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1.
Cell Chem Biol ; 2024 Aug 10.
Artículo en Inglés | MEDLINE | ID: mdl-39137783

RESUMEN

Malaria, caused by Plasmodium falciparum, remains a significant health burden. One major barrier for developing antimalarial drugs is the ability of the parasite to rapidly generate resistance. We previously demonstrated that salinipostin A (SalA), a natural product, potently kills parasites by inhibiting multiple lipid metabolizing serine hydrolases, a mechanism that results in a low propensity for resistance. Given the difficulty of employing natural products as therapeutic agents, we synthesized a small library of lipidic mixed alkyl/aryl phosphonates as bioisosteres of SalA. Two constitutional isomers exhibited divergent antiparasitic potencies that enabled the identification of therapeutically relevant targets. The active compound kills parasites through a mechanism that is distinct from both SalA and the pan-lipase inhibitor orlistat and shows synergistic killing with orlistat. Our compound induces only weak resistance, attributable to mutations in a single protein involved in multidrug resistance. These data suggest that mixed alkyl/aryl phosphonates are promising, synthetically tractable antimalarials.

2.
Biochim Biophys Acta Gen Subj ; 1868(9): 130665, 2024 Sep.
Artículo en Inglés | MEDLINE | ID: mdl-38969256

RESUMEN

BACKGROUND: The malaria parasite Plasmodium falciparum replicates within red blood cells, then ruptures the cell in a process called egress in order to continue its life cycle. Egress is regulated by a proteolytic cascade involving an essential parasite subtilisin-like serine protease called SUB1. Maturation of SUB1 initiates in the parasite endoplasmic reticulum with autocatalytic cleavage of an N-terminal prodomain (p31), which initially remains non-covalently bound to the catalytic domain, p54. Further trafficking of the p31-p54 complex results in formation of a terminal p47 form of the SUB1 catalytic domain. Recent work has implicated a parasite aspartic protease, plasmepsin X (PMX), in maturation of the SUB1 p31-p54 complex through controlled cleavage of the prodomain p31. METHODS: Here we use biochemical and enzymatic analysis to examine the activation of SUB1 by PMX. RESULTS: We show that both p31 and p31-p54 are largely dimeric under the relatively acidic conditions to which they are likely exposed to PMX in the parasite. We confirm the sites within p31 that are cleaved by PMX and determine the order of cleavage. We find that cleavage by PMX results in rapid loss of the capacity of p31 to act as an inhibitor of SUB1 catalytic activity and we directly demonstrate that exposure to PMX of recombinant p31-p54 complex activates SUB1 activity. CONCLUSIONS: Our results confirm that precise, PMX-mediated cleavage of the SUB1 prodomain activates SUB1 enzyme activity. GENERAL SIGNIFICANCE: Our findings elucidate the role of PMX in activation of SUB1, a key effector of malaria parasite egress.


Asunto(s)
Ácido Aspártico Endopeptidasas , Plasmodium falciparum , Proteínas Protozoarias , Plasmodium falciparum/enzimología , Plasmodium falciparum/metabolismo , Ácido Aspártico Endopeptidasas/metabolismo , Ácido Aspártico Endopeptidasas/genética , Proteínas Protozoarias/metabolismo , Proteínas Protozoarias/genética , Proteínas Protozoarias/química , Proteolisis , Humanos , Subtilisinas/metabolismo , Dominio Catalítico , Dominios Proteicos , Malaria Falciparum/parasitología , Malaria Falciparum/metabolismo , Eritrocitos/parasitología , Eritrocitos/metabolismo
3.
J Med Chem ; 67(15): 13033-13055, 2024 Aug 08.
Artículo en Inglés | MEDLINE | ID: mdl-39051854

RESUMEN

Plasmodium falciparum subtilisin-like serine protease 1 (PfSUB1) is essential for egress of invasive merozoite forms of the parasite, rendering PfSUB1 an attractive antimalarial target. Here, we report studies aimed to improve drug-like properties of peptidic boronic acid PfSUB1 inhibitors including increased lipophilicity and selectivity over human proteasome (H20S). Structure-activity relationship investigations revealed that lipophilic P3 amino acid side chains as well as N-capping groups were well tolerated in retaining PfSUB1 inhibitory potency. At the P1 position, replacing the methyl group with a carboxyethyl substituent led to boralactone PfSUB1 inhibitors with remarkably improved selectivity over H20S. Combining lipophilic end-capping groups with the boralactone reduced the selectivity over H20S. However, compound 4c still showed >60-fold selectivity versus H20S and low nanomolar PfSUB1 inhibitory potency. Importantly, this compound inhibited the growth of a genetically modified P. falciparum line expressing reduced levels of PfSUB1 13-fold more efficiently compared to a wild-type parasite line.


