metabolismo , Antígenos CD36/metabolismo , ADN Protozoario , Membrana Eritrocítica/metabolismo , Eritrocitos/parasitología , Técnicas de Silenciamiento del Gen , Humanos , Mutación , Plasmodium falciparum/genética , Estructura Terciaria de Proteína , Transporte de Proteínas , Proteínas/química , Proteínas Protozoarias/química , Proteínas Protozoarias/genética , Secuencias Repetitivas de Ácidos Nucleicos , Factores de Virulencia/genética
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