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Updated: Mar 14, 2026

Author Spotlight: Advancing Antibiotic Resistance Research Using an Efflux-Deficient Bacterial Strain and a Single-Copy Gene Expression System
Published on: January 5, 2024
UDP-galactose and acetyl-CoA transporters as Plasmodium multidrug resistance genes
Michelle Yi-Xiu Lim1,2, Gregory LaMonte3, Marcus C S Lee4,5
1Novartis Institute for Tropical Diseases, 138670 Singapore.
Abstract:
A molecular understanding of drug resistance mechanisms enables surveillance of the effectiveness of new antimicrobial therapies during development and deployment in the field. We used conventional drug resistance selection as well as a regime of limiting dilution at early stages of drug treatment to probe two antimalarial imidazolopiperazines, KAF156 and GNF179. The latter approach permits the isolation of low-fitness mutants that might otherwise be out-competed during selection. Whole-genome sequencing of 24 independently derived resistant Plasmodium falciparum clones revealed four parasites with mutations in the known cyclic amine resistance locus (pfcarl) and a further 20 with mutations in two previously unreported P. falciparum drug resistance genes, an acetyl-CoA transporter (pfact) and a UDP-galactose transporter (pfugt). Mutations were validated both in vitro by CRISPR editing in P. falciparum and in vivo by evolution of resistant Plasmodium berghei mutants. Both PfACT and PfUGT were localized to the endoplasmic reticulum by fluorescence microscopy. As mutations in pfact and pfugt conveyed resistance against additional unrelated chemical scaffolds, these genes are probably involved in broad mechanisms of antimalarial drug resistance.
Insights
Researchers identified new drug resistance genes in Plasmodium falciparum, including acetyl-CoA transporter (pfact) and UDP-galactose transporter (pfugt), crucial for understanding antimalarial drug effectiveness.
Area of Science:
- Molecular biology
- Parasitology
- Drug discovery
Background:
- Understanding antimalarial drug resistance is vital for developing effective therapies.
- Imidazolopiperazines like KAF156 and GNF179 are novel antimalarial candidates.
Purpose of the Study:
- To investigate the molecular mechanisms of resistance to KAF156 and GNF179 in Plasmodium falciparum.
- To identify novel genes conferring resistance to antimalarial drugs.
Main Methods:
- Conventional drug resistance selection and limiting dilution methods were employed.
- Whole-genome sequencing of resistant Plasmodium falciparum clones.
- CRISPR editing in Plasmodium falciparum and evolution of Plasmodium berghei mutants for validation.
Main Results:
- Four resistant clones had mutations in the known pfcarl locus.
- Twenty resistant clones exhibited mutations in two novel genes: pfact and pfugt.
- PfACT and PfUGT proteins were localized to the endoplasmic reticulum.
Conclusions:
- pfact and pfugt are novel Plasmodium falciparum drug resistance genes.
- Mutations in pfact and pfugt confer resistance to multiple unrelated antimalarial drug scaffolds.
- These genes are likely involved in broad antimalarial drug resistance mechanisms.
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