Login / Signup

Genetic architecture of artemisinin-resistant Plasmodium falciparum.

Olivo MiottoRoberto AmatoElizabeth A AshleyBronwyn MacInnisJacob Almagro-GarciaChanaki AmaratungaPharath LimDaniel MeadSamuel O OyolaMehul DhordaMallika ImwongCharles WoodrowMagnus ManskeJim StalkerEleanor DrurySusana CampinoLucas Amenga-EtegoThuy-Nhien Nguyen ThanhHien Tinh TranPascal RingwaldDelia BethellFrancois NostenAung Pyae PhyoSasithon PukrittayakameeKesinee ChotivanichChar Meng ChuorChea NguonSeila SuonSokunthea SrengPaul N NewtonMayfong MayxayManiphone KhanthavongBouasy HongvanthongYe HtutKay Thwe HanMyat Phone KyawMd Abul FaizCaterina I FanelloMarie OnyambokoOlugbenga A MokuoluChristopher G JacobShannon Takala-HarrisonChristopher V PloweNicholas P DayArjen M DondorpChris C A SpencerGilean McVeanRick M FairhurstNicholas J WhiteDominic P Kwiatkowski
Published in: Nature genetics (2015)
We report a large multicenter genome-wide association study of Plasmodium falciparum resistance to artemisinin, the frontline antimalarial drug. Across 15 locations in Southeast Asia, we identified at least 20 mutations in kelch13 (PF3D7_1343700) affecting the encoded propeller and BTB/POZ domains, which were associated with a slow parasite clearance rate after treatment with artemisinin derivatives. Nonsynonymous polymorphisms in fd (ferredoxin), arps10 (apicoplast ribosomal protein S10), mdr2 (multidrug resistance protein 2) and crt (chloroquine resistance transporter) also showed strong associations with artemisinin resistance. Analysis of the fine structure of the parasite population showed that the fd, arps10, mdr2 and crt polymorphisms are markers of a genetic background on which kelch13 mutations are particularly likely to arise and that they correlate with the contemporary geographical boundaries and population frequencies of artemisinin resistance. These findings indicate that the risk of new resistance-causing mutations emerging is determined by specific predisposing genetic factors in the underlying parasite population.
Keyphrases
  • plasmodium falciparum
  • multidrug resistant
  • emergency department
  • air pollution
  • clinical trial
  • heart failure
  • left ventricular
  • small molecule
  • structure activity relationship