Asunto(s)
Antimaláricos , Ácidos Borónicos , Plasmodium falciparum , Complejo de la Endopetidasa Proteasomal , Proteínas Protozoarias , Plasmodium falciparum/efectos de los fármacos , Plasmodium falciparum/enzimología , Humanos , Relación Estructura-Actividad , Ácidos Borónicos/química , Ácidos Borónicos/farmacología , Ácidos Borónicos/síntesis química , Proteínas Protozoarias/antagonistas & inhibidores , Proteínas Protozoarias/metabolismo , Complejo de la Endopetidasa Proteasomal/metabolismo , Antimaláricos/farmacología , Antimaláricos/química , Antimaláricos/síntesis química , Péptidos/química , Péptidos/farmacología , Péptidos/síntesis química , Subtilisinas
4.
PLoS Pathog ; 20(6): e1012360, 2024 Jun.
Artículo en Inglés | MEDLINE | ID: mdl-38935780

RESUMEN

The cGMP-dependent protein kinase (PKG) is the sole cGMP sensor in malaria parasites, acting as an essential signalling hub to govern key developmental processes throughout the parasite life cycle. Despite the importance of PKG in the clinically relevant asexual blood stages, many aspects of malarial PKG regulation, including the importance of phosphorylation, remain poorly understood. Here we use genetic and biochemical approaches to show that reduced cGMP binding to cyclic nucleotide binding domain B does not affect in vitro kinase activity but prevents parasite egress. Similarly, we show that phosphorylation of a key threonine residue (T695) in the activation loop is dispensable for kinase activity in vitro but is essential for in vivo PKG function, with loss of T695 phosphorylation leading to aberrant phosphorylation events across the parasite proteome and changes to the substrate specificity of PKG. Our findings indicate that Plasmodium PKG is uniquely regulated to transduce signals crucial for malaria parasite development.


Asunto(s)
Proteínas Quinasas Dependientes de GMP Cíclico , GMP Cíclico , Proteínas Quinasas Dependientes de GMP Cíclico/metabolismo , Proteínas Quinasas Dependientes de GMP Cíclico/genética , Fosforilación , GMP Cíclico/metabolismo , Malaria/parasitología , Malaria/metabolismo , Proteínas Protozoarias/metabolismo , Proteínas Protozoarias/genética , Animales , Plasmodium falciparum/metabolismo , Plasmodium falciparum/genética , Humanos , Transducción de Señal , Eritrocitos/parasitología , Eritrocitos/metabolismo
5.
bioRxiv ; 2024 Jan 11.
Artículo en Inglés | MEDLINE | ID: mdl-38260474

RESUMEN

Malaria, caused by Plasmodium falciparum, remains a significant health burden. A barrier for developing anti-malarial drugs is the ability of the parasite to rapidly generate resistance. We demonstrated that Salinipostin A (SalA), a natural product, kills parasites by inhibiting multiple lipid metabolizing serine hydrolases, a mechanism with a low propensity for resistance. Given the difficulty of employing natural products as therapeutic agents, we synthesized a library of lipidic mixed alkyl/aryl phosphonates as bioisosteres of SalA. Two constitutional isomers exhibited divergent anti-parasitic potencies which enabled identification of therapeutically relevant targets. We also confirm that this compound kills parasites through a mechanism that is distinct from both SalA and the pan-lipase inhibitor, Orlistat. Like SalA, our compound induces only weak resistance, attributable to mutations in a single protein involved in multidrug resistance. These data suggest that mixed alkyl/aryl phosphonates are a promising, synthetically tractable anti-malarials with a low-propensity to induce resistance.

6.
mBio ; : e0171823, 2023 Oct 26.
Artículo en Inglés | MEDLINE | ID: mdl-37882543

