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1.
PLoS Pathog ; 18(11): e1010922, 2022 11.
Artigo em Inglês | MEDLINE | ID: mdl-36318587

RESUMO

Phosphoinositides are important second messengers that regulate key cellular processes in eukaryotes. While it is known that a single phosphoinositol-3 kinase (PI3K) catalyses the formation of 3'-phosphorylated phosphoinositides (PIPs) in apicomplexan parasites like Plasmodium and Toxoplasma, how its activity and PI3P formation is regulated has remained unknown. Present studies involving a unique Vps15 like protein (TgVPS15) in Toxoplasma gondii provides insight into the regulation of phosphatidyl-3-phosphate (PI3P) generation and unravels a novel pathway that regulates parasite development. Detailed investigations suggested that TgVPS15 regulates PI3P formation in Toxoplasma gondii, which is important for the inheritance of the apicoplast-a plastid like organelle present in most apicomplexans and parasite replication. Interestingly, TgVPS15 also regulates autophagy in T. gondii under nutrient-limiting conditions as it promotes autophagosome formation. For both these processes, TgVPS15 uses PI3P-binding protein TgATG18 and regulates trafficking and conjugation of TgATG8 to the apicoplast and autophagosomes, which is important for biogenesis of these organelles. TgVPS15 has a protein kinase domain but lacks several key residues conserved in conventional protein kinases. Interestingly, two critical residues in its active site are important for PI3P formation and parasitic functions of this kinase. Collectively, these studies unravel a signalling cascade involving TgVPS15, a novel effector of PI3-kinase in T. gondii and possibly other Apicomplexa, that regulate critical processes like apicoplast biogenesis and autophagy.


Assuntos
Apicoplastos , Parasitos , Toxoplasma , Animais , Apicoplastos/fisiologia , Toxoplasma/metabolismo , Autofagia , Autofagossomos/metabolismo , Parasitos/metabolismo , Fosfatidilinositóis/metabolismo , Proteínas de Protozoários/metabolismo
2.
mBio ; 12(4): e0138021, 2021 08 31.
Artigo em Inglês | MEDLINE | ID: mdl-34340555

RESUMO

Vesicular trafficking is a fundamental cellular process involved in material transport in eukaryotes, but the diversity of the intracellular compartments has prevented researchers from obtaining a clear understanding of the specific functions of vesicular trafficking factors, including SNAREs, tethers, and Rab GTPases, in Apicomplexa. In this study, we analyzed the localization of SNAREs and investigated their roles in vesicular trafficking in Toxoplasma gondii. Our results revealed the specific localizations of SNAREs in the endoplasmic reticulum (ER) (T. gondii Stx18 [TgStx18] and TgStx19), Golgi stacks (TgGS27), and endosome-like compartment (TgStx10 and TgStx12). The conditional ablation of ER- and Golgi-residing SNAREs caused severe defects in the secretory system. Most importantly, we found an R-SNARE (TgVAMP4-2) that is targeted to the apicoplast; to our knowledge, this work provides the first information showing a SNARE protein on endosymbiotic organelles and functioning in vesicular trafficking in eukaryotes. Conditional knockout of TgVAMP4-2 blocked the entrance of TgCPN60, TgACP, TgATrx2, and TgATrx1 into the apicoplast and interfered with the targeting of TgAPT1 and TgFtsH1 to the outermost membrane of the apicoplast. Together, our findings revealed the functions of SNAREs in the secretory system and the transport of nucleus-encoded proteins to an endosymbiotic organelle in a model organism of Apicomplexa. IMPORTANCE SNAREs are essential for the fusion of the transport vesicles and target membranes and, thus, provide perfect targets for obtaining a global view of the vesicle transport system. In this study, we report that a novel Qc-SNARE (TgStx19) instead of Use1 is located at the ER and acts as a partner of TgStx18 in T. gondii. TgGS27 and the tethering complex TRAPP III are conserved and critical for the biogenesis of the Golgi complex in T. gondii. A novel R-SNARE, TgVAMP4-2, is found on the outermost membrane of the apicoplast. The transport of NEAT proteins into the secondary endosymbiotic organelle depends on its function. To our knowledge, this work provides the first mention of a SNARE located on endosymbiotic organelles that functions in vesicular trafficking in eukaryotes.


