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1.
Sci Transl Med ; 14(667): eabo7219, 2022 10 19.
Article in English | MEDLINE | ID: mdl-36260689

ABSTRACT

Compounds acting on multiple targets are critical to combating antimalarial drug resistance. Here, we report that the human "mammalian target of rapamycin" (mTOR) inhibitor sapanisertib has potent prophylactic liver stage activity, in vitro and in vivo asexual blood stage (ABS) activity, and transmission-blocking activity against the protozoan parasite Plasmodium spp. Chemoproteomics studies revealed multiple potential Plasmodium kinase targets, and potent inhibition of Plasmodium phosphatidylinositol 4-kinase type III beta (PI4Kß) and cyclic guanosine monophosphate-dependent protein kinase (PKG) was confirmed in vitro. Conditional knockdown of PI4Kß in ABS cultures modulated parasite sensitivity to sapanisertib, and laboratory-generated P. falciparum sapanisertib resistance was mediated by mutations in PI4Kß. Parasite metabolomic perturbation profiles associated with sapanisertib and other known PI4Kß and/or PKG inhibitors revealed similarities and differences between chemotypes, potentially caused by sapanisertib targeting multiple parasite kinases. The multistage activity of sapanisertib and its in vivo antimalarial efficacy, coupled with potent inhibition of at least two promising drug targets, provides an opportunity to reposition this pyrazolopyrimidine for malaria.


Subject(s)
Antimalarials , Plasmodium , Animals , Humans , Antimalarials/pharmacology , Antimalarials/therapeutic use , Plasmodium falciparum , MTOR Inhibitors , 1-Phosphatidylinositol 4-Kinase , Guanosine Monophosphate , Life Cycle Stages , TOR Serine-Threonine Kinases , Sirolimus , Mammals
2.
ACS Cent Sci ; 2(10): 687-701, 2016 Oct 26.
Article in English | MEDLINE | ID: mdl-27800551

ABSTRACT

The development of new antimalarial compounds remains a pivotal part of the strategy for malaria elimination. Recent large-scale phenotypic screens have provided a wealth of potential starting points for hit-to-lead campaigns. One such public set is explored, employing an open source research mechanism in which all data and ideas were shared in real time, anyone was able to participate, and patents were not sought. One chemical subseries was found to exhibit oral activity but contained a labile ester that could not be replaced without loss of activity, and the original hit exhibited remarkable sensitivity to minor structural change. A second subseries displayed high potency, including activity within gametocyte and liver stage assays, but at the cost of low solubility. As an open source research project, unexplored avenues are clearly identified and may be explored further by the community; new findings may be cumulatively added to the present work.

3.
Antimicrob Agents Chemother ; 60(3): 1430-7, 2015 Dec 14.
Article in English | MEDLINE | ID: mdl-26666931

ABSTRACT

Malaria remains a major global health problem, with more than half of the world population at risk of contracting the disease and nearly a million deaths each year. Here, we report the discovery of inhibitors that target multiple stages of malaria parasite growth. To identify these inhibitors, we took advantage of the Tres Cantos Antimalarial Compound Set (TCAMS) small-molecule library, which is comprised of diverse and potent chemical scaffolds with activities against the blood stage of the malaria parasite, and investigated their effects against the elusive liver stage of the malaria parasite using a forward chemical screen. From a screen of nearly 14,000 compounds, we identified and confirmed 103 compounds as dual-stage malaria inhibitors. Interestingly, these compounds show preferential inhibition of parasite growth in liver- versus blood-stage malaria parasite assays, highlighting the drug susceptibility of this parasite form. Mode-of-action studies were completed using genetically modified and drug-resistant Plasmodium parasite strains. While we identified some compound targets as classical antimalarial pathways, such as the mitochondrial electron transport chain through cytochrome bc1 complex inhibition or the folate biosynthesis pathway, most compounds induced parasite death through as yet unknown mechanisms of action. Importantly, the identification of new chemotypes with different modes of action in killing Plasmodium parasites represents a promising opportunity for probing essential and novel molecular processes that remain to be discovered. The chemical scaffolds identified with activity against drug-resistant Plasmodium parasites represent starting points for dual-stage antimalarial development to surmount the threat of malaria parasite drug resistance.