RESUMEN

Plasmodium parasites rely on a functional electron transport chain (ETC) within their mitochondrion for proliferation, and compounds targeting mitochondrial functions are validated antimalarials. Here, we localize Plasmodium falciparum patatin-like phospholipase 2 (PfPNPLA2, PF3D7_1358000) to the mitochondrion and reveal that disruption of the PfPNPLA2 gene impairs asexual replication. PfPNPLA2-null parasites are hypersensitive to proguanil and inhibitors of the mitochondrial ETC, including atovaquone. In addition, PfPNPLA2-deficient parasites show reduced mitochondrial respiration and reduced mitochondrial membrane potential, indicating that disruption of PfPNPLA2 leads to a defect in the parasite ETC. Lipidomic analysis of the mitochondrial phospholipid cardiolipin (CL) reveals that loss of PfPNPLA2 is associated with a moderate shift toward shorter-chained and more saturated CL species, implying a contribution of PfPNPLA2 to CL remodeling. PfPNPLA2-deficient parasites display profound defects in gametocytogenesis, underlining the importance of a functional mitochondrial ETC during both the asexual and sexual development of the parasite. IMPORTANCE For their proliferation within red blood cells, malaria parasites depend on a functional electron transport chain (ETC) within their mitochondrion, which is the target of several antimalarial drugs. Here, we have used gene disruption to identify a patatin-like phospholipase, PfPNPLA2, as important for parasite replication and mitochondrial function in Plasmodium falciparum. Parasites lacking PfPNPLA2 show defects in their ETC and become hypersensitive to mitochondrion-targeting drugs. Furthermore, PfPNPLA2-deficient parasites show differences in the composition of their cardiolipins, a unique class of phospholipids with key roles in mitochondrial functions. Finally, we demonstrate that parasites devoid of PfPNPLA2 have a defect in gametocyte maturation, underlining the importance of a functional ETC for parasite transmission to the mosquito vector.

7.
Proc Natl Acad Sci U S A ; 120(30): e2306420120, 2023 07 25.
Artículo en Inglés | MEDLINE | ID: mdl-37463201

RESUMEN

To ensure their survival in the human bloodstream, malaria parasites degrade up to 80% of the host erythrocyte hemoglobin in an acidified digestive vacuole. Here, we combine conditional reverse genetics and quantitative imaging approaches to demonstrate that the human malaria pathogen Plasmodium falciparum employs a heteromultimeric V-ATPase complex to acidify the digestive vacuole matrix, which is essential for intravacuolar hemoglobin release, heme detoxification, and parasite survival. We reveal an additional function of the membrane-embedded V-ATPase subunits in regulating morphogenesis of the digestive vacuole independent of proton translocation. We further show that intravacuolar accumulation of antimalarial chemotherapeutics is surprisingly resilient to severe deacidification of the vacuole and that modulation of V-ATPase activity does not affect parasite sensitivity toward these drugs.


Asunto(s)
Antimaláricos , Malaria Falciparum , Parásitos , Animales , Humanos , Antimaláricos/farmacología , Antimaláricos/metabolismo , Adenosina Trifosfatasas/metabolismo , Vacuolas , Malaria Falciparum/parasitología , Plasmodium falciparum/metabolismo
8.
J Med Chem ; 66(15): 10658-10680, 2023 08 10.
Artículo en Inglés | MEDLINE | ID: mdl-37505188

RESUMEN

The Plasmodium falciparum aspartic protease plasmepsin X (PMX) is essential for the egress of invasive merozoite forms of the parasite. PMX has therefore emerged as a new potential antimalarial target. Building on peptidic amino alcohols originating from a phenotypic screening hit, we have here developed a series of macrocyclic analogues as PMX inhibitors. Incorporation of an extended linker between the S1 phenyl group and S3 amide led to a lead compound that displayed a 10-fold improved PMX inhibitory potency and a 3-fold improved half-life in microsomal stability assays compared to the acyclic analogue. The lead compound was also the most potent of the new macrocyclic compounds in in vitro parasite growth inhibition. Inhibitor 7k cleared blood-stage P. falciparum in a dose-dependent manner when administered orally to infected humanized mice. Consequently, lead compound 7k represents a promising orally bioavailable molecule for further development as a PMX-targeting antimalarial drug.


Asunto(s)
Antimaláricos , Peptidomiméticos , Ratones , Animales , Antimaláricos/farmacología , Antimaláricos/metabolismo , Peptidomiméticos/farmacología , Peptidomiméticos/metabolismo , Inhibidores de Proteasas/farmacología , Inhibidores de Proteasas/metabolismo , Ácido Aspártico Endopeptidasas , Plasmodium falciparum/metabolismo , Proteínas Protozoarias
9.
mBio ; 14(4): e0141323, 2023 08 31.
Artículo en Inglés | MEDLINE | ID: mdl-37489900

