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1.
Int J Parasitol Drugs Drug Resist ; 25: 100537, 2024 Apr 26.
Article in English | MEDLINE | ID: mdl-38810336

ABSTRACT

Target-based approaches have traditionally been used in the search for new anti-infective molecules. Target selection process, a critical step in Drug Discovery, identifies targets that are essential to establish or maintain the infection, tractable to be susceptible for inhibition, selective towards their human ortholog and amenable for large scale purification and high throughput screening. The work presented herein validates the Plasmodium falciparum mRNA 5' triphosphatase (PfPRT1), the first enzymatic step to cap parasite nuclear mRNAs, as a candidate target for the development of new antimalarial compounds. mRNA capping is essential to maintain the integrity and stability of the messengers, allowing their translation. PfPRT1 has been identified as a member of the tunnel, metal dependent mRNA 5' triphosphatase family which differs structurally and mechanistically from human metal independent mRNA 5' triphosphatase. In the present study the essentiality of PfPRT1 was confirmed and molecular biology tools and methods for target purification, enzymatic assessment and target engagement were developed, with the goal of running a future high throughput screening to discover PfPRT1 inhibitors.

2.
Bioorg Chem ; 148: 107472, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38788364

ABSTRACT

Patents tend to define a huge chemical space described by the combinatorial nature of Markush structures. However, the optimization of new principal active ingredient is frequently driven by a simple Free Wilson approach. This procedure leads to a highly focused study on the chemical space near a hit compound leaving many unexplored regions that may present highly biological active reservoirs. This study aims to demonstrate that this unveiled chemical space can hide compounds with interesting potential biological activity that would be worth pursuing. This underlines the value and necessity of broadening an approach beyond conventional strategies. Hence, we advocate for an alternative methodology that may be more efficient in the early drug discovery stages. We have selected the case of Tafenoquine, a single-dose treatment for the radical cure of P. vivax malaria approved by the FDA in 2018, as an example to illustrate the process. Through the deep exploration of the Tafenoquine chemical space, seven compounds with potential antimalarial activity have been rationally identified and synthesized. This small set is representative of the chemical diversity unexplored by the 58 analogs reported to date. After biological assessment, results evidence that our approach for rational design has proven to be a very efficient exploratory methodology suitable for the early drug discovery stages.


Subject(s)
Aminoquinolines , Antimalarials , Antimalarials/pharmacology , Antimalarials/chemistry , Antimalarials/chemical synthesis , Aminoquinolines/chemistry , Aminoquinolines/pharmacology , Aminoquinolines/chemical synthesis , Structure-Activity Relationship , Molecular Structure , Dose-Response Relationship, Drug , Humans , Parasitic Sensitivity Tests , Plasmodium vivax/drug effects , Plasmodium falciparum/drug effects
3.
Nat Commun ; 14(1): 3059, 2023 05 27.
Article in English | MEDLINE | ID: mdl-37244916

ABSTRACT

In vitro evolution of drug resistance is a powerful approach for identifying antimalarial targets, however, key obstacles to eliciting resistance are the parasite inoculum size and mutation rate. Here we sought to increase parasite genetic diversity to potentiate resistance selections by editing catalytic residues of Plasmodium falciparum DNA polymerase δ. Mutation accumulation assays reveal a ~5-8 fold elevation in the mutation rate, with an increase of 13-28 fold in drug-pressured lines. Upon challenge with the spiroindolone PfATP4-inhibitor KAE609, high-level resistance is obtained more rapidly and at lower inocula than wild-type parasites. Selections also yield mutants with resistance to an "irresistible" compound, MMV665794 that failed to yield resistance with other strains. We validate mutations in a previously uncharacterised gene, PF3D7_1359900, which we term quinoxaline resistance protein (QRP1), as causal for resistance to MMV665794 and a panel of quinoxaline analogues. The increased genetic repertoire available to this "mutator" parasite can be leveraged to drive P. falciparum resistome discovery.


