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2.
Sci Adv ; 9(45): eadi2364, 2023 11 10.
Article in English | MEDLINE | ID: mdl-37939186

ABSTRACT

Drug-resistant Plasmodium falciparum parasites have swept across Southeast Asia and now threaten Africa. By implementing a P. falciparum genetic cross using humanized mice, we report the identification of key determinants of resistance to artemisinin (ART) and piperaquine (PPQ) in the dominant Asian KEL1/PLA1 lineage. We mapped k13 as the central mediator of ART resistance in vitro and identified secondary markers. Applying bulk segregant analysis, quantitative trait loci mapping using 34 recombinant haplotypes, and gene editing, our data reveal an epistatic interaction between mutant PfCRT and multicopy plasmepsins 2/3 in mediating high-grade PPQ resistance. Susceptibility and parasite fitness assays implicate PPQ as a driver of selection for KEL1/PLA1 parasites. Mutant PfCRT enhanced susceptibility to lumefantrine, the first-line partner drug in Africa, highlighting a potential benefit of opposing selective pressures with this drug and PPQ. We also identified that the ABCI3 transporter can operate in concert with PfCRT and plasmepsins 2/3 in mediating multigenic resistance to antimalarial agents.


Subject(s)
Malaria, Falciparum , Parasites , Animals , Mice , Plasmodium falciparum/genetics , Malaria, Falciparum/drug therapy , Malaria, Falciparum/genetics , Malaria, Falciparum/parasitology , Drug Resistance/genetics , Drug Resistance, Multiple , Genomics
3.
bioRxiv ; 2023 Jun 03.
Article in English | MEDLINE | ID: mdl-37398288

ABSTRACT

Drug-resistant Plasmodium falciparum parasites have swept across Southeast Asia and now threaten Africa. By implementing a P. falciparum genetic cross using humanized mice, we report the identification of key determinants of resistance to artemisinin (ART) and piperaquine (PPQ) in the dominant Asian KEL1/PLA1 lineage. We mapped k13 as the central mediator of ART resistance and identified secondary markers. Applying bulk segregant analysis, quantitative trait loci mapping and gene editing, our data reveal an epistatic interaction between mutant PfCRT and multicopy plasmepsins 2/3 in mediating high-grade PPQ resistance. Susceptibility and parasite fitness assays implicate PPQ as a driver of selection for KEL1/PLA1 parasites. Mutant PfCRT enhanced susceptibility to lumefantrine, the first-line partner drug in Africa, highlighting a potential benefit of opposing selective pressures with this drug and PPQ. We also identified that the ABCI3 transporter can operate in concert with PfCRT and plasmepsins 2/3 in mediating multigenic resistance to antimalarial agents.

4.
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
5.
Nat Commun ; 14(1): 1455, 2023 03 16.
Article in English | MEDLINE | ID: mdl-36927839

ABSTRACT

Identifying how small molecules act to kill malaria parasites can lead to new "chemically validated" targets. By pressuring Plasmodium falciparum asexual blood stage parasites with three novel structurally-unrelated antimalarial compounds (MMV665924, MMV019719 and MMV897615), and performing whole-genome sequence analysis on resistant parasite lines, we identify multiple mutations in the P. falciparum acyl-CoA synthetase (ACS) genes PfACS10 (PF3D7_0525100, M300I, A268D/V, F427L) and PfACS11 (PF3D7_1238800, F387V, D648Y, and E668K). Allelic replacement and thermal proteome profiling validates PfACS10 as a target of these compounds. We demonstrate that this protein is essential for parasite growth by conditional knockdown and observe increased compound susceptibility upon reduced expression. Inhibition of PfACS10 leads to a reduction in triacylglycerols and a buildup of its lipid precursors, providing key insights into its function. Analysis of the PfACS11 gene and its mutations point to a role in mediating resistance via decreased protein stability.