RESUMEN

For its replication within red blood cells, the malaria parasite depends on a highly active and regulated lipid metabolism. Enzymes involved in lipid metabolic processes such as phospholipases are, therefore, potential drug targets. Here, using reverse genetics approaches, we show that only 1 out of the 19 putative phospholipases expressed in asexual blood stages of Plasmodium falciparum is essential for proliferation in vitro, pointing toward a high level of redundancy among members of this enzyme family. Using conditional mislocalization and gene disruption techniques, we show that this essential phosphoinositide-specific phospholipase C (PI-PLC, PF3D7_1013500) has a previously unrecognized essential role during intracellular parasite maturation, long before its previously perceived role in parasite egress and invasion. Subsequent lipidomic analysis suggests that PI-PLC mediates cleavage of phosphatidylinositol bisphosphate (PIP2) in schizont-stage parasites, underlining its critical role in regulating phosphoinositide levels in the parasite. IMPORTANCE The clinical symptoms of malaria arise due to repeated rounds of replication of Plasmodium parasites within red blood cells (RBCs). Central to this is an intense period of membrane biogenesis. Generation of membranes not only requires de novo synthesis and acquisition but also the degradation of phospholipids, a function that is performed by phospholipases. In this study, we investigate the essentiality of the 19 putative phospholipase enzymes that the human malaria parasite Plasmodium falciparum expresses during its replication within RBCs. We not only show that a high level of functional redundancy exists among these enzymes but, at the same time, also identify an essential role for the phosphoinositide-specific phospholipase C in parasite development and cleavage of the phospholipid phosphatidylinositol bisphosphate.


Asunto(s)
Malaria Falciparum , Malaria , Parásitos , Animales , Humanos , Plasmodium falciparum/metabolismo , Parásitos/metabolismo , Fosfoinositido Fosfolipasa C/metabolismo , Fosfolipasas/genética , Fosfolipasas/metabolismo , Proteínas Protozoarias/genética , Proteínas Protozoarias/metabolismo , Malaria/metabolismo , Fosfolípidos/metabolismo , Fosfatidilinositoles/metabolismo , Eritrocitos/parasitología , Malaria Falciparum/parasitología
10.
PLoS Pathog ; 19(6): e1011449, 2023 06.
Artículo en Inglés | MEDLINE | ID: mdl-37352369

RESUMEN

Malaria parasite release (egress) from host red blood cells involves parasite-mediated membrane poration and rupture, thought to involve membrane-lytic effector molecules such as perforin-like proteins and/or phospholipases. With the aim of identifying these effectors, we disrupted the expression of two Plasmodium falciparum perforin-like proteins simultaneously and showed that they have no essential roles during blood stage egress. Proteomic profiling of parasite proteins discharged into the parasitophorous vacuole (PV) just prior to egress detected the presence in the PV of a lecithin:cholesterol acyltransferase (LCAT; PF3D7_0629300). Conditional ablation of LCAT resulted in abnormal egress and a reduced replication rate. Lipidomic profiles of LCAT-null parasites showed drastic changes in several phosphatidylserine and acylphosphatidylglycerol species during egress. We thus show that, in addition to its previously demonstrated role in liver stage merozoite egress, LCAT is required to facilitate efficient egress in asexual blood stage malaria parasites.


Asunto(s)
Malaria Falciparum , Malaria , Parásitos , Animales , Parásitos/metabolismo , Fosfolipasas , Perforina , Proteómica , Eritrocitos/parasitología , Plasmodium falciparum/metabolismo , Proteínas Protozoarias/genética , Proteínas Protozoarias/metabolismo , Malaria Falciparum/parasitología
11.
J Infect Dis ; 227(10): 1121-1126, 2023 05 12.
Artículo en Inglés | MEDLINE | ID: mdl-36478252

RESUMEN

The lack of a long-term in vitro culture method has severely restricted the study of Plasmodium vivax, in part because it limits genetic manipulation and reverse genetics. We used the recently optimized Plasmodium cynomolgi Berok in vitro culture model to investigate the putative P. vivax drug resistance marker MDR1 Y976F. Introduction of this mutation using clustered regularly interspaced short palindromic repeats-CRISPR-associated protein 9 (CRISPR-Cas9) increased sensitivity to mefloquine, but had no significant effect on sensitivity to chloroquine, amodiaquine, piperaquine, and artesunate. To our knowledge, this is the first reported use of CRISPR-Cas9 in P. cynomolgi, and the first reported integrative genetic manipulation of this species.


