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High prevalence of Pfcrt 76T and Pfmdr1 N86 genotypes in malaria infected patients attending health facilities in East Shewa zone, Oromia Regional State, Ethiopia.

BACKGROUND: Plasmodium falciparum resistance to series of anti-malarial drugs is a major challenge in efforts to control and/or eliminate malaria globally. In 1998, following the widespread of chloroquine (CQ) resistant P. falciparum, Ethiopia switched from CQ to sulfadoxine-pyrimethamine (SP) and subsequently in 2004 from SP to artemether-lumefantrine (AL) for the treatment of uncomplicated falciparum malaria. Data on the prevalence of CQ resistance markers after more than two decades of its removal is important to map the selection pressure behind the targets codons of interest. The present study was conducted to determine the prevalence of mutations in Pfcrt K76T and Pfmdr1 N86Y codons among malaria-infected patients from Adama, Olenchiti and Metehara sites of East Shewa zone, Oromia Regional State, Ethiopia. METHODS: Finger-prick whole blood samples were collected on 3MM Whatman ® filter papers from a total of 121 microscopically confirmed P. falciparum infected patients. Extraction of parasite DNA was done by Chelex-100 method from dried blood spot (DBS). Genomic DNA template was used to amplify Pfcrt K76T and Pfmdr1 N86Y codons by nested PCR. Nested PCR products were subjected to Artherobacter protophormiae-I (APoI) restriction enzyme digestion to determine mutations at codons 76 and 86 of Pfcrt and Pfmdr1 genes, respectively. RESULTS: Of 83 P. falciparum isolates successfully genotyped for Pfcrt K76T, 91.6% carried the mutant genotypes (76T). The prevalence of Pfcrt 76T was 95.7%, 92.5% and 84.5% in Adama, Metehara and Olenchiti, respectively. The prevalence of Pfcrt 76T mutations in three of the study sites showed no statistical significance difference (χ2 = 1.895; P = 0.388). On the other hand, of the 80 P. falciparum samples successfully amplified for Pfmdr1, all carried the wild-type genotypes (Pfmdr1 N86). CONCLUSION: Although CQ officially has been ceased for the treatment of falciparum malaria for more than two decades in Ethiopia, greater proportions of P. falciparum clinical isolates circulating in the study areas carry the mutant 76T genotypes indicating the presence of indirect CQ pressure in the country. However, the return of Pfmdr1 N86 wild-type allele may be favoured by the use of AL for the treatment of uncomplicated falciparum malaria.

Antimalarials

Artemether-lumefantrine for the treatment of Plasmodium falciparum malaria in Laos: a therapeutic efficacy study coupled with genomic and in vitro phenotypic analyses.

BACKGROUND: Artemisinin-based combination therapies (ACTs) have played a crucial role in decreasing the impact of malaria worldwide. Since 2005, artemether-lumefantrine (AL) has been the main first-line treatment for uncomplicated Plasmodium falciparum malaria in Laos. Herein, we aimed to study the efficacy of AL in the context of malaria elimination in Laos. METHODS: Between Aug 1, 2019, and June 11, 2023, AL efficacy was evaluated in four provinces of southern Laos: Attapeu, Champassack, Salavan, and Savannakhet. Adults and children (aged 1-60 years) with microscopically confirmed P falciparum malaria received oral AL twice a day for 3 days, with follow-up on days 7, 14, 21, and 28. The primary outcome was PCR-adjusted adequate clinical and parasitological response (ACPR) by day 28. Resistance to dihydroartemisinin (DHA) and lumefantrine (LM) was assessed by an in vitro phenotypic analysis, and mutations in P falciparum kelch13 (pfkelch13), P falciparum multidrug resistance 1 (pfmdr1), P falciparum plasmepsin 2 (pfpm2), and P falciparum chloroquine resistant transporter (pfcrt) were characterised in parasites collected from enrolled patients. Safety outcomes included the frequency and nature of adverse events and serious adverse events. FINDINGS: A total of 198 patients (median age 16 years [IQR 10-28]; 124 [63%] male and 74 [37%] female) were initially enrolled, of whom three were lost to follow-up, resulting in 195 patients who received the 3-day AL regimen. At day 28, the PCR-adjusted ACPR was 96% (95% CI 92-98), with a treatment failure rate of 2% (1-5) and a reinfection rate of 2% (1-5). Among the four PCR-confirmed recrudescent isolates, one showed markedly reduced LM susceptibility (LM 50% inhibitory concentration [IC50] 59·9 nM, 2·5 times higher than the median IC50 of other isolates) and high artemisinin resistance in vitro (ring-stage survival survival rate 35·8%), which was associated with the pfkelch13 R539T mutation and day-3 microscopy-positive parasitaemia. Among 190 isolates with successfully determined pfkelch13 sequencing, nine (5%) carried the pfkelch13 mutation R539T and 43 (23%) carried the C580Y mutation, and both were associated with day-3 microscopy-positive parasitaemia (p=0·044). No amplification of pfmdr1 or pfpm2, nor any mutations in pfmdr1 and pfcrt, were associated with treatment failure. INTERPRETATION: Our findings indicate the potential emergence of LM resistance in Laos. Although AL remains efficacious, vigilance for decreasing efficacy and close monitoring of LM efficacy should be considered to support the country's goal of eliminating malaria by 2030. Importantly, none of the known pfmdr1 or pfcrt haplotypes were uniquely associated with treatment failure, including the isolate with the highest LM IC50, underscoring the need to identify reliable molecular markers for LM resistance. FUNDING: Bill and Melinda Gates Foundation and The Global Fund.

Humans

Molecular mechanisms underlying drug resistance in protozoan parasites: emerging mechanisms and therapeutic perspectives.

Protozoan parasitic infections, including malaria, leishmaniasis, and human African trypanosomiasis, remain major global public health challenges. In the absence of highly effective vaccines, disease control relies primarily on chemotherapy; however, the emergence and spread of drug-resistant parasite populations increasingly threaten treatment efficacy. This review synthesizes current evidence on the molecular mechanisms underlying drug resistance in Plasmodium, Leishmania, and Trypanosoma species through a systematic analysis of literature. The review identifies four interconnected mechanisms that drive the evolution of drug resistance. First, altered drug transport enables parasites to regulate intracellular drug concentrations through mutations, loss, or amplification of membrane transporters, including PfCRT in Plasmodium and AQP2 in Trypanosoma brucei. Second, target modification and genomic plasticity promote resistance through point mutations in drug targets, such as dhfr and dhps in Plasmodium, while kinetoplastids, particularly Leishmania, exploit extensive genomic plasticity, including aneuploidy, gene amplification, and translational reprogramming, to facilitate rapid adaptation under drug pressure. Third, metabolic reprogramming enhances parasite survival by increasing intracellular thiol production, strengthening antioxidant defense systems, and reshaping central carbon and lipid metabolism to mitigate drug-induced stress. Finally, stress response and persistence mechanisms enable subpopulations of parasites to enter dormant, persister-like states characterized by reduced metabolic activity and slowed proliferation, thereby evading both host immune responses and chemotherapeutic agents. Collectively, these findings demonstrate that drug resistance is a dynamic, multifactorial evolutionary process rather than a single molecular event. Addressing this growing challenge requires integrating genomic surveillance, molecular diagnostics, mathematical modeling of resistance transmission, and mechanistic insights into parasite persistence into future drug discovery and disease control strategies. Such an integrated approach is essential for improving the durability of antiprotozoal therapies and advancing global efforts to control neglected protozoan diseases.

antiprotozoal therapy