Search bioRxiv⌕ Search

Biology subjects

Okitwi, M.

Publications and source records attributed to Okitwi, M..

4 recordsLinked to original sources

A Plasmodium falciparum PX1 haplotype is associated with reduced susceptibility to artemisinin and lumefantrine

Effective control of falciparum malaria depends on the sustained efficacy of frontline antimalarial drugs, particularly artemether-lumefantrine (AL), the most widely used therapy in Africa. However, the emergence of artemisinin partial resistance and reduced lumefantrine susceptibility in eastern Africa threaten malaria control and elimination. Robust genetic markers of decreased susceptibility to lumefantrine remain elusive, and our understanding of artemisinin resistance is incomplete. We report results of a Plasmodium falciparum genetic cross between a drug-sensitive line and a Ugandan strain exhibiting reduced susceptibility to dihydroartemisinin and lumefantrine. Targeted deep sequencing of progeny pools and 460 recombinant progeny clones derived under drug pressures revealed distinct haplotypic signatures. Drug-selection experiments identified genetic polymorphisms in Plasmodium falciparum px1, encoding a phosphoinositide-binding protein, as the strongest correlates of reduced susceptibility to dihydroartemisinin and lumefantrine. The PX1 PIN haplotype (L1222P, M1701I, D1705N) recently discovered in Ugandan parasites was highly enriched following dihydroartemisinin or lumefantrine treatment of pooled mixtures of genetically diverse Ugandan clinical isolates. This haplotype was associated with reduced susceptibility to dihydroartemisinin and lumefantrine, compared to wild-type sequence, in culture-adapted Ugandan P. falciparum lines. These results confirm that PX1 mutations were selected across geographically distinct Ugandan parasite backgrounds. Long-term competitive fitness assays demonstrated that PX1 mutations confer asexual blood-stage parasites with a growth advantage, potentially explaining a rapid rise of PX1 PIN alleles over the last two decades in Uganda. Overall, our data suggest the PX1 PIN haplotype is a robust marker of reduced AL susceptibility in African P. falciparum, enabling surveillance of emerging drug resistance.

microbiology↗

A novel locus associated with decreased susceptibility of Plasmodium falciparum to lumefantrine and dihydroartemisinin has emerged and spread in Uganda

Malaria control in Uganda is threatened by the emergence of artemisinin partial resistance and reduced lumefantrine susceptibility. To identify loci contributing to decreased drug susceptibility, we assessed signatures of selection in Ugandan whole-genome Plasmodium falciparum sequences. Extended shared haplotypes were seen for Kelch13 C469Y and A675V mutations, but the strongest signal of recent selection was centered on a segment of chromosome 7 encoding the phosphoinositide-binding protein (PX1, PF3D7_0720700). A haplotype, represented by three PX1 mutations (L1222P, M1701I, D1705N) and two deletions (designated PIN), was first seen in 2008 and rapidly increased, reaching prevalence >50% in northern Uganda by 2016 and eastern Uganda by 2023. PIN-carrying parasites showed significantly decreased ex vivo susceptibilities to lumefantrine, mefloquine and dihydroartemisinin. A parasite strain in which px1 was disrupted in vitro showed increased susceptibility to the three drugs. Thus, PX1 polymorphisms appear to impact on the susceptibilities of African malaria parasites to key drugs.

genomics↗

Identifying a next-generation antimalarial trioxolane in a landscape of artemisinin partial resistance

For over two decades, artemisinin-based combination therapy (ACT) has been the standard of care for the treatment of uncomplicated falciparum malaria. However, artemisinin partial resistance (ART-R) is now prevalent in Southeast Asia and has emerged in eastern Africa, threatening ACT efficacy. Mechanistically, ART-R results from an endocytosis defect that limits concentrations of host-derived free heme in the parasite digestive vacuole, allowing early ring-stage parasites to survive exposure to the artemisinin component of ACT. The artemisinin-inspired 1,2,4-trioxolane artefenomel exhibits an extended pharmacokinetic exposure profile that predicts efficacy against ART-R parasites. Unfortunately, the development of artefenomel was halted recently after almost a decade of clinical trials. Herein, we describe the discovery of RLA-4735 and its single-enantiomer form RLA-5764, next-generation antimalarial trioxolanes that exhibit excellent in vitro potency against Plasmodium falciparum and single-exposure efficacy in a murine P. berghei model, thus retaining many of the favorable pharmacokinetic and pharmacodynamic properties of artefenomel while markedly improving solubility and development potential. In P. falciparum samples collected from patients in Uganda in 2019 and 2023, ex vivo ring-stage survival assays revealed the emergence of the ART-R phenotype over this timeframe, and furthermore demonstrated markedly superior activity of artefenomel and RLA-4735 as compared to dihydroartemisinin (the active metabolite of artemisinin components of ACTs) against ART-R parasites. Overall, our findings suggest a role for next-generation trioxolanes in addressing ART-R, and present a potent new, artefenomel-adjacent chemotype with good potential to deliver new development candidates. Summary SentenceKlope et. al. described the discovery and in vivo characterization of antimalarial endoperoxides effective against artemisinin-resistant parasites as potential development candidates for uncomplicated, blood-stage malaria.

pharmacology and toxicology↗

Gametocyte production and transmission fitness of African and Asian Plasmodium falciparum isolates with differential susceptibility to artemisinins

The emergence of Plasmodium falciparum parasites partially resistant to artemisinins (ART-R) poses a significant threat to recent gains in malaria control. ART-R has been associated with PfKelch13 (K13) mutations, which differ in fitness costs. This study investigates the gametocyte production and transmission fitness of African and Asian P. falciparum isolates with different K13 genotypes across multiple mosquito species. We tested three ART-sensitive (ART-S) isolates (NF54, NF135, NF180) and three ART-R isolates (ARN1G, 3815, PAT-023) for sexual conversion and transmission to Anopheles stephensi, An. gambiae and An. coluzzii. ART-R levels were quantified in vitro using the Ring-stage Survival Assay (RSA), and the transmission-reducing effects of dihydroartemisinin (DHA) on mature gametocytes were assessed. Results showed that ART-S parasite lines consistently produced gametocytes and transmitted effectively in all three mosquito species. ART-R isolates showed variability: ARN1G maintained high transmission levels, whereas 3815 showed limited transmission potential despite higher sporozoite loads in An. coluzzii. The African ART-R isolate PAT-023 demonstrated low gametocyte commitment but was transmitted efficiently in both An. gambiae and An. coluzzii. DHA exposure reduced mosquito infectivity for all isolates, regardless of K13 genotype. These findings, based on a limited number of field isolates, suggest that ART-R parasites remain transmissible across different Anopheles species. However, ART-R does not appear to confer a direct transmission advantage. This study highlights the complexity of ART-R dynamics and underscores the need for further research to inform malaria control strategies in regions where ART-R parasites are circulating.

microbiology↗