Asunto(s)
Antimaláricos , Plasmodium cynomolgi , Mefloquina/farmacología , Antimaláricos/farmacología , Cloroquina/farmacología , Plasmodium vivax/genética , Resistencia a Medicamentos/genética , Resistencia a Múltiples Medicamentos/genética , Plasmodium falciparum
12.
Elife ; 112022 12 28.
Artículo en Inglés | MEDLINE | ID: mdl-36576255

RESUMEN

The malaria parasite Plasmodium falciparum synthesizes significant amounts of phospholipids to meet the demands of replication within red blood cells. De novo phosphatidylcholine (PC) biosynthesis via the Kennedy pathway is essential, requiring choline that is primarily sourced from host serum lysophosphatidylcholine (lysoPC). LysoPC also acts as an environmental sensor to regulate parasite sexual differentiation. Despite these critical roles for host lysoPC, the enzyme(s) involved in its breakdown to free choline for PC synthesis are unknown. Here, we show that a parasite glycerophosphodiesterase (PfGDPD) is indispensable for blood stage parasite proliferation. Exogenous choline rescues growth of PfGDPD-null parasites, directly linking PfGDPD function to choline incorporation. Genetic ablation of PfGDPD reduces choline uptake from lysoPC, resulting in depletion of several PC species in the parasite, whilst purified PfGDPD releases choline from glycerophosphocholine in vitro. Our results identify PfGDPD as a choline-releasing glycerophosphodiesterase that mediates a critical step in PC biosynthesis and parasite survival.


Malaria kills over half a million people every year worldwide. A single-celled parasite called Plasmodium falciparum is responsible for the most lethal form of the disease. This malaria-causing agent is carried by mosquitos which transmit the parasite to humans through their bite. Once in the bloodstream, the parasite enters red blood cells and starts to replicate so it can go on to infect other cells. Like our cells, P. falciparum is surrounded by a membrane, and further membranes surround a number of its internal compartments. To make these protective coats, the parasite has to gather a nutrient called choline to form an important building block in the membrane. The parasite gets most of its choline by absorbing and digesting a molecule known as lysoPC found in the bloodstream of its host. However, it was unclear precisely how the parasite achieves this. To address this question, Ramaprasad, Burda et al. used genetic and metabolomic approaches to study how P. falciparum breaks down lysoPC. The experiments found that mutant parasites that are unable to make an enzyme called GDPD were able to infect red blood cells, but failed to grow properly once inside the cells. The mutant parasites took up less choline and, as a result, also made fewer membrane building blocks. The team were able to rescue the mutant parasites by supplying them with large quantities of choline, which allowed them to resume growing. Taken together, the findings of Ramaprasad, Burda et al. suggest that P. falciparum uses GDPD to extract choline from lysoPC when it is living in red blood cells. More and more P. falciparum parasites are becoming resistant to many of the drugs currently being used to treat malaria. One solution is to develop new therapies that target different molecules in the parasite. Since it performs such a vital role, GDPD may have the potential to be a future drug target.


Asunto(s)
Malaria Falciparum , Malaria , Parásitos , Animales , Parásitos/metabolismo , Colina/metabolismo , Plasmodium falciparum/genética , Glicerilfosforilcolina/metabolismo , Eritrocitos/parasitología , Malaria Falciparum/parasitología , Proteínas Protozoarias/genética , Proteínas Protozoarias/metabolismo
13.
J Med Chem ; 65(19): 12535-12545, 2022 10 13.
Artículo en Inglés | MEDLINE | ID: mdl-36137276

RESUMEN

Widespread resistance to many antimalarial therapies currently in use stresses the need for the discovery of new classes of drugs with new modes of action. The subtilisin-like serine protease SUB1 controls egress of malaria parasites (merozoites) from the parasite-infected red blood cell. As such, SUB1 is considered a prospective target for drugs designed to interrupt the asexual blood stage life cycle of the malaria parasite. Inhibitors of SUB1 have potential as wide-spectrum antimalarial drugs, as a single orthologue of SUB1 is found in the genomes of all known Plasmodium species. This mini-perspective provides a short overview of the function and structure of SUB1 and summarizes all of the published SUB1 inhibitors. The inhibitors are classified by the methods of their discovery, including both rational design and screening.


Asunto(s)
Antimaláricos , Malaria , Plasmodium , Antimaláricos/química , Antimaláricos/farmacología , Antimaláricos/uso terapéutico , Eritrocitos/metabolismo , Humanos , Malaria/tratamiento farmacológico , Malaria/parasitología , Plasmodium falciparum/metabolismo , Proteínas Protozoarias/metabolismo , Serina , Inhibidores de Serina Proteinasa , Subtilisinas/química , Subtilisinas/metabolismo
14.
mBio ; 13(4): e0163522, 2022 08 30.
Artículo en Inglés | MEDLINE | ID: mdl-35862778