Subject(s)
Antimalarials , Malaria, Falciparum , Humans , Plasmodium falciparum/metabolism , Malaria, Falciparum/drug therapy , Malaria, Falciparum/parasitology , Antimalarials/pharmacology , Antimalarials/therapeutic use , Mutation , Ligases/metabolism
6.
PLoS Pathog ; 19(1): e1011118, 2023 01.
Article in English | MEDLINE | ID: mdl-36696458

ABSTRACT

Resistance of the human malaria parasites, Plasmodium falciparum, to artemisinins is now fully established in Southeast Asia and is gradually emerging in Sub-Saharan Africa. Although nonsynonymous SNPs in the pfk13 Kelch-repeat propeller (KREP) domain are clearly associated with artemisinin resistance, their functional relevance requires cooperation with other genetic factors/alterations of the P. falciparum genome, collectively referred to as genetic background. Here we provide experimental evidence that P. falciparum cyclophilin 19B (PfCYP19B) may represent one putative factor in this genetic background, contributing to artemisinin resistance via its increased expression. We show that overexpression of PfCYP19B in vitro drives limited but significant resistance to not only artemisinin but also piperaquine, an important partner drug in artemisinin-based combination therapies. We showed that PfCYP19B acts as a negative regulator of the integrated stress response (ISR) pathway by modulating levels of phosphorylated eIF2α (eIF2α-P). Curiously, artemisinin and piperaquine affect eIF2α-P in an inverse direction that in both cases can be modulated by PfCYP19B towards resistance. Here we also provide evidence that the upregulation of PfCYP19B in the drug-resistant parasites appears to be maintained by a short tandem repeat (SRT) sequence polymorphism in the gene's promoter region. These results support a model that artemisinin (and other drugs) resistance mechanisms are complex genetic traits being contributed to by altered expression of multiple genes driven by genetic polymorphism at their promoter regions.


Subject(s)
Antimalarials , Drug Resistance , Malaria, Falciparum , Plasmodium falciparum , Humans , Antimalarials/pharmacology , Cyclophilins/genetics , Cyclophilins/metabolism , Drug Resistance/genetics , Malaria, Falciparum/drug therapy , Malaria, Falciparum/parasitology , Microsatellite Repeats , Plasmodium falciparum/drug effects , Plasmodium falciparum/genetics , Polymorphism, Single Nucleotide , Promoter Regions, Genetic , Protozoan Proteins/genetics , Protozoan Proteins/metabolism , Up-Regulation
7.
PLoS Pathog ; 18(10): e1010926, 2022 10.
Article in English | MEDLINE | ID: mdl-36306287

ABSTRACT

The emergence of Plasmodium falciparum parasite resistance to dihydroartemisinin + piperaquine (PPQ) in Southeast Asia threatens plans to increase the global use of this first-line antimalarial combination. High-level PPQ resistance appears to be mediated primarily by novel mutations in the P. falciparum chloroquine resistance transporter (PfCRT), which enhance parasite survival at high PPQ concentrations in vitro and increase the risk of dihydroartemisinin + PPQ treatment failure in patients. Using isogenic Dd2 parasites expressing contemporary pfcrt alleles with differential in vitro PPQ susceptibilities, we herein characterize the molecular and physiological adaptations that define PPQ resistance in vitro. Using drug uptake and cellular heme fractionation assays we report that the F145I, M343L, and G353V PfCRT mutations differentially impact PPQ and chloroquine efflux. These mutations also modulate proteolytic degradation of host hemoglobin and the chemical inactivation of reactive heme species. Peptidomic analyses reveal significantly higher accumulation of putative hemoglobin-derived peptides in the PPQ-resistant mutant PfCRT isoforms compared to parental PPQ-sensitive Dd2. Joint transcriptomic and metabolomic profiling of late trophozoites from PPQ-resistant or -sensitive isogenic lines reveals differential expression of genes involved in protein translation and cellular metabolism. PPQ-resistant parasites also show increased susceptibility to an inhibitor of the P. falciparum M17 aminopeptidase that operates on short globin-derived peptides. These results reveal unique physiological changes caused by the gain of PPQ resistance and highlight the potential therapeutic value of targeting peptide metabolism in P. falciparum.


