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1.
PLoS Med ; 13(10): e1002138, 2016 Oct.
Article in English | MEDLINE | ID: mdl-27701420

ABSTRACT

BACKGROUND: Artemisinin resistance observed in Southeast Asia threatens the continued use of artemisinin-based combination therapy in endemic countries. Additionally, the diversity of chemical mode of action in the global portfolio of marketed antimalarials is extremely limited. Addressing the urgent need for the development of new antimalarials, a chemical class of potent antimalarial compounds with a novel mode of action was recently identified. Herein, the preclinical characterization of one of these compounds, ACT-451840, conducted in partnership with academic and industrial groups is presented. METHOD AND FINDINGS: The properties of ACT-451840 are described, including its spectrum of activities against multiple life cycle stages of the human malaria parasite Plasmodium falciparum (asexual and sexual) and Plasmodium vivax (asexual) as well as oral in vivo efficacies in two murine malaria models that permit infection with the human and the rodent parasites P. falciparum and Plasmodium berghei, respectively. In vitro, ACT-451840 showed a 50% inhibition concentration of 0.4 nM (standard deviation [SD]: ± 0.0 nM) against the drug-sensitive P. falciparum NF54 strain. The 90% effective doses in the in vivo efficacy models were 3.7 mg/kg against P. falciparum (95% confidence interval: 3.3-4.9 mg/kg) and 13 mg/kg against P. berghei (95% confidence interval: 11-16 mg/kg). ACT-451840 potently prevented male gamete formation from the gametocyte stage with a 50% inhibition concentration of 5.89 nM (SD: ± 1.80 nM) and dose-dependently blocked oocyst development in the mosquito with a 50% inhibitory concentration of 30 nM (range: 23-39). The compound's preclinical safety profile is presented and is in line with the published results of the first-in-man study in healthy male participants, in whom ACT-451840 was well tolerated. Pharmacokinetic/pharmacodynamic (PK/PD) modeling was applied using efficacy in the murine models (defined either as antimalarial activity or as survival) in relation to area under the concentration versus time curve (AUC), maximum observed plasma concentration (Cmax), and time above a threshold concentration. The determination of the dose-efficacy relationship of ACT-451840 under curative conditions in rodent malaria models allowed prediction of the human efficacious exposure. CONCLUSION: The dual activity of ACT-451840 against asexual and sexual stages of P. falciparum and the activity on P. vivax have the potential to meet the specific profile of a target compound that could replace the fast-acting artemisinin component and harbor additional gametocytocidal activity and, thereby, transmission-blocking properties. The fast parasite reduction ratio (PRR) and gametocytocidal effect of ACT-451840 were recently also confirmed in a clinical proof-of-concept (POC) study.


Subject(s)
Acrylamides/pharmacology , Antimalarials/pharmacology , Piperazines/pharmacology , Plasmodium falciparum/drug effects , Plasmodium vivax/drug effects , Acrylamides/pharmacokinetics , Animals , Antimalarials/pharmacokinetics , Artemisinins/pharmacology , Dose-Response Relationship, Drug , Female , Humans , Mice , Mice, Inbred NOD , Microbial Sensitivity Tests , Multidrug Resistance-Associated Proteins/metabolism , Piperazines/pharmacokinetics , Plasmodium berghei/drug effects
2.
ChemMedChem ; 11(18): 1995-2014, 2016 09 20.
Article in English | MEDLINE | ID: mdl-27471138

ABSTRACT

More than 40 % of the world's population is at risk of being infected with malaria. Most malaria cases occur in the countries of sub-Saharan Africa, Central and South America, and Asia. Resistance to standard therapy, including artemisinin combinations, is increasing. There is an urgent need for novel antimalarials with new mechanisms of action. In a phenotypic screen, we identified a series of phenylalanine-based compounds that exhibit antimalarial activity via a new and yet unknown mechanism of action. Our optimization efforts culminated in the selection of ACT-451840 [(S,E)-N-(4-(4-acetylpiperazin-1-yl)benzyl)-3-(4-(tert-butyl)phenyl)-N-(1-(4-(4-cyanobenzyl)piperazin-1-yl)-1-oxo-3-phenylpropan-2-yl)acrylamide] for clinical development. Herein we describe our optimization efforts from the screening hit to the potential drug candidate with respect to antiparasitic activity, drug metabolism and pharmacokinetics (DMPK) properties, and in vivo pharmacological efficacy.


