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Published on: May 11, 2013
The Plasmodium Lactate/H+ Transporter PfFNT Is Essential and Druggable In Vivo
Heledd Davies1, Bärbel Bergmann2, Philipp Walloch3
1Signalling in Apicomplexan Parasites Laboratory, The Francis Crick Institute, London, United Kingdom.
Insights
Formate-nitrite transporters (FNTs) are essential for malaria parasite survival and represent a novel drug target. Inhibitors targeting PfFNT show potent antimalarial activity in vitro and in vivo, comparable to artesunate.
Area of Science:
- Parasitology
- Molecular Biology
- Drug Discovery
Background:
- Malaria parasites rely on a single transmembrane transporter for lactate export.
- This transporter belongs to the formate-nitrite transporter (FNT) family and is a potential drug target.
- Previous studies resolved the Plasmodium falciparum FNT (PfFNT) structure and identified inhibitors.
Purpose of the Study:
- To investigate the genetic plasticity and essentiality of PfFNT.
- To establish the in vivo druggability of PfFNT using mouse malaria models.
Main Methods:
- Genetic analysis of PfFNT mutational plasticity.
- Conditional knockout and mutation studies of the PfFNT gene.
- In vivo antimalarial activity testing in mouse models.
Main Results:
- Identified new resistance mutations (G21E, V196L) in PfFNT.
- PfFNT is essential for blood-stage parasite survival.
- PfFNT inhibitors demonstrated high potency in P. berghei and P. falciparum infected mice.
Conclusions:
- PfFNT is a validated drug target essential for malaria parasite blood-stage development.
- PfFNT inhibitors exhibit strong in vivo antimalarial activity, comparable to artesunate.
- These findings support the further development of PfFNT inhibitors as novel antimalarials.
Abstract:
Malaria parasites in the blood stage express a single transmembrane transport protein for the release of the glycolytic end product l-lactate/H+ from the cell. This transporter is a member of the strictly microbial formate-nitrite transporter (FNT) family and a novel putative drug target. Small, drug-like FNT inhibitors potently block lactate transport and kill Plasmodium falciparum parasites in culture. The protein structure of Plasmodium falciparum FNT (PfFNT) in complex with the inhibitor has been resolved and confirms its previously predicted binding site and its mode of action as a substrate analog. Here, we investigated the mutational plasticity and essentiality of the PfFNT target on a genetic level, and established its in vivo druggability using mouse malaria models. We found that, besides a previously identified PfFNT G107S resistance mutation, selection of parasites at 3 × IC50 (50% inhibitory concentration) gave rise to two new point mutations affecting inhibitor binding: G21E and V196L. Conditional knockout and mutation of the PfFNT gene showed essentiality in the blood stage, whereas no phenotypic defects in sexual development were observed. PfFNT inhibitors mainly targeted the trophozoite stage and exhibited high potency in P. berghei- and P. falciparum-infected mice. Their in vivo activity profiles were comparable to that of artesunate, demonstrating strong potential for the further development of PfFNT inhibitors as novel antimalarials.
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