Assuntos
Apicoplastos/fisiologia , Proteínas de Protozoários/metabolismo , Proteínas SNARE/metabolismo , Toxoplasma/metabolismo , Retículo Endoplasmático/metabolismo , Complexo de Golgi/metabolismo , Biogênese de Organelas , Transporte Proteico , Proteínas de Protozoários/genética , Proteínas SNARE/genética , Toxoplasma/genética
3.
Parasitol Int ; 81: 102270, 2021 Apr.
Artigo em Inglês | MEDLINE | ID: mdl-33321224

RESUMO

The apicoplast is a non-photosynthetic relict plastid of Apicomplexa that evolved from a secondary symbiotic system. During its evolution, most of the genes derived from its alga ancestor were lost. Only genes involved in several valuable metabolic pathways, such as the synthesis of isoprenoid precursors, heme, and fatty acids, have been transferred to the host genome and retained to help these parasites adapt to a complex life cycle and various living environments. The biological function of an apicoplast is essential for most apicomplexan parasites. Considering their potential as drug targets, the metabolic functions of this symbiotic organelle have been intensively investigated through computational and biological means. Moreover, we know that not only organellar metabolic functions are linked with other organelles, but also their biogenesis processes have developed and evolved to tailor their biological functions and proper inheritance. Several distinct features have been found in the biogenesis process of apicoplasts. For example, the apicoplast borrows a dynamin-related protein (DrpA) from its host to implement organelle division. The autophagy system has also been repurposed for linking the apicoplast and centrosome during replication and the division process. However, many vital questions remain to be answered about how these parasites maintain and properly inherit this symbiotic organelle. Here we review our current knowledge about its biogenesis process and discuss several critical questions remaining to be answered in this field.


Assuntos
Apicomplexa/fisiologia , Apicoplastos/fisiologia , Biogênese de Organelas
4.
Elife ; 92020 08 20.
Artigo em Inglês | MEDLINE | ID: mdl-32815516

RESUMO

The apicoplast of Plasmodium falciparum parasites is believed to rely on the import of three-carbon phosphate compounds for use in organelle anabolic pathways, in addition to the generation of energy and reducing power within the organelle. We generated a series of genetic deletions in an apicoplast metabolic bypass line to determine which genes involved in apicoplast carbon metabolism are required for blood-stage parasite survival and organelle maintenance. We found that pyruvate kinase II (PyrKII) is essential for organelle maintenance, but that production of pyruvate by PyrKII is not responsible for this phenomenon. Enzymatic characterization of PyrKII revealed activity against all NDPs and dNDPs tested, suggesting that it may be capable of generating a broad range of nucleotide triphosphates. Conditional mislocalization of PyrKII resulted in decreased transcript levels within the apicoplast that preceded organelle disruption, suggesting that PyrKII is required for organelle maintenance due to its role in nucleotide triphosphate generation.


Assuntos
Apicoplastos/fisiologia , Plasmodium falciparum/fisiologia , Proteínas de Protozoários/metabolismo , Piruvato Quinase/metabolismo , Plasmodium falciparum/genética
5.
PLoS Pathog ; 16(2): e1008316, 2020 02.
Artigo em Inglês | MEDLINE | ID: mdl-32059044