RESUMEN

In model organisms, type IV ATPases (P4-ATPases) require cell division control protein 50 (CDC50) chaperones for their phospholipid flipping activity. In the malaria parasite Plasmodium falciparum, guanylyl cyclase alpha (GCα) is an integral membrane protein that is essential for release (egress) of merozoites from their host erythrocytes. GCα is unusual in that it contains both a C-terminal cyclase domain and an N-terminal P4-ATPase domain of unknown function. We sought to investigate whether any of the three CDC50 orthologues (termed A, B, and C) encoded by P. falciparum are required for GCα function. Using gene tagging and conditional gene disruption, we demonstrate that CDC50B and CDC50C but not CDC50A are expressed in the clinically important asexual blood stages and that CDC50B is a binding partner of GCα whereas CDC50C is the binding partner of another putative P4-ATPase, phospholipid-transporting ATPase 2 (ATP2). Our findings indicate that CDC50B has no essential role for intraerythrocytic parasite maturation but modulates the rate of parasite egress by interacting with GCα for optimal cGMP synthesis. In contrast, CDC50C is essential for blood stage trophozoite maturation. Additionally, we find that the CDC50C-ATP2 complex may influence parasite endocytosis of host cell hemoglobin and consequently hemozoin formation. IMPORTANCE Malaria morbidity arises due to successive rounds of replication of Plasmodium parasites within red blood cells. Mature daughter merozoites are released from infected erythrocytes to invade new cells in a tightly regulated process termed egress. Previous studies have shown that a unique bifunctional guanylyl cyclase, GCα, initiates egress by synthesis of cGMP. GCα has an N-terminal P4-ATPase domain of unknown function. In model organisms, P4-ATPases function through interaction with a CDC50 partner protein. Here, we investigate the role of CDC50 orthologues in P. falciparum and show that GCα binds CDC50B, an interaction that regulates egress efficiency. We also find that CDC50C is essential and binds a putative P4-ATPase, ATP2, in a complex that influences endocytosis of host hemaglobin. Our results highlight the heterogenous and critical role of CDC50 proteins in P. falciparum.


Asunto(s)
Malaria Falciparum , Malaria , Adenosina Trifosfatasas/genética , Animales , Eritrocitos/parasitología , Guanilato Ciclasa , Humanos , Malaria Falciparum/parasitología , Merozoítos/fisiología , Fosfolípidos , Plasmodium falciparum/metabolismo , Proteínas Protozoarias/genética , Proteínas Protozoarias/metabolismo , Trofozoítos/metabolismo
15.
Wellcome Open Res ; 6: 186, 2021.
Artículo en Inglés | MEDLINE | ID: mdl-34805551

RESUMEN

Background: Rapid asexual replication of blood stage malaria parasites is responsible for the severity of disease symptoms and fuels the production of transmission forms. Here, we demonstrate that the Plasmodium chabaudi's schedule for asexual replication can be orchestrated by isoleucine, a metabolite provided to the parasite in periodic manner due to the host's rhythmic intake of food. Methods: We infect female C57BL/6 and Per1/2-null TTFL clock-disrupted mice with 1×10 5 red blood cells containing P. chabaudi (DK genotype). We perturb the timing of rhythms in asexual replication and host feeding-fasting cycles to identify nutrients with rhythms that match all combinations of host and parasite rhythms. We then test whether perturbing the availability of the best candidate nutrient in vitro elicits changes their schedule for asexual development. Results: Our large-scale metabolomics experiment and follow up experiments reveal that only one metabolite - the amino acid isoleucine - fits criteria for a time-of-day cue used by parasites to set the schedule for replication. The response to isoleucine is a parasite strategy rather than solely the consequences of a constraint imposed by host rhythms, because unlike when parasites are deprived of other essential nutrients, they suffer no apparent costs from isoleucine withdrawal. Conclusions: Overall, our data suggest parasites can use the daily rhythmicity of blood-isoleucine concentration to synchronise asexual development with the availability of isoleucine, and potentially other resources, that arrive in the blood in a periodic manner due to the host's daily feeding-fasting cycle. Identifying both how and why parasites keep time opens avenues for interventions; interfering with the parasite's time-keeping mechanism may stall replication, increasing the efficacy of drugs and immune responses, and could also prevent parasites from entering dormancy to tolerate drugs.

