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1.
J Cell Sci ; 134(20)2021 10 15.
Artículo en Inglés | MEDLINE | ID: mdl-34523684

RESUMEN

The voltage-dependent anion channel (VDAC) is a ubiquitous channel in the outer membrane of the mitochondrion with multiple roles in protein, metabolite and small molecule transport. In mammalian cells, VDAC protein, as part of a larger complex including the inositol triphosphate receptor, has been shown to have a role in mediating contacts between the mitochondria and endoplasmic reticulum (ER). We identify VDAC of the pathogenic apicomplexan Toxoplasma gondii and demonstrate its importance for parasite growth. We show that VDAC is involved in protein import and metabolite transfer to mitochondria. Further, depletion of VDAC resulted in significant morphological changes in the mitochondrion and ER, suggesting a role in mediating contacts between these organelles in T. gondii. This article has an associated First Person interview with the first author of the paper.


Asunto(s)
Toxoplasma , Animales , Retículo Endoplásmico/genética , Retículo Endoplásmico/metabolismo , Humanos , Mitocondrias/metabolismo , Transporte de Proteínas , Toxoplasma/genética , Toxoplasma/metabolismo , Canales Aniónicos Dependientes del Voltaje/genética , Canales Aniónicos Dependientes del Voltaje/metabolismo
2.
Mol Microbiol ; 115(5): 916-929, 2021 05.
Artículo en Inglés | MEDLINE | ID: mdl-33278047

RESUMEN

Toxoplasma and other apicomplexan parasites undergo a unique form of cellular locomotion referred to as "gliding motility." Gliding motility is crucial for parasite survival as it powers tissue dissemination, host cell invasion and egress. Distinct environmental cues lead to activation of gliding motility and have become a prominent focus of recent investigation. Progress has been made toward understanding what environmental cues are sensed and how these signals are transduced in order to regulate the machinery and cellular events powering gliding motility. In this review, we will discuss new findings and integrate these into our current understanding to propose a model of how environmental sensing is achieved to regulate gliding motility in Toxoplasma. Collectively, these findings also have implications for the understanding of gliding motility across Apicomplexa more broadly.


Asunto(s)
Toxoplasma/citología , Toxoplasma/metabolismo , Toxoplasmosis/parasitología , Animales , Movimiento Celular , Ecosistema , Humanos , Proteínas Protozoarias/genética , Proteínas Protozoarias/metabolismo , Toxoplasma/genética
3.
PLoS Biol ; 16(9): e2005642, 2018 09.
Artículo en Inglés | MEDLINE | ID: mdl-30208022

RESUMEN

The phylum Apicomplexa comprises a group of obligate intracellular parasites that alternate between intracellular replicating stages and actively motile extracellular forms that move through tissue. Parasite cytosolic Ca2+ signalling activates motility, but how this is switched off after invasion is complete to allow for replication to begin is not understood. Here, we show that the cyclic adenosine monophosphate (cAMP)-dependent protein kinase A catalytic subunit 1 (PKAc1) of Toxoplasma is responsible for suppression of Ca2+ signalling upon host cell invasion. We demonstrate that PKAc1 is sequestered to the parasite periphery by dual acylation of PKA regulatory subunit 1 (PKAr1). Upon genetic depletion of PKAc1 we show that newly invaded parasites exit host cells shortly thereafter, in a perforin-like protein 1 (PLP-1)-dependent fashion. Furthermore, we demonstrate that loss of PKAc1 prevents rapid down-regulation of cytosolic [Ca2+] levels shortly after invasion. We also provide evidence that loss of PKAc1 sensitises parasites to cyclic GMP (cGMP)-induced Ca2+ signalling, thus demonstrating a functional link between cAMP and these other signalling modalities. Together, this work provides a new paradigm in understanding how Toxoplasma and related apicomplexan parasites regulate infectivity.


Asunto(s)
Señalización del Calcio , Proteínas Quinasas Dependientes de AMP Cíclico/metabolismo , Toxoplasma/enzimología , Acilación , Animales , Calcio/metabolismo , AMP Cíclico/metabolismo , Citosol/metabolismo , Fibroblastos/parasitología , Interacciones Huésped-Parásitos , Humanos , Estadios del Ciclo de Vida , Ratones , Parásitos/enzimología , Parásitos/crecimiento & desarrollo , Subunidades de Proteína/metabolismo , Proteínas Protozoarias , Transducción de Señal , Toxoplasma/crecimiento & desarrollo
4.
J Biol Chem ; 294(22): 8959-8972, 2019 05 31.
Artículo en Inglés | MEDLINE | ID: mdl-30992368

RESUMEN

Protozoan parasites of the phylum Apicomplexa actively move through tissue to initiate and perpetuate infection. The regulation of parasite motility relies on cyclic nucleotide-dependent kinases, but how these kinases are activated remains unknown. Here, using an array of biochemical and cell biology approaches, we show that the apicomplexan parasite Toxoplasma gondii expresses a large guanylate cyclase (TgGC) protein, which contains several upstream ATPase transporter-like domains. We show that TgGC has a dynamic localization, being concentrated at the apical tip in extracellular parasites, which then relocates to a more cytosolic distribution during intracellular replication. Conditional TgGC knockdown revealed that this protein is essential for acute-stage tachyzoite growth, as TgGC-deficient parasites were defective in motility, host cell attachment, invasion, and subsequent host cell egress. We show that TgGC is critical for a rapid rise in cytosolic [Ca2+] and for secretion of microneme organelles upon stimulation with a cGMP agonist, but these deficiencies can be bypassed by direct activation of signaling by a Ca2+ ionophore. Furthermore, we found that TgGC is required for transducing changes in extracellular pH and [K+] to activate cytosolic [Ca2+] flux. Together, the results of our work implicate TgGC as a putative signal transducer that activates Ca2+ signaling and motility in Toxoplasma.