RESUMO

Malaria parasites rely on a plastid organelle for survival during the blood stages of infection. However, the entire organelle is dispensable as long as the isoprenoid precursor, isopentenyl pyrophosphate (IPP), is supplemented in the culture medium. We engineered parasites to produce isoprenoid precursors from a mevalonate-dependent pathway, creating a parasite line that replicates normally after the loss of the apicoplast organelle. We show that carbon-labeled mevalonate is specifically incorporated into isoprenoid products, opening new avenues for researching this essential class of metabolites in malaria parasites. We also show that essential apicoplast proteins, such as the enzyme target of the drug fosmidomycin, can be deleted in this mevalonate bypass parasite line, providing a new method to determine the roles of other important apicoplast-resident proteins. Several antibacterial drugs kill malaria parasites by targeting basic processes, such as transcription, in the organelle. We used metabolomic and transcriptomic methods to characterize parasite metabolism after azithromycin treatment triggered loss of the apicoplast and found that parasite metabolism and the production of apicoplast proteins is largely unaltered. These results provide insight into the effects of apicoplast-disrupting drugs, several of which have been used to treat malaria infections in humans. Overall, the mevalonate bypass system provides a way to probe essential aspects of apicoplast biology and study the effects of drugs that target apicoplast processes.


Assuntos
Hemiterpenos/metabolismo , Ácido Mevalônico/metabolismo , Compostos Organofosforados/metabolismo , Plasmodium falciparum/metabolismo , Animais , Antibacterianos/farmacologia , Apicoplastos/genética , Apicoplastos/fisiologia , Azitromicina/metabolismo , Fosfomicina/análogos & derivados , Fosfomicina/farmacologia , Humanos , Malária/metabolismo , Malária/parasitologia , Parasitos/metabolismo , Plastídeos/parasitologia , Proteínas de Protozoários/metabolismo
6.
Methods Mol Biol ; 1829: 37-54, 2018.
Artigo em Inglês | MEDLINE | ID: mdl-29987713

RESUMO

Chloroplasts are essential organelles that are responsible for photosynthesis in a wide range of organisms that have colonized all biotopes on Earth such as plants and unicellular algae. Interestingly, a secondary endosymbiotic event of a red algal ancestor gave rise to a group of organisms that have adopted an obligate parasitic lifestyle named Apicomplexa parasites. Apicomplexa parasites are some of the most widespread and poorly controlled pathogens in the world. These infectious agents are responsible for major human diseases such as toxoplasmosis, caused by Toxoplasma gondii, and malaria caused by Plasmodium spp. Most of these parasites harbor this relict plastid named the apicoplast, which is essential for parasite survival. The apicoplast has lost photosynthetic capacities but are metabolically similar to plant and algal chloroplasts. The apicoplast is considered a novel and important drug target against Apicomplexa parasites. This chapter focuses on the apicoplast of apicomplexa parasites, its maintenance, and its metabolic pathways.


Assuntos
Apicoplastos/fisiologia , Plastídeos/genética , Plastídeos/metabolismo , Simbiose , Antiparasitários/farmacologia , Apicoplastos/efeitos dos fármacos , Desenvolvimento de Medicamentos , Metabolismo Energético , Genoma , Malária , Redes e Vias Metabólicas , Fotossíntese , Transporte Proteico
7.
PLoS Pathog ; 14(2): e1006836, 2018 02.
Artigo em Inglês | MEDLINE | ID: mdl-29470517

RESUMO

Apicomplexan parasites are global killers, being the causative agents of diseases like toxoplasmosis and malaria. These parasites are known to be hypersensitive to redox imbalance, yet little is understood about the cellular roles of their various redox regulators. The apicoplast, an essential plastid organelle, is a verified apicomplexan drug target. Nuclear-encoded apicoplast proteins traffic through the ER and multiple apicoplast sub-compartments to their place of function. We propose that thioredoxins contribute to the control of protein trafficking and of protein function within these apicoplast compartments. We studied the role of two Toxoplasma gondii apicoplast thioredoxins (TgATrx), both essential for parasite survival. By describing the cellular phenotypes of the conditional depletion of either of these redox regulated enzymes we show that each of them contributes to a different apicoplast biogenesis pathway. We provide evidence for TgATrx1's involvement in ER to apicoplast trafficking and TgATrx2 in the control of apicoplast gene expression components. Substrate pull-down further recognizes gene expression factors that interact with TgATrx2. We use genetic complementation to demonstrate that the function of both TgATrxs is dependent on their disulphide exchange activity. Finally, TgATrx2 is divergent from human thioredoxins. We demonstrate its activity in vitro thus providing scope for drug screening. Our study represents the first functional characterization of thioredoxins in Toxoplasma, highlights the importance of redox regulation of apicoplast functions and provides new tools to study redox biology in these parasites.