16.
Proc Natl Acad Sci U S A ; 118(20)2021 05 18.
Artículo en Inglés | MEDLINE | ID: mdl-33975947

RESUMEN

Malaria is a devastating infectious disease, which causes over 400,000 deaths per annum and impacts the lives of nearly half the world's population. The causative agent, a protozoan parasite, replicates within red blood cells (RBCs), eventually destroying the cells in a lytic process called egress to release a new generation of parasites. These invade fresh RBCs to repeat the cycle. Egress is regulated by an essential parasite subtilisin-like serine protease called SUB1. Here, we describe the development and optimization of substrate-based peptidic boronic acids that inhibit Plasmodium falciparum SUB1 with low nanomolar potency. Structural optimization generated membrane-permeable, slow off-rate inhibitors that prevent Pfalciparum egress through direct inhibition of SUB1 activity and block parasite replication in vitro at submicromolar concentrations. Our results validate SUB1 as a potential target for a new class of antimalarial drugs designed to prevent parasite replication and disease progression.


Asunto(s)
Antimaláricos/farmacología , Ácidos Borónicos/farmacología , Péptidos/farmacología , Plasmodium falciparum/efectos de los fármacos , Proteínas Protozoarias/química , Subtilisinas/química , Antimaláricos/síntesis química , Sitios de Unión , Ácidos Borónicos/síntesis química , Diseño de Fármacos , Eritrocitos/efectos de los fármacos , Eritrocitos/parasitología , Expresión Génica , Humanos , Cinética , Estadios del Ciclo de Vida/efectos de los fármacos , Estadios del Ciclo de Vida/fisiología , Modelos Moleculares , Simulación del Acoplamiento Molecular , Péptidos/síntesis química , Plasmodium falciparum/enzimología , Plasmodium falciparum/genética , Plasmodium falciparum/crecimiento & desarrollo , Unión Proteica , Conformación Proteica , Dominios y Motivos de Interacción de Proteínas , Proteínas Protozoarias/antagonistas & inhibidores , Proteínas Protozoarias/genética , Proteínas Protozoarias/metabolismo , Relación Estructura-Actividad , Especificidad por Sustrato , Subtilisinas/antagonistas & inhibidores , Subtilisinas/genética , Subtilisinas/metabolismo , Termodinámica
17.
EMBO J ; 40(11): e107226, 2021 06 01.
Artículo en Inglés | MEDLINE | ID: mdl-33932049

RESUMEN

Malaria parasite egress from host erythrocytes (RBCs) is regulated by discharge of a parasite serine protease called SUB1 into the parasitophorous vacuole (PV). There, SUB1 activates a PV-resident cysteine protease called SERA6, enabling host RBC rupture through SERA6-mediated degradation of the RBC cytoskeleton protein ß-spectrin. Here, we show that the activation of Plasmodium falciparum SERA6 involves a second, autocatalytic step that is triggered by SUB1 cleavage. Unexpectedly, autoproteolytic maturation of SERA6 requires interaction in multimolecular complexes with a distinct PV-located protein cofactor, MSA180, that is itself a SUB1 substrate. Genetic ablation of MSA180 mimics SERA6 disruption, producing a fatal block in ß-spectrin cleavage and RBC rupture. Drug-like inhibitors of SERA6 autoprocessing similarly prevent ß-spectrin cleavage and egress in both P. falciparum and the emerging zoonotic pathogen P. knowlesi. Our results elucidate the egress pathway and identify SERA6 as a target for a new class of antimalarial drugs designed to prevent disease progression.


Asunto(s)
Antimaláricos/farmacología , Proteasas de Cisteína/metabolismo , Plasmodium falciparum/metabolismo , Inhibidores de Proteasas/farmacología , Proteínas Protozoarias/metabolismo , Células Cultivadas , Eritrocitos/metabolismo , Eritrocitos/parasitología , Humanos , Plasmodium falciparum/efectos de los fármacos , Plasmodium falciparum/patogenicidad , Proteolisis , Proteínas Protozoarias/antagonistas & inhibidores , Serina Proteasas/metabolismo , Espectrina/metabolismo
18.
Sci Adv ; 7(13)2021 03.
Artículo en Inglés | MEDLINE | ID: mdl-33762339

RESUMEN

Calcium signaling regulated by the cGMP-dependent protein kinase (PKG) controls key life cycle transitions in the malaria parasite. However, how calcium is mobilized from intracellular stores in the absence of canonical calcium channels in Plasmodium is unknown. Here, we identify a multipass membrane protein, ICM1, with homology to transporters and calcium channels that is tightly associated with PKG in both asexual blood stages and transmission stages. Phosphoproteomic analyses reveal multiple ICM1 phosphorylation events dependent on PKG activity. Stage-specific depletion of Plasmodium berghei ICM1 prevents gametogenesis due to a block in intracellular calcium mobilization, while conditional loss of Plasmodium falciparum ICM1 is detrimental for the parasite resulting in severely reduced calcium mobilization, defective egress, and lack of invasion. Our findings suggest that ICM1 is a key missing link in transducing PKG-dependent signals and provide previously unknown insights into atypical calcium homeostasis in malaria parasites essential for pathology and disease transmission.


Asunto(s)
Malaria , Parásitos , Animales , Calcio/metabolismo , Canales de Calcio , Gametogénesis , Malaria/parasitología , Proteínas de la Membrana/metabolismo , Plasmodium berghei/metabolismo , Proteínas Protozoarias/genética , Proteínas Protozoarias/metabolismo
19.
mBio ; 12(2)2021 03 09.
Artículo en Inglés | MEDLINE | ID: mdl-33688001

RESUMEN

Malaria parasites cause disease through repeated cycles of intraerythrocytic proliferation. Within each cycle, several rounds of DNA replication produce multinucleated forms, called schizonts, that undergo segmentation to form daughter merozoites. Upon rupture of the infected cell, the merozoites egress to invade new erythrocytes and repeat the cycle. In human malarial infections, an antibody response specific for the Plasmodium falciparum protein PF3D7_1021800 was previously associated with protection against malaria, leading to an interest in PF3D7_1021800 as a candidate vaccine antigen. Antibodies to the protein were reported to inhibit egress, resulting in it being named schizont egress antigen-1 (SEA1). A separate study found that SEA1 undergoes phosphorylation in a manner dependent upon the parasite cGMP-dependent protein kinase PKG, which triggers egress. While these findings imply a role for SEA1 in merozoite egress, this protein has also been implicated in kinetochore function during schizont development. Therefore, the function of SEA1 remains unclear. Here, we show that P. falciparum SEA1 localizes in proximity to centromeres within dividing nuclei and that conditional disruption of SEA1 expression severely impacts the distribution of DNA and formation of merozoites during schizont development, with a proportion of SEA1-null merozoites completely lacking nuclei. SEA1-null schizonts rupture, albeit with low efficiency, suggesting that neither SEA1 function nor normal segmentation is a prerequisite for egress. We conclude that SEA1 does not play a direct mechanistic role in egress but instead acts upstream of egress as an essential regulator required to ensure the correct packaging of nuclei within merozoites.IMPORTANCE Malaria is a deadly infectious disease. Rationally designed novel therapeutics will be essential for its control and eradication. The Plasmodium falciparum protein PF3D7_1021800, annotated as SEA1, is under investigation as a prospective component of a malaria vaccine, based on previous indications that antibodies to SEA1 interfere with parasite egress from infected erythrocytes. However, a consensus on the function of SEA1 is lacking. Here, we demonstrate that SEA1 localizes to dividing parasite nuclei and is necessary for the correct segregation of replicated DNA into individual daughter merozoites. In the absence of SEA1, merozoites develop defectively, often completely lacking a nucleus, and, consequently, egress is impaired and/or aberrant. Our findings provide insights into the divergent mechanisms by which intraerythrocytic malaria parasites develop and divide. Our conclusions regarding the localization and function of SEA1 are not consistent with the hypothesis that antibodies against it confer protective immunity to malaria by blocking merozoite egress.


Asunto(s)
Antígenos de Protozoos/genética , Eritrocitos/parasitología , Merozoítos/genética , Plasmodium falciparum/fisiología , Proteínas Protozoarias/genética , Esquizontes/fisiología , Antígenos de Protozoos/metabolismo , División Celular , Humanos , Merozoítos/química , Fosforilación , Plasmodium falciparum/química , Plasmodium falciparum/genética , Plasmodium falciparum/crecimiento & desarrollo , Estudios Prospectivos , Proteínas Protozoarias/metabolismo
20.
J Cell Sci ; 134(5)2021 03 08.
Artículo en Inglés | MEDLINE | ID: mdl-33686010

RESUMEN

All intracellular pathogens must escape (egress) from the confines of their host cell to disseminate and proliferate. The malaria parasite only replicates in an intracellular vacuole or in a cyst, and must undergo egress at four distinct phases during its complex life cycle, each time disrupting, in a highly regulated manner, the membranes or cyst wall that entrap the parasites. This Cell Science at a Glance article and accompanying poster summarises our current knowledge of the morphological features of egress across the Plasmodium life cycle, the molecular mechanisms that govern the process, and how researchers are working to exploit this knowledge to develop much-needed new approaches to malaria control.


Asunto(s)
Malaria , Parásitos , Plasmodium , Animales , Eritrocitos , Estadios del Ciclo de Vida , Plasmodium falciparum , Proteínas Protozoarias
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