Subject(s)
Antimalarials/pharmacology , Drug Evaluation, Preclinical/methods , Plasmodium berghei/drug effects , Plasmodium falciparum/drug effects , Small Molecule Libraries/pharmacology , Animals , Animals, Genetically Modified , Anopheles/parasitology , Dihydroorotate Dehydrogenase , Hep G2 Cells/drug effects , Hep G2 Cells/parasitology , Humans , Molecular Targeted Therapy/methods , Oxidoreductases Acting on CH-CH Group Donors/genetics , Oxidoreductases Acting on CH-CH Group Donors/metabolism , Plasmodium falciparum/genetics , Plasmodium falciparum/metabolism
4.
Proc Natl Acad Sci U S A ; 111(2): 799-804, 2014 Jan 14.
Article in English | MEDLINE | ID: mdl-24381157

ABSTRACT

Drug resistance emerges in an ecological context where fitness costs restrict the diversity of escape pathways. These pathways are targets for drug discovery, and here we demonstrate that we can identify small-molecule inhibitors that differentially target resistant parasites. Combining wild-type and mutant-type inhibitors may prevent the emergence of competitively viable resistance. We tested this hypothesis with a clinically derived chloroquine-resistant (CQ(r)) malaria parasite and with parasites derived by in vitro selection with Plasmodium falciparum dihydroorotate dehydrogenase (PfDHODH) inhibitors. We screened a chemical library against CQ(s) and CQ(r) lines and discovered a drug-like compound (IDI-3783) that was potent only in the CQ(r) line. Surprisingly, in vitro selection of Plasmodium falciparum resistant to IDI-3783 restored CQ sensitivity, thereby indicating that CQ might once again be useful as a malaria therapy. In parallel experiments, we selected P. falciparum lines resistant to structurally unrelated PfDHODH inhibitors (Genz-666136 and DSM74). Both selections yielded resistant lines with the same point mutation in PfDHODH:E182D. We discovered a compound (IDI-6273) more potent against E182D than wild-type parasites. Selection of the E182D mutant with IDI-6273 yielded a reversion to the wild-type protein sequence and phenotype although the nucleotide sequence was different. Importantly, selection with a combination of Genz-669178, a wild-type PfDHODH inhibitor, and IDI-6273, a mutant-selective PfDHODH inhibitor, did not yield resistant parasites. These two examples demonstrate that the compromise between resistance and evolutionary fitness can be exploited to design therapies that prevent the emergence and spread of resistant organisms.


Subject(s)
Chloroquine/pharmacology , Drug Discovery/methods , Drug Resistance/genetics , Genetic Fitness/genetics , Malaria/drug therapy , Plasmodium falciparum/genetics , Analysis of Variance , Base Sequence , Dihydroorotate Dehydrogenase , Drug Evaluation, Preclinical , Genome/genetics , Molecular Sequence Data , Oxidoreductases Acting on CH-CH Group Donors/antagonists & inhibitors , Oxidoreductases Acting on CH-CH Group Donors/genetics , Point Mutation/genetics , Pyrimidines , Sequence Analysis, DNA , Small Molecule Libraries , Triazoles
5.
J Med Chem ; 56(11): 4811-5, 2013 Jun 13.
Article in English | MEDLINE | ID: mdl-23701465

ABSTRACT

We present a novel series of quinolin-4(1H)-imines as dual-stage antiplasmodials, several-fold more active than primaquine in vitro against Plasmodium berghei liver stage. Among those, compounds 5g and 5k presented low nanomolar IC50 values. The compounds are metabolically stable and modulate several drug targets. These results emphasize the value of quinolin-4(1H)-imines as a new chemotype and their suitable properties for further drug development.


Subject(s)
Antimalarials/chemical synthesis , Imines/chemical synthesis , Liver/drug effects , Malaria/drug therapy , Quinolines/chemical synthesis , Antimalarials/chemistry , Antimalarials/pharmacology , Cell Line, Tumor , Humans , Imines/chemistry , Imines/pharmacology , Liver/parasitology , Parasitic Sensitivity Tests , Plasmodium berghei/drug effects , Plasmodium falciparum/drug effects , Quinolines/chemistry , Quinolines/pharmacology , Structure-Activity Relationship
6.
J Infect Dis ; 205(8): 1278-86, 2012 Apr 15.
Article in English | MEDLINE | ID: mdl-22396598

ABSTRACT

Plasmodium parasites undergo a clinically silent and obligatory developmental phase in the host's liver cells before they are able to infect erythrocytes and cause malaria symptoms. To overcome the scarcity of compounds targeting the liver stage of malaria, we screened a library of 1037 existing drugs for their ability to inhibit Plasmodium hepatic development. Decoquinate emerged as the strongest inhibitor of Plasmodium liver stages, both in vitro and in vivo. Furthermore, decoquinate kills the parasite's replicative blood stages and is active against developing gametocytes, the forms responsible for transmission. The drug acts by selectively and specifically inhibiting the parasite's mitochondrial bc(1) complex, with little cross-resistance with the antimalarial drug atovaquone. Oral administration of a single dose of decoquinate effectively prevents the appearance of disease, warranting its exploitation as a potent antimalarial compound.


Subject(s)
Antimalarials/pharmacology , Hepatocytes/parasitology , Malaria/drug therapy , Malaria/parasitology , Plasmodium/drug effects , Animals , Atovaquone/pharmacology , Cell Line, Tumor , Decoquinate/pharmacology , Drug Evaluation, Preclinical/methods , Humans , Mitochondria/drug effects , Mitochondria/metabolism , Models, Molecular , Molecular Structure , Protein Conformation
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