Subject(s)
Antimalarials , Artemisinins , Malaria, Falciparum , Parasites , Animals , Humans , Plasmodium falciparum/genetics , Plasmodium falciparum/metabolism , Chloroquine/pharmacology , Chloroquine/metabolism , Parasites/metabolism , Protozoan Proteins/metabolism , Drug Resistance/genetics , Malaria, Falciparum/drug therapy , Malaria, Falciparum/genetics , Malaria, Falciparum/parasitology , Antimalarials/metabolism , Membrane Transport Proteins/genetics , Membrane Transport Proteins/metabolism , Artemisinins/pharmacology , Mutation , Hemoglobins/metabolism , Heme/metabolism
8.
J Infect Dis ; 226(11): 2021-2029, 2022 11 28.
Article in English | MEDLINE | ID: mdl-36082431

ABSTRACT

BACKGROUND: Additional therapeutic strategies could benefit efforts to reverse the recent increase in malaria cases in sub-Saharan Africa, which mostly affects young children. A primary candidate is dihydroartemisinin + piperaquine (DHA + PPQ), which is effective for uncomplicated malaria treatment, seasonal malaria chemoprevention, and intermittent preventive treatment. In Southeast Asia, Plasmodium falciparum parasites acquired PPQ resistance, mediated primarily by mutations in the P falciparum chloroquine resistance transporter PfCRT. The recent emergence in Africa of DHA-resistant parasites creates an imperative to assess whether PPQ resistance could emerge in African parasites with distinct PfCRT isoforms. METHODS: We edited 2 PfCRT mutations known to mediate high-grade PPQ resistance in Southeast Asia into GB4 parasites from Gabon. Gene-edited clones were profiled in antimalarial concentration-response and fitness assays. RESULTS: The PfCRT F145I mutation mediated moderate PPQ resistance in GB4 parasites but with a substantial fitness cost. No resistance was observed with the PfCRT G353V mutant. Both edited clones became significantly more susceptible to amodiaquine, chloroquine, and quinine. CONCLUSIONS: A single PfCRT mutation can mediate PPQ resistance in GB4 parasites, but with a growth defect that may preclude its spread without further genetic adaptations. Our findings support regional use of drug combinations that exert opposing selective pressures on PfCRT.


Subject(s)
Antimalarials , Malaria, Falciparum , Plasmodium falciparum , Quinolines , Child, Preschool , Humans , Antimalarials/pharmacology , Antimalarials/therapeutic use , Chloroquine/pharmacology , Chloroquine/therapeutic use , Drug Resistance/genetics , Gabon , Malaria, Falciparum/drug therapy , Malaria, Falciparum/parasitology , Plasmodium falciparum/drug effects , Protozoan Proteins/genetics , Quinolines/pharmacology , Quinolines/therapeutic use
9.
Lancet Infect Dis ; 22(6): 879-890, 2022 06.
Article in English | MEDLINE | ID: mdl-35247321