Subject(s)
Acrylamides/pharmacology , Antimalarials/pharmacology , Drug Discovery , Malaria/drug therapy , Piperazines/pharmacology , Plasmodium falciparum/drug effects , Acrylamides/chemical synthesis , Acrylamides/chemistry , Antimalarials/chemical synthesis , Antimalarials/chemistry , Dose-Response Relationship, Drug , Molecular Structure , Parasitic Sensitivity Tests , Piperazines/chemical synthesis , Piperazines/chemistry , Structure-Activity Relationship
3.
Mol Microbiol ; 101(3): 381-93, 2016 08.
Article in English | MEDLINE | ID: mdl-27073104

ABSTRACT

Emerging resistance to first-line antimalarial combination therapies threatens malaria treatment and the global elimination campaign. Improved therapeutic strategies are required to protect existing drugs and enhance treatment efficacy. We report that the piperazine-containing compound ACT-451840 exhibits single-digit nanomolar inhibition of the Plasmodium falciparum asexual blood stages and transmissible gametocyte forms. Genome sequence analyses of in vitro-derived ACT-451840-resistant parasites revealed single nucleotide polymorphisms in pfmdr1, which encodes a digestive vacuole membrane-bound ATP-binding cassette transporter known to alter P. falciparum susceptibility to multiple first-line antimalarials. CRISPR-Cas9 based gene editing confirmed that PfMDR1 point mutations mediated ACT-451840 resistance. Resistant parasites demonstrated increased susceptibility to the clinical drugs lumefantrine, mefloquine, quinine and amodiaquine. Stage V gametocytes harboring Cas9-introduced pfmdr1 mutations also acquired ACT-451840 resistance. These findings reveal that PfMDR1 mutations can impart resistance to compounds active against asexual blood stages and mature gametocytes. Exploiting PfMDR1 resistance mechanisms provides new opportunities for developing disease-relieving and transmission-blocking antimalarials.


Subject(s)
Acrylamides/pharmacology , Antimalarials/pharmacology , Artemisinins/pharmacology , Clustered Regularly Interspaced Short Palindromic Repeats , Multidrug Resistance-Associated Proteins/metabolism , Piperazines/pharmacology , Plasmodium falciparum/drug effects , Plasmodium falciparum/genetics , ATP-Binding Cassette Transporters/genetics , ATP-Binding Cassette Transporters/metabolism , DNA, Protozoan/genetics , DNA, Protozoan/metabolism , Drug Resistance , Drug Synergism , Humans , Malaria, Falciparum/drug therapy , Malaria, Falciparum/parasitology , Multidrug Resistance-Associated Proteins/genetics , Plasmodium falciparum/metabolism , Point Mutation , Polymorphism, Single Nucleotide
4.
J Biol Chem ; 288(31): 22576-83, 2013 Aug 02.
Article in English | MEDLINE | ID: mdl-23754276

ABSTRACT

A representative of a new class of potent antimalarials with an unknown mode of action was recently described. To identify the molecular target of this class of antimalarials, we employed a photo-reactive affinity capture method to find parasite proteins specifically interacting with the capture compound in living parasitized cells. The capture reagent retained the antimalarial properties of the parent molecule (ACT-213615) and accumulated within parasites. We identified several proteins interacting with the capture compound and established a functional interaction between ACT-213615 and PfMDR1. We surmise that PfMDR1 may play a role in the antimalarial activity of the piperazine-containing compound ACT-213615.


Subject(s)
ATP Binding Cassette Transporter, Subfamily B, Member 1/physiology , Antimalarials/pharmacology , Plasmodium falciparum/physiology , Ultraviolet Rays , Animals
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