Asunto(s)
Adenosina Trifosfatasas/metabolismo , Señalización del Calcio , Guanilato Ciclasa/metabolismo , Proteínas Protozoarias/metabolismo , Toxoplasma/metabolismo , Adenosina Trifosfatasas/genética , Calcio/metabolismo , Ionóforos de Calcio/farmacología , Señalización del Calcio/efectos de los fármacos , GMP Cíclico/metabolismo , Citosol/metabolismo , Guanilato Ciclasa/antagonistas & inhibidores , Guanilato Ciclasa/genética , Concentración de Iones de Hidrógeno , Oligonucleótidos Antisentido/metabolismo , Potasio/metabolismo , Proteínas Protozoarias/antagonistas & inhibidores , Proteínas Protozoarias/genética , Pirazoles/farmacología , Pirimidinonas/farmacología , Toxoplasma/crecimiento & desarrollo
5.
Life Sci Alliance ; 6(6)2023 06.
Artículo en Inglés | MEDLINE | ID: mdl-36958824

RESUMEN

The phylum Apicomplexa contains several parasitic species of medical and agricultural importance. The ubiquitination machinery remains, for the most part, uncharacterised in apicomplexan parasites, despite the important roles that it plays in eukaryotic biology. Bioinformatic analysis of the ubiquitination machinery in apicomplexan parasites revealed an expanded ovarian tumour domain-containing (OTU) deubiquitinase (DUB) family in Toxoplasma, potentially reflecting functional importance in apicomplexan parasites. This study presents comprehensive characterisation of Toxoplasma OTU DUBs. AlphaFold-guided structural analysis not only confirmed functional orthologues found across eukaryotes, but also identified apicomplexan-specific enzymes, subsequently enabling discovery of a cryptic OTU DUB in Plasmodium species. Comprehensive biochemical characterisation of 11 Toxoplasma OTU DUBs revealed activity against ubiquitin- and NEDD8-based substrates and revealed ubiquitin linkage preferences for Lys6-, Lys11-, Lys48-, and Lys63-linked chain types. We show that accessory domains in Toxoplasma OTU DUBs impose linkage preferences, and in case of apicomplexan-specific TgOTU9, we discover a cryptic ubiquitin-binding domain that is essential for TgOTU9 activity. Using the auxin-inducible degron (AID) to generate knockdown parasite lines, TgOTUD6B was found to be important for Toxoplasma growth.


Asunto(s)
Plasmodium , Toxoplasma , Toxoplasma/genética , Toxoplasma/metabolismo , Ubiquitina/genética , Ubiquitina/metabolismo , Ubiquitinación , Enzimas Desubicuitinizantes/genética , Enzimas Desubicuitinizantes/metabolismo
6.
mBio ; 10(5)2019 10 08.
Artículo en Inglés | MEDLINE | ID: mdl-31594816

RESUMEN

Understanding the mechanisms behind host cell invasion by Plasmodium falciparum remains a major hurdle to developing antimalarial therapeutics that target the asexual cycle and the symptomatic stage of malaria. Host cell entry is enabled by a multitude of precisely timed and tightly regulated receptor-ligand interactions. Cyclic nucleotide signaling has been implicated in regulating parasite invasion, and an important downstream effector of the cAMP-signaling pathway is protein kinase A (PKA), a cAMP-dependent protein kinase. There is increasing evidence that P. falciparum PKA (PfPKA) is responsible for phosphorylation of the cytoplasmic domain of P. falciparum apical membrane antigen 1 (PfAMA1) at Ser610, a cAMP-dependent event that is crucial for successful parasite invasion. In the present study, CRISPR-Cas9 and conditional gene deletion (dimerizable cre) technologies were implemented to generate a P. falciparum parasite line in which expression of the catalytic subunit of PfPKA (PfPKAc) is under conditional control, demonstrating highly efficient dimerizable Cre recombinase (DiCre)-mediated gene excision and complete knockdown of protein expression. Parasites lacking PfPKAc show severely reduced growth after one intraerythrocytic growth cycle and are deficient in host cell invasion, as highlighted by live-imaging experiments. Furthermore, PfPKAc-deficient parasites are unable to phosphorylate PfAMA1 at Ser610. This work not only identifies an essential role for PfPKAc in the P. falciparum asexual life cycle but also confirms that PfPKAc is the kinase responsible for phosphorylating PfAMA1 Ser610.IMPORTANCE Malaria continues to present a major global health burden, particularly in low-resource countries. Plasmodium falciparum, the parasite responsible for the most severe form of malaria, causes disease through rapid and repeated rounds of invasion and replication within red blood cells. Invasion into red blood cells is essential for P. falciparum survival, and the molecular events mediating this process have gained much attention as potential therapeutic targets. With no effective vaccine available, and with the emergence of resistance to antimalarials, there is an urgent need for the development of new therapeutics. Our research has used genetic techniques to provide evidence of an essential protein kinase involved in P. falciparum invasion. Our work adds to the current understanding of parasite signaling processes required for invasion, highlighting PKA as a potential drug target to inhibit invasion for the treatment of malaria.


Asunto(s)
Proteínas Quinasas Dependientes de AMP Cíclico/metabolismo , Endocitosis , Eritrocitos/parasitología , Plasmodium falciparum/crecimiento & desarrollo , Proteínas Protozoarias/metabolismo , Antígenos de Protozoos/metabolismo , Dominio Catalítico , Proteínas Quinasas Dependientes de AMP Cíclico/genética , Humanos , Proteínas de la Membrana/metabolismo , Fosforilación , Procesamiento Proteico-Postraduccional
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