Subject(s)
Antimalarials , Malaria, Falciparum , Parasites , Animals , Plasmodium falciparum/genetics , Plasmodium falciparum/metabolism , Parasites/metabolism , Malaria, Falciparum/drug therapy , Malaria, Falciparum/parasitology , Antimalarials/therapeutic use , Mutation , Drug Resistance/genetics , Protozoan Proteins/metabolism
4.
Microbiol Spectr ; 10(4): e0110122, 2022 08 31.
Article in English | MEDLINE | ID: mdl-35867395

ABSTRACT

The chloroquine resistance transporter, PfCRT, is an essential factor during intraerythrocytic development of the human malaria parasite Plasmodium falciparum. PfCRT resides at the digestive vacuole of the parasite, where hemoglobin taken up by the parasite from its host cell is degraded. PfCRT can acquire several mutations that render PfCRT a drug transporting system expelling compounds targeting hemoglobin degradation from the digestive vacuole. The non-drug related function of PfCRT is less clear, although a recent study has suggested a role in oligopeptide transport based on studies conducted in a heterologous expression system. The uncertainty about the natural function of PfCRT is partly due to a lack of a null mutant and a dearth of functional assays in the parasite. Here, we report on the generation of a conditional PfCRT knock-down mutant in P. falciparum. The mutant accumulated oligopeptides 2 to at least 8 residues in length under knock-down conditions, as shown by comparative global metabolomics. The accumulated oligopeptides were structurally diverse, had an isoelectric point between 4.0 and 5.4 and were electrically neutral or carried a single charge at the digestive vacuolar pH of 5.2. Fluorescently labeled dipeptides and live cell imaging identified the digestive vacuole as the compartment where oligopeptides accumulated. Our findings suggest a function of PfCRT in oligopeptide transport across the digestive vacuolar membrane in P. falciparum and associated with it a role in nutrient acquisition and the maintenance of the colloid osmotic balance. IMPORTANCE The chloroquine resistance transporter, PfCRT, is important for the survival of the human malaria parasite Plasmodium falciparum. It increases the tolerance to many antimalarial drugs, and it is essential for the development of the parasite within red blood cells. While we understand the role of PfCRT in drug resistance in ever increasing detail, the non-drug resistance functions are still debated. Identifying the natural substrate of PfCRT has been hampered by a paucity of functional assays to test putative substrates in the parasite system and the absence of a parasite mutant deficient for the PfCRT encoding gene. By generating a conditional PfCRT knock-down mutant, together with comparative metabolomics and uptake studies using fluorescently labeled oligopeptides, we could show that PfCRT is an oligopeptide transporter. The oligopeptides were structurally diverse and were electrically neutral or carried a single charge. Our data support a function of PfCRT in oligopeptide transport.


Subject(s)
Antimalarials , Malaria, Falciparum , Malaria , Antimalarials/pharmacology , Chloroquine/metabolism , Chloroquine/pharmacology , Humans , Membrane Transport Proteins/genetics , Membrane Transport Proteins/metabolism , Oligopeptides/metabolism , Plasmodium falciparum/genetics , Protozoan Proteins/chemistry , Protozoan Proteins/genetics , Protozoan Proteins/metabolism
5.
J Biol Chem ; 294(34): 12766-12778, 2019 08 23.
Article in English | MEDLINE | ID: mdl-31285265

ABSTRACT

The chloroquine resistance transporter PfCRT of the human malaria parasite Plasmodium falciparum confers resistance to the former first-line antimalarial drug chloroquine, and it modulates the responsiveness to a wide range of quinoline and quinoline-like compounds. PfCRT is post-translationally modified by phosphorylation, palmitoylation, and, possibly, ubiquitination. However, the impact of these post-translational modifications on P. falciparum biology and, in particular, the drug resistance-conferring activity of PfCRT has remained elusive. Here, we confirm phosphorylation at Ser-33 and Ser-411 of PfCRT of the chloroquine-resistant P. falciparum strain Dd2 and show that kinase inhibitors can sensitize drug responsiveness. Using CRISPR/Cas9 genome editing to generate genetically engineered PfCRT variants in the parasite, we further show that substituting Ser-33 with alanine reduced chloroquine and quinine resistance by ∼50% compared with the parental P. falciparum strain Dd2, whereas the phosphomimetic amino acid aspartic acid could fully and glutamic acid could partially reconstitute the level of chloroquine/quinine resistance. Transport studies conducted in the parasite and in PfCRT-expressing Xenopus laevis oocytes linked phosphomimetic substitution at Ser-33 to increased transport velocity. Our data are consistent with phosphorylation of Ser-33 relieving an autoinhibitory intramolecular interaction within PfCRT, leading to a stimulated drug transport activity. Our findings shed additional light on the function of PfCRT and suggest that chloroquine could be reevaluated as an antimalarial drug by targeting the kinase in P. falciparum that phosphorylates Ser-33 of PfCRT.


