Javascript must be enabled to continue!
Little Polymorphism at the K13 Propeller Locus in Worldwide Plasmodium falciparum Populations Prior to the Introduction of Artemisinin Combination Therapies
View through CrossRef
ABSTRACT
The emergence and spread of artemisinin-resistant
Plasmodium falciparum
is of huge concern for the global effort toward malaria control and elimination. Artemisinin resistance, defined as a delayed time to parasite clearance following administration of artemisinin, is associated with mutations in the
Pfkelch13
gene of resistant parasites. To date, as many as 60 nonsynonymous mutations have been identified in this gene, but whether these mutations have been selected by artemisinin usage or merely reflect natural polymorphism independent of selection is currently unknown. To clarify this, we sequenced the
Pfkelch13
propeller domain in 581 isolates collected before (420 isolates) and after (161 isolates) the implementation of artemisinin combination therapies (ACTs), from various regions of endemicity worldwide. Nonsynonymous mutations were observed in 1% of parasites isolated prior to the introduction of ACTs. Frequencies of mutant isolates, nucleotide diversity, and haplotype diversity were significantly higher in the parasites isolated from populations exposed to artemisinin than in those from populations that had not been exposed to the drug. In the artemisinin-exposed population, a significant excess of dN compared to dS was observed, suggesting the presence of positive selection. In contrast, pairwise comparison of dN and dS and the McDonald and Kreitman test indicate that purifying selection acts on the
Pfkelch13
propeller domain in populations not exposed to ACTs. These population genetic analyses reveal a low baseline of
Pfkelch13
polymorphism, probably due to purifying selection in the absence of artemisinin selection. In contrast, various
Pfkelch13
mutations have been selected under artemisinin pressure.
American Society for Microbiology
Toshihiro Mita
Richard Culleton
Nobuyuki Takahashi
Masatoshi Nakamura
Takahiro Tsukahara
Carol W. Hunja
Zin Zayar Win
Wah Win Htike
Aung S. Marma
Lek Dysoley
Mathieu Ndounga
Mawuli Dzodzomenyo
Willis S. Akhwale
Jun Kobayashi
Haruki Uemura
Akira Kaneko
Francis Hombhanje
Marcelo U. Ferreira
Anders Björkman
Hiroyoshi Endo
Jun Ohashi
Title: Little Polymorphism at the K13 Propeller Locus in Worldwide Plasmodium falciparum Populations Prior to the Introduction of Artemisinin Combination Therapies
Description:
ABSTRACT
The emergence and spread of artemisinin-resistant
Plasmodium falciparum
is of huge concern for the global effort toward malaria control and elimination.
Artemisinin resistance, defined as a delayed time to parasite clearance following administration of artemisinin, is associated with mutations in the
Pfkelch13
gene of resistant parasites.
To date, as many as 60 nonsynonymous mutations have been identified in this gene, but whether these mutations have been selected by artemisinin usage or merely reflect natural polymorphism independent of selection is currently unknown.
To clarify this, we sequenced the
Pfkelch13
propeller domain in 581 isolates collected before (420 isolates) and after (161 isolates) the implementation of artemisinin combination therapies (ACTs), from various regions of endemicity worldwide.
Nonsynonymous mutations were observed in 1% of parasites isolated prior to the introduction of ACTs.
Frequencies of mutant isolates, nucleotide diversity, and haplotype diversity were significantly higher in the parasites isolated from populations exposed to artemisinin than in those from populations that had not been exposed to the drug.
In the artemisinin-exposed population, a significant excess of dN compared to dS was observed, suggesting the presence of positive selection.
In contrast, pairwise comparison of dN and dS and the McDonald and Kreitman test indicate that purifying selection acts on the
Pfkelch13
propeller domain in populations not exposed to ACTs.
These population genetic analyses reveal a low baseline of
Pfkelch13
polymorphism, probably due to purifying selection in the absence of artemisinin selection.
In contrast, various
Pfkelch13
mutations have been selected under artemisinin pressure.
Related Results
Novel Plasmodium falciparum K13 Gene Polymorphisms from Kisii County, Kenya during an era of Artemisinin-Based Combination Therapies (ACTs) deployment
Novel Plasmodium falciparum K13 Gene Polymorphisms from Kisii County, Kenya during an era of Artemisinin-Based Combination Therapies (ACTs) deployment
Abstract
Background
Currently, Chemotherapy stands out as the major malaria intervention strategy, however, antimalarial resistance may hamper global elimination programs....
Evaluating the Binding Interactions between Artemisinin and Kelch 13 Protein Mutants Via Molecular Modelling and Docking Studies
Evaluating the Binding Interactions between Artemisinin and Kelch 13 Protein Mutants Via Molecular Modelling and Docking Studies
Malaria is a parasitic infection caused by protozoan parasites from the genus Plasmodium. Over the years, various concerns have arisen regarding the efficacy in treating malaria ca...
Clinical and molecular surveillance of artemisinin resistant falciparum malaria in Myanmar (2009–2013)
Clinical and molecular surveillance