ABSTRACT

BACKGROUND: New antimalarials with novel mechanisms of action are needed to combat the emergence of drug resistance. Triaminopyrimidines comprise a novel antimalarial class identified in a high-throughput screen against asexual blood-stage Plasmodium falciparum. This first-in-human study aimed to characterise the safety, pharmacokinetics, and antimalarial activity of the triaminopyrimidine ZY-19489 in healthy volunteers. METHODS: A three-part clinical trial was conducted in healthy adults (aged 18-55 years) in Brisbane, QLD, Australia. Part one was a double-blind, randomised, placebo-controlled, single ascending dose study in which participants enrolled into one of six dose groups (25, 75, 150, 450, 900, or 1500 mg) were randomly assigned (3:1) to ZY-19489 or placebo. Part two was an open-label, randomised, two-period cross-over, pilot food-effect study in which participants were randomly assigned (1:1) to a fasted-fed or a fed-fasted sequence. Part three was an open-label, randomised, volunteer infection study using the P falciparum induced blood-stage malaria model in which participants were enrolled into one of two cohorts, with participants in cohort one all receiving the same dose of ZY-19489 and participants in cohort two randomly assigned to receive one of two doses. The primary outcome for all three parts was the incidence, severity, and relationship to ZY-19489 of adverse events. Secondary outcomes were estimation of ZY-19489 pharmacokinetic parameters for all parts; how these parameters were affected by the fed state for part two only; and the parasite reduction ratio, parasite clearance half-life, recrudescent parasitaemia, and pharmacokinetic-pharmacodynamic modelling parameters for part three only. This trial is registered with the Australian New Zealand Clinical Trials Registry (ACTRN12619000127101, ACTRN12619001466134, and ACTRN12619001215112). FINDINGS: 48 participants were enrolled in part one (eight per cohort for 25-1500 mg cohorts), eight in part two (four in each group, all dosed with 300 mg), and 15 in part three (five dosed with 200 mg, eight with 300 mg, and two with 900 mg). In part one, the incidence of drug-related adverse events was higher in the 1500 mg dose group (occurring in all six participants) than in lower-dose groups and the placebo group (occurring in one of six in the 25 mg group, two of six in the 75 mg group, three of six in the 150 mg group, two of six in the 450 mg group, four of six in the 900 mg group, and four of 12 in the placebo group), due to the occurrence of mild gastrointestinal symptoms. Maximum plasma concentrations occurred 5-9 h post-dosing, and the elimination half-life was 50-97 h across the dose range. In part two, three of seven participants had a treatment-related adverse event in the fed state and four of eight in the fasted state. Dosing in the fed state delayed absorption (maximum plasma concentration occurred a median of 12·0 h [range 7·5-16·0] after dosing in the fed state vs 6·0 h [4·5-9·1] in the fasted state) but had no effect on overall exposure (difference in area under the concentration-time curve from time 0 [dosing] extrapolated to infinity between fed and fasted states was -0·013 [90% CI -0·11 to 0·08]). In part three, drug-related adverse events occurred in four of five participants in the 200 mg group, seven of eight in the 300 mg group, and both participants in the 900 mg group. Rapid initial parasite clearance occurred in all participants following dosing (clearance half-life 6·6 h [95% CI 6·2-6·9] for 200 mg, 6·8 h [95% CI 6·5-7·1] for 300 mg, and 7·1 h [95% CI 6·6-7·6] for 900 mg). Recrudescence occurred in four of five participants in the 200 mg group, five of eight in the 300 mg group, and neither of the two participants in the 900 mg group. Simulations done using a pharmacokinetic-pharmacodynamic model predicted that a single dose of 1100 mg would clear baseline parasitaemia by a factor of 109. INTERPRETATION: The safety, pharmacokinetic profile, and antimalarial activity of ZY-19489 in humans support the further development of the compound as a novel antimalarial therapy. FUNDING: Cadila Healthcare and Medicines for Malaria Venture.


Subject(s)
Antimalarials , Malaria, Falciparum , Adult , Antimalarials/adverse effects , Australia , Double-Blind Method , Humans , Malaria, Falciparum/drug therapy , Malaria, Falciparum/parasitology , Parasitemia , Pilot Projects , Volunteers
10.
Antimicrob Agents Chemother ; 66(1): e0116321, 2022 01 18.
Article in English | MEDLINE | ID: mdl-34694871

ABSTRACT

Research efforts to combat antimalarial drug resistance rely on quick, robust, and sensitive methods to genetically characterize Plasmodium falciparum parasites. We developed a single-nucleotide polymorphism (SNP)-based genotyping method that can assess 33 drug resistance-conferring SNPs in dhfr, dhps, pfmdr1, pfcrt, and k13 in nine PCRs, performed directly from P. falciparum cultures or infected blood. We also optimized multiplexed fragment analysis and gel electrophoresis-based microsatellite typing methods using a set of five markers that can distinguish 12 laboratory strains of diverse geographical and temporal origin. We demonstrate how these methods can be applied to screen for the multidrug-resistant KEL1/PLA1/PfPailin (KelPP) lineage that has been sweeping across the Greater Mekong Subregion, verify parasite in vitro SNP-editing, identify novel recombinant genetic cross progeny, or cluster strains to infer their geographical origins. Results were compared with Illumina-based whole-genome sequence analysis that provides the most detailed sequence information but is cost-prohibitive. These adaptable, simple, and inexpensive methods can be easily implemented into routine genotyping of P. falciparum parasites in both laboratory and field settings.