Assuntos
Apicoplastos/fisiologia , Regulação da Expressão Gênica no Desenvolvimento , Biogênese de Organelas , Tiorredoxinas/metabolismo , Toxoplasma/fisiologia , Sequência de Aminoácidos , Biomarcadores/metabolismo , Sequência Conservada , Evolução Molecular , Técnicas de Silenciamento de Genes , Proteínas Luminescentes/química , Proteínas Luminescentes/genética , Proteínas Luminescentes/metabolismo , Microscopia de Fluorescência , Mutação , Filogenia , Isoformas de Proteínas/química , Isoformas de Proteínas/genética , Isoformas de Proteínas/metabolismo , Multimerização Proteica , Transporte Proteico , Proteínas Recombinantes de Fusão/química , Proteínas Recombinantes de Fusão/metabolismo , Alinhamento de Sequência , Homologia de Sequência de Aminoácidos , Tiorredoxinas/química , Tiorredoxinas/genética , Toxoplasma/citologia , Toxoplasma/crescimento & desenvolvimento
8.
Microbes Infect ; 20(9-10): 477-483, 2018.
Artigo em Inglês | MEDLINE | ID: mdl-29287981

RESUMO

The apicoplast, a relic plastid found in most Apicomplexan parasites, is a notable drug target. Certain antibiotics elicit a delayed death phenotype by targeting this organelle. Here, we review apicoplast-targeting drugs and their targets, particularly those that cause delayed death, and highlight its potential uses in malaria vaccine development.


Assuntos
Antimaláricos/farmacologia , Apicoplastos/efeitos dos fármacos , Apicoplastos/fisiologia , Vacinas Antimaláricas/imunologia , Malária/parasitologia , Animais , Antimaláricos/uso terapêutico , Vias Biossintéticas/efeitos dos fármacos , Humanos , Malária/tratamento farmacológico , Malária/prevenção & controle , Vacinas Antimaláricas/administração & dosagem , Plasmodium/citologia , Plasmodium/efeitos dos fármacos , Plasmodium/imunologia , Transporte Proteico/efeitos dos fármacos , Proteínas de Protozoários/metabolismo
9.
Int J Parasitol ; 47(2-3): 137-144, 2017 02.
Artigo em Inglês | MEDLINE | ID: mdl-27773518

RESUMO

Parasites such as Plasmodium and Toxoplasma possess a vestigial plastid homologous to the chloroplasts of algae and plants. The plastid (known as the apicoplast; for apicomplexan plastid) is non-photosynthetic and very much reduced, but has clear endosymbiotic ancestry including a circular genome that encodes RNAs and proteins and a suite of bacterial biosynthetic pathways. Here we review the initial discovery of the apicoplast, and recount the major new insights into apicoplast origin, biogenesis and function. We conclude by examining how the apicoplast can be removed from malaria parasites in vitro, ultimately completing its reduction by chemical supplementation.


Assuntos
Apicoplastos , Plasmodium/ultraestrutura , Animais , Apicoplastos/fisiologia , Evolução Biológica , Humanos , Plasmodium/fisiologia , Simbiose
10.
mBio ; 6(6): e01446-15, 2015 Oct 27.
Artigo em Inglês | MEDLINE | ID: mdl-26507233