Subject(s)
Membrane Transport Proteins/metabolism , Plasmodium falciparum/metabolism , Protozoan Proteins/metabolism , Serine/metabolism , Antimalarials/pharmacology , Chloroquine/pharmacology , Drug Resistance/drug effects , Kinetics , Parasitic Sensitivity Tests , Phosphorylation , Plasmodium falciparum/drug effects , Protozoan Proteins/antagonists & inhibitors
6.
Int J Parasitol Drugs Drug Resist ; 8(2): 295-303, 2018 08.
Article in English | MEDLINE | ID: mdl-29775797

ABSTRACT

Phenotypic screening has produced most of the new chemical entities currently in clinical development for malaria, plus many lead compounds active against Plasmodium falciparum asexual stages. However, lack of knowledge about the mode of action of these compounds delays and may even hamper their future development. Identifying the mode of action of the inhibitors greatly helps to prioritise compounds for further development as novel antimalarials. Here we describe a whole-cell method to detect inhibitors of the mitochondrial electron transport chain, using oxygen consumption as high throughput readout in 384-well plate format. The usefulness of the method has been confirmed with the Tres Cantos Antimalarial Compound Set (TCAMS). The assay identified 124 respiratory inhibitors in TCAMS, seven of which were novel anti-plasmodial chemical structures never before described as mitochondrial inhibitors.


Subject(s)
Antimalarials/pharmacology , Drug Evaluation, Preclinical/methods , Mitochondria/drug effects , Plasmodium falciparum/drug effects , Drug Discovery/methods , Drug Evaluation, Preclinical/instrumentation , Electron Transport Chain Complex Proteins/antagonists & inhibitors , Humans , Inhibitory Concentration 50 , Malaria/drug therapy , Malaria/parasitology , Malaria, Falciparum , Oxygen/metabolism , Plasmodium falciparum/cytology
7.
J Biol Chem ; 292(39): 16109-16121, 2017 09 29.
Article in English | MEDLINE | ID: mdl-28768767

ABSTRACT

The chloroquine resistance transporter of the human malaria parasite Plasmodium falciparum, PfCRT, is an important determinant of resistance to several quinoline and quinoline-like antimalarial drugs. PfCRT also plays an essential role in the physiology of the parasite during development inside erythrocytes. However, the function of this transporter besides its role in drug resistance is still unclear. Using electrophysiological and flux experiments conducted on PfCRT-expressing Xenopus laevis oocytes, we show here that both wild-type PfCRT and a PfCRT variant associated with chloroquine resistance transport both ferrous and ferric iron, albeit with different kinetics. In particular, we found that the ability to transport ferrous iron is reduced by the specific polymorphisms acquired by the PfCRT variant as a result of chloroquine selection. We further show that iron and chloroquine transport via PfCRT is electrogenic. If these findings in the Xenopus model extend to P. falciparum in vivo, our data suggest that PfCRT might play a role in iron homeostasis, which is essential for the parasite's development in erythrocytes.


Subject(s)
Antimalarials/metabolism , Chloroquine/metabolism , Iron/metabolism , Membrane Transport Proteins/metabolism , Plasmodium falciparum/metabolism , Protozoan Proteins/metabolism , Amino Acid Substitution , Animals , Biological Transport , Iron/chemistry , Kinetics , Membrane Transport Proteins/genetics , Mutation , Oocytes/metabolism , Oxidation-Reduction , Patch-Clamp Techniques , Protozoan Proteins/genetics , Recombinant Proteins/metabolism , Xenopus laevis
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