Subject(s)
Antimalarials , Malaria, Falciparum , Antimalarials/pharmacology , Antimalarials/therapeutic use , Drug Resistance/genetics , Genotype , Humans , Malaria, Falciparum/parasitology , Microsatellite Repeats/genetics , Plasmodium falciparum/genetics , Protozoan Proteins/genetics
11.
Cell Chem Biol ; 29(5): 824-839.e6, 2022 05 19.
Article in English | MEDLINE | ID: mdl-34233174

ABSTRACT

Widespread Plasmodium falciparum resistance to first-line antimalarials underscores the vital need to develop compounds with novel modes of action and identify new druggable targets. Here, we profile five compounds that potently inhibit P. falciparum asexual blood stages. Resistance selection studies with three carboxamide-containing compounds, confirmed by gene editing and conditional knockdowns, identify point mutations in the parasite transporter ABCI3 as the primary mediator of resistance. Selection studies with imidazopyridine or quinoline-carboxamide compounds also yield changes in ABCI3, this time through gene amplification. Imidazopyridine mode of action is attributed to inhibition of heme detoxification, as evidenced by cellular accumulation and heme fractionation assays. For the copy-number variation-selecting imidazopyridine and quinoline-carboxamide compounds, we find that resistance, manifesting as a biphasic concentration-response curve, can independently be mediated by mutations in the chloroquine resistance transporter PfCRT. These studies reveal the interconnectedness of P. falciparum transporters in overcoming drug pressure in different parasite strains.


Subject(s)
Antimalarials , Folic Acid Antagonists , Malaria, Falciparum , Parasites , Quinolines , ATP-Binding Cassette Transporters/genetics , Animals , Antimalarials/pharmacology , Antimalarials/therapeutic use , Heme , Malaria, Falciparum/drug therapy , Malaria, Falciparum/parasitology , Membrane Transport Proteins/genetics , Plasmodium falciparum/genetics , Plasmodium falciparum/metabolism , Protozoan Proteins/genetics , Protozoan Proteins/metabolism , Quinolines/pharmacology
12.
Sci Transl Med ; 13(603)2021 07 21.
Article in English | MEDLINE | ID: mdl-34290058

ABSTRACT

The emergence and spread of Plasmodium falciparum resistance to first-line antimalarials creates an imperative to identify and develop potent preclinical candidates with distinct modes of action. Here, we report the identification of MMV688533, an acylguanidine that was developed following a whole-cell screen with compounds known to hit high-value targets in human cells. MMV688533 displays fast parasite clearance in vitro and is not cross-resistant with known antimalarials. In a P. falciparum NSG mouse model, MMV688533 displays a long-lasting pharmacokinetic profile and excellent safety. Selection studies reveal a low propensity for resistance, with modest loss of potency mediated by point mutations in PfACG1 and PfEHD. These proteins are implicated in intracellular trafficking, lipid utilization, and endocytosis, suggesting interference with these pathways as a potential mode of action. This preclinical candidate may offer the potential for a single low-dose cure for malaria.


Subject(s)
Antimalarials , Malaria, Falciparum , Malaria , Parasites , Animals , Antimalarials/pharmacology , Antimalarials/therapeutic use , Endocytosis , Malaria/drug therapy , Malaria, Falciparum/drug therapy , Plasmodium falciparum
13.
Elife ; 102021 07 19.
Article in English | MEDLINE | ID: mdl-34279219

ABSTRACT

The emergence of mutant K13-mediated artemisinin (ART) resistance in Plasmodium falciparum malaria parasites has led to widespread treatment failures across Southeast Asia. In Africa, K13-propeller genotyping confirms the emergence of the R561H mutation in Rwanda and highlights the continuing dominance of wild-type K13 elsewhere. Using gene editing, we show that R561H, along with C580Y and M579I, confer elevated in vitro ART resistance in some African strains, contrasting with minimal changes in ART susceptibility in others. C580Y and M579I cause substantial fitness costs, which may slow their dissemination in high-transmission settings, in contrast with R561H that in African 3D7 parasites is fitness neutral. In Cambodia, K13 genotyping highlights the increasing spatio-temporal dominance of C580Y. Editing multiple K13 mutations into a panel of Southeast Asian strains reveals that only the R561H variant yields ART resistance comparable to C580Y. In Asian Dd2 parasites C580Y shows no fitness cost, in contrast with most other K13 mutations tested, including R561H. Editing of point mutations in ferredoxin or mdr2, earlier associated with resistance, has no impact on ART susceptibility or parasite fitness. These data underline the complex interplay between K13 mutations, parasite survival, growth and genetic background in contributing to the spread of ART resistance.


Subject(s)
Artemisinins/pharmacology , Drug Resistance/drug effects , Drug Resistance/genetics , Mutation , Plasmodium falciparum/drug effects , Plasmodium falciparum/genetics , Protozoan Proteins/genetics , Africa , Antimalarials/pharmacology , Asia , Cambodia , Humans , Malaria, Falciparum/epidemiology , Malaria, Falciparum/parasitology , Molecular Epidemiology
14.
ACS Infect Dis ; 7(6): 1680-1689, 2021 06 11.
Article in English | MEDLINE | ID: mdl-33929818

ABSTRACT

Prolyl-tRNA synthetase (PRS) is a clinically validated antimalarial target. Screening of a set of PRS ATP-site binders, initially designed for human indications, led to identification of 1-(pyridin-4-yl)pyrrolidin-2-one derivatives representing a novel antimalarial scaffold. Evidence designates cytoplasmic PRS as the drug target. The frontrunner 1 and its active enantiomer 1-S exhibited low-double-digit nanomolar activity against resistant Plasmodium falciparum (Pf) laboratory strains and development of liver schizonts. No cross-resistance with strains resistant to other known antimalarials was noted. In addition, a similar level of growth inhibition was observed against clinical field isolates of Pf and P. vivax. The slow killing profile and the relative high propensity to develop resistance in vitro (minimum inoculum resistance of 8 × 105 parasites at a selection pressure of 3 × IC50) constitute unfavorable features for treatment of malaria. However, potent blood stage and antischizontal activity are compelling for causal prophylaxis which does not require fast onset of action. Achieving sufficient on-target selectivity appears to be particularly challenging and should be the primary focus during the next steps of optimization of this chemical series. Encouraging preliminary off-target profile and oral efficacy in a humanized murine model of Pf malaria allowed us to conclude that 1-(pyridin-4-yl)pyrrolidin-2-one derivatives represent a promising starting point for the identification of novel antimalarial prophylactic agents that selectively target Plasmodium PRS.


Subject(s)
Amino Acyl-tRNA Synthetases , Antimalarials , Malaria, Falciparum , Malaria , Animals , Antimalarials/pharmacology , Humans , Malaria/drug therapy , Malaria, Falciparum/drug therapy , Mice , Plasmodium falciparum
15.
J Med Chem ; 64(9): 6085-6136, 2021 05 13.
Article in English | MEDLINE | ID: mdl-33876936

ABSTRACT

Dihydroorotate dehydrogenase (DHODH) has been clinically validated as a target for the development of new antimalarials. Experience with clinical candidate triazolopyrimidine DSM265 (1) suggested that DHODH inhibitors have great potential for use in prophylaxis, which represents an unmet need in the malaria drug discovery portfolio for endemic countries, particularly in areas of high transmission in Africa. We describe a structure-based computationally driven lead optimization program of a pyrrole-based series of DHODH inhibitors, leading to the discovery of two candidates for potential advancement to preclinical development. These compounds have improved physicochemical properties over prior series frontrunners and they show no time-dependent CYP inhibition, characteristic of earlier compounds. Frontrunners have potent antimalarial activity in vitro against blood and liver schizont stages and show good efficacy in Plasmodium falciparum SCID mouse models. They are equally active against P. falciparum and Plasmodium vivax field isolates and are selective for Plasmodium DHODHs versus mammalian enzymes.


Subject(s)
Antimalarials/pharmacology , Drug Design , Enzyme Inhibitors/pharmacology , Oxidoreductases Acting on CH-CH Group Donors/antagonists & inhibitors , Pyrroles/pharmacology , Animals , Antimalarials/chemistry , Dihydroorotate Dehydrogenase , Enzyme Inhibitors/chemistry , Mice , Plasmodium falciparum/drug effects , Pyrroles/chemistry , Structure-Activity Relationship
16.
J Med Chem ; 64(6): 3035-3047, 2021 03 25.
Article in English | MEDLINE | ID: mdl-33666415

ABSTRACT

3-Hydroxypropanamidines are a new promising class of highly active antiplasmodial agents. The most active compound 22 exhibited excellent antiplasmodial in vitro activity with nanomolar inhibition of chloroquine-sensitive and multidrug-resistant parasite strains ofPlasmodium falciparum (with IC50 values of 5 and 12 nM against 3D7 and Dd2 strains, respectively) as well as low cytotoxicity in human cells. In addition, 22 showed strong in vivo activity in thePlasmodium berghei mouse model with a cure rate of 66% at 50 mg/kg and a cure rate of 33% at 30 mg/kg in the Peters test after once daily oral administration for 4 consecutive days. A quick onset of action was indicated by the fast drug absorption shown in mice. The new lead compound was also characterized by a high barrier to resistance and inhibited the heme detoxification machinery in P. falciparum.


Subject(s)
Amidines/chemistry , Amidines/pharmacology , Antimalarials/chemistry , Antimalarials/pharmacology , Malaria, Falciparum/drug therapy , Plasmodium falciparum/drug effects , Amidines/pharmacokinetics , Amidines/therapeutic use , Animals , Antimalarials/pharmacokinetics , Antimalarials/therapeutic use , Cell Line , Drug Design , Humans , Malaria/drug therapy , Mice , Parasitic Sensitivity Tests , Plasmodium berghei/drug effects , Propane/chemistry , Propane/pharmacokinetics , Propane/pharmacology , Propane/therapeutic use
17.
J Med Chem ; 64(5): 2739-2761, 2021 03 11.
Article in English | MEDLINE | ID: mdl-33620219

ABSTRACT

Malaria control programs continue to be threatened by drug resistance. To identify new antimalarials, we conducted a phenotypic screen and identified a novel tetrazole-based series that shows fast-kill kinetics and a relatively low propensity to develop high-level resistance. Preliminary structure-activity relationships were established including identification of a subseries of related amides with antiplasmodial activity. Assaying parasites with resistance to antimalarials led us to test whether the series had a similar mechanism of action to chloroquine (CQ). Treatment of synchronized Plasmodium falciparum parasites with active analogues revealed a pattern of intracellular inhibition of hemozoin (Hz) formation reminiscent of CQ's action. Drug selections yielded only modest resistance that was associated with amplification of the multidrug resistance gene 1 (pfmdr1). Thus, we have identified a novel chemical series that targets the historically druggable heme polymerization pathway and that can form the basis of future optimization efforts to develop a new malaria treatment.


Subject(s)
Amides/pharmacology , Antimalarials/pharmacology , Hemoglobins/metabolism , Plasmodium falciparum/drug effects , Tetrazoles/pharmacology , Amides/chemical synthesis , Amides/pharmacokinetics , Antimalarials/chemical synthesis , Antimalarials/pharmacokinetics , Drug Resistance, Microbial/drug effects , Hemeproteins/antagonists & inhibitors , Hep G2 Cells , Humans , Molecular Structure , Parasitic Sensitivity Tests , Plasmodium falciparum/metabolism , Small Molecule Libraries/chemical synthesis , Small Molecule Libraries/pharmacokinetics , Small Molecule Libraries/pharmacology , Structure-Activity Relationship , Tetrazoles/chemical synthesis , Tetrazoles/pharmacokinetics
18.
J Med Chem ; 64(4): 2291-2309, 2021 02 25.
Article in English | MEDLINE | ID: mdl-33573376

ABSTRACT

A novel diazaspiro[3.4]octane series was identified from a Plasmodium falciparum whole-cell high-throughput screening campaign. Hits displayed activity against multiple stages of the parasite lifecycle, which together with a novel sp3-rich scaffold provided an attractive starting point for a hit-to-lead medicinal chemistry optimization and biological profiling program. Structure-activity-relationship studies led to the identification of compounds that showed low nanomolar asexual blood-stage activity (<50 nM) together with strong gametocyte sterilizing properties that translated to transmission-blocking activity in the standard membrane feeding assay. Mechanistic studies through resistance selection with one of the analogues followed by whole-genome sequencing implicated the P. falciparum cyclic amine resistance locus in the mode of resistance.


Subject(s)
Antimalarials/pharmacology , Plasmodium falciparum/drug effects , Spiro Compounds/pharmacology , Animals , Anopheles/drug effects , Antimalarials/chemical synthesis , Antimalarials/metabolism , Female , Germ Cells/drug effects , High-Throughput Screening Assays , Humans , Male , Mice , Microsomes, Liver/metabolism , Molecular Structure , Parasitic Sensitivity Tests , Rats , Spiro Compounds/chemical synthesis , Spiro Compounds/metabolism , Structure-Activity Relationship
19.
Nat Commun ; 12(1): 530, 2021 01 22.
Article in English | MEDLINE | ID: mdl-33483501

ABSTRACT

The emergence and spread of artemisinin resistance, driven by mutations in Plasmodium falciparum K13, has compromised antimalarial efficacy and threatens the global malaria elimination campaign. By applying systems-based quantitative transcriptomics, proteomics, and metabolomics to a panel of isogenic K13 mutant or wild-type P. falciparum lines, we provide evidence that K13 mutations alter multiple aspects of the parasite's intra-erythrocytic developmental program. These changes impact cell-cycle periodicity, the unfolded protein response, protein degradation, vesicular trafficking, and mitochondrial metabolism. K13-mediated artemisinin resistance in the Cambodian Cam3.II line was reversed by atovaquone, a mitochondrial electron transport chain inhibitor. These results suggest that mitochondrial processes including damage sensing and anti-oxidant properties might augment the ability of mutant K13 to protect P. falciparum against artemisinin action by helping these parasites undergo temporary quiescence and accelerated growth recovery post drug elimination.


Subject(s)
Artemisinins/pharmacology , Drug Resistance/genetics , Erythrocytes/metabolism , Mutation , Plasmodium falciparum/genetics , Antimalarials/pharmacology , Atovaquone/pharmacology , Cell Cycle Checkpoints/genetics , Erythrocytes/parasitology , Gene Expression Profiling/methods , Humans , Metabolomics/methods , Mitochondria/genetics , Mitochondria/metabolism , Models, Genetic , Plasmodium falciparum/metabolism , Plasmodium falciparum/physiology , Proteomics/methods , Protozoan Proteins/genetics , Protozoan Proteins/metabolism
20.
Sci Rep ; 11(1): 2121, 2021 01 22.
Article in English | MEDLINE | ID: mdl-33483532

ABSTRACT

The spread of Plasmodium falciparum parasites resistant to most first-line antimalarials creates an imperative to enrich the drug discovery pipeline, preferably with curative compounds that can also act prophylactically. We report a phenotypic quantitative high-throughput screen (qHTS), based on concentration-response curves, which was designed to identify compounds active against Plasmodium liver and asexual blood stage parasites. Our qHTS screened over 450,000 compounds, tested across a range of 5 to 11 concentrations, for activity against Plasmodium falciparum asexual blood stages. Active compounds were then filtered for unique structures and drug-like properties and subsequently screened in a P. berghei liver stage assay to identify novel dual-active antiplasmodial chemotypes. Hits from thiadiazine and pyrimidine azepine chemotypes were subsequently prioritized for resistance selection studies, yielding distinct mutations in P. falciparum cytochrome b, a validated antimalarial drug target. The thiadiazine chemotype was subjected to an initial medicinal chemistry campaign, yielding a metabolically stable analog with sub-micromolar potency. Our qHTS methodology and resulting dataset provides a large-scale resource to investigate Plasmodium liver and asexual blood stage parasite biology and inform further research to develop novel chemotypes as causal prophylactic antimalarials.


Subject(s)
Antimalarials/pharmacology , High-Throughput Screening Assays/methods , Liver/drug effects , Malaria, Falciparum/drug therapy , Plasmodium falciparum/drug effects , Antimalarials/chemistry , Drug Evaluation, Preclinical/methods , Hep G2 Cells , Humans , Liver/parasitology , Malaria, Falciparum/blood , Malaria, Falciparum/parasitology , Molecular Structure , Parasitic Sensitivity Tests , Plasmodium berghei/drug effects , Plasmodium berghei/physiology , Plasmodium falciparum/genetics , Plasmodium falciparum/physiology , Protective Agents/chemistry , Protective Agents/pharmacology , Reproducibility of Results , Structure-Activity Relationship , Thiadiazines/chemistry , Thiadiazines/pharmacology
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