RESUMO

UNLABELLED: Autophagy is a catabolic process widely conserved among eukaryotes that permits the rapid degradation of unwanted proteins and organelles through the lysosomal pathway. This mechanism involves the formation of a double-membrane structure called the autophagosome that sequesters cellular components to be degraded. To orchestrate this process, yeasts and animals rely on a conserved set of autophagy-related proteins (ATGs). Key among these factors is ATG8, a cytoplasmic protein that is recruited to nascent autophagosomal membranes upon the induction of autophagy. Toxoplasma gondii is a potentially harmful human pathogen in which only a subset of ATGs appears to be present. Although this eukaryotic parasite seems able to generate autophagosomes upon stresses such as nutrient starvation, the full functionality and biological relevance of a canonical autophagy pathway are as yet unclear. Intriguingly, in T. gondii, ATG8 localizes to the apicoplast under normal intracellular growth conditions. The apicoplast is a nonphotosynthetic plastid enclosed by four membranes resulting from a secondary endosymbiosis. Using superresolution microscopy and biochemical techniques, we show that TgATG8 localizes to the outermost membrane of this organelle. We investigated the unusual function of TgATG8 at the apicoplast by generating a conditional knockdown mutant. Depletion of TgATG8 led to rapid loss of the organelle and subsequent intracellular replication defects, indicating that the protein is essential for maintaining apicoplast homeostasis and thus for survival of the tachyzoite stage. More precisely, loss of TgATG8 led to abnormal segregation of the apicoplast into the progeny because of a loss of physical interactions of the organelle with the centrosomes. IMPORTANCE: By definition, autophagy is a catabolic process that leads to the digestion and recycling of eukaryotic cellular components. The molecular machinery of autophagy was identified mainly in model organisms such as yeasts but remains poorly characterized in phylogenetically distant apicomplexan parasites. We have uncovered an unusual function for autophagy-related protein ATG8 in Toxoplasma gondii: TgATG8 is crucial for normal replication of the parasite inside its host cell. Seemingly unrelated to the catabolic autophagy process, TgATG8 associates with the outer membrane of the nonphotosynthetic plastid harbored by the parasite called the apicoplast, and there it plays an important role in the centrosome-driven inheritance of the organelle during cell division. This not only reveals an unexpected function for an autophagy-related protein but also sheds new light on the division process of an organelle that is vital to a group of important human and animal pathogens.


Assuntos
Apicoplastos/genética , Proteínas de Protozoários/fisiologia , Toxoplasma/genética , Toxoplasma/metabolismo , Apicoplastos/fisiologia , Autofagia , Divisão Celular , Centrossomo/fisiologia , Replicação do DNA , Humanos , Estágios do Ciclo de Vida , Proteínas de Protozoários/genética , Toxoplasma/crescimento & desenvolvimento , Toxoplasma/ultraestrutura
12.
Proc Natl Acad Sci U S A ; 112(33): 10200-7, 2015 Aug 18.
Artigo em Inglês | MEDLINE | ID: mdl-25717057

RESUMO

Apicomplexans are a major lineage of parasites, including causative agents of malaria and toxoplasmosis. How such highly adapted parasites evolved from free-living ancestors is poorly understood, particularly because they contain nonphotosynthetic plastids with which they have a complex metabolic dependency. Here, we examine the origin of apicomplexan parasitism by resolving the evolutionary distribution of several key characteristics in their closest free-living relatives, photosynthetic chromerids and predatory colpodellids. Using environmental sequence data, we describe the diversity of these apicomplexan-related lineages and select five species that represent this diversity for transcriptome sequencing. Phylogenomic analysis recovered a monophyletic lineage of chromerids and colpodellids as the sister group to apicomplexans, and a complex distribution of retention versus loss for photosynthesis, plastid genomes, and plastid organelles. Reconstructing the evolution of all plastid and cytosolic metabolic pathways related to apicomplexan plastid function revealed an ancient dependency on plastid isoprenoid biosynthesis, predating the divergence of apicomplexan and dinoflagellates. Similarly, plastid genome retention is strongly linked to the retention of two genes in the plastid genome, sufB and clpC, altogether suggesting a relatively simple model for plastid retention and loss. Lastly, we examine the broader distribution of a suite of molecular characteristics previously linked to the origins of apicomplexan parasitism and find that virtually all are present in their free-living relatives. The emergence of parasitism may not be driven by acquisition of novel components, but rather by loss and modification of the existing, conserved traits.


Assuntos
Apicomplexa/fisiologia , Apicoplastos/fisiologia , Parasitos/fisiologia , Plastídeos/fisiologia , Animais , Apicomplexa/genética , Apicoplastos/genética , Sequência de Bases , Teorema de Bayes , Linhagem da Célula , Biologia Computacional , Citosol/metabolismo , DNA Ribossômico/genética , Genes Bacterianos , Genoma , Funções Verossimilhança , Redes e Vias Metabólicas , Dados de Sequência Molecular , Parasitos/genética , Fotossíntese , Filogenia , Plastídeos/genética
13.
PLoS One ; 9(11): e113220, 2014.
Artigo em Inglês | MEDLINE | ID: mdl-25426852

RESUMO

Conventional autophagy is a lysosome-dependent degradation process that has crucial homeostatic and regulatory functions in eukaryotic organisms. As malaria parasites must dispose a number of self and host cellular contents, we investigated if autophagy in malaria parasites is similar to the conventional autophagy. Genome wide analysis revealed a partial autophagy repertoire in Plasmodium, as homologs for only 15 of the 33 yeast autophagy proteins could be identified, including the autophagy marker Atg8. To gain insights into autophagy in malaria parasites, we investigated Plasmodium falciparum Atg8 (PfAtg8) employing techniques and conditions that are routinely used to study autophagy. Atg8 was similarly expressed and showed punctate localization throughout the parasite in both asexual and sexual stages; it was exclusively found in the pellet fraction as an integral membrane protein, which is in contrast to the yeast or mammalian Atg8 that is distributed among cytosolic and membrane fractions, and suggests for a constitutive autophagy. Starvation, the best known autophagy inducer, decreased PfAtg8 level by almost 3-fold compared to the normally growing parasites. Neither the Atg8-associated puncta nor the Atg8 expression level was significantly altered by treatment of parasites with routinely used autophagy inhibitors (cysteine (E64) and aspartic (pepstatin) protease inhibitors, the kinase inhibitor 3-methyladenine, and the lysosomotropic agent chloroquine), indicating an atypical feature of autophagy. Furthermore, prolonged inhibition of the major food vacuole protease activity by E64 and pepstatin did not cause accumulation of the Atg8-associated puncta in the food vacuole, suggesting that autophagy is primarily not meant for degradative function in malaria parasites. Atg8 showed partial colocalization with the apicoplast; doxycycline treatment, which disrupts apicoplast, did not affect Atg8 localization, suggesting a role, but not exclusive, in apicoplast biogenesis. Collectively, our results reveal several atypical features of autophagy in malaria parasites, which may be largely associated with non-degradative processes.


Assuntos
Apicoplastos/fisiologia , Autofagia/genética , Genoma de Protozoário , Proteínas dos Microfilamentos/metabolismo , Plasmodium falciparum/metabolismo , Proteínas de Protozoários/metabolismo , Proteínas de Saccharomyces cerevisiae/metabolismo , Adenina/análogos & derivados , Adenina/farmacologia , Sequência de Aminoácidos , Antimaláricos/farmacologia , Apicoplastos/efeitos dos fármacos , Autofagia/efeitos dos fármacos , Família da Proteína 8 Relacionada à Autofagia , Cloroquina/farmacologia , Doxiciclina/farmacologia , Eritrócitos/efeitos dos fármacos , Eritrócitos/parasitologia , Regulação da Expressão Gênica , Humanos , Leucina/análogos & derivados , Leucina/farmacologia , Estágios do Ciclo de Vida/efeitos dos fármacos , Estágios do Ciclo de Vida/genética , Proteínas dos Microfilamentos/genética , Dados de Sequência Molecular , Pepstatinas/farmacologia , Plasmodium falciparum/efeitos dos fármacos , Plasmodium falciparum/genética , Plasmodium falciparum/crescimento & desenvolvimento , Inibidores de Proteases/farmacologia , Proteínas de Protozoários/genética , Saccharomyces cerevisiae/genética , Saccharomyces cerevisiae/metabolismo , Proteínas de Saccharomyces cerevisiae/genética , Alinhamento de Sequência , Homologia de Sequência de Aminoácidos
14.
Curr Biol ; 24(7): R262-3, 2014 Mar 31.
Artigo em Inglês | MEDLINE | ID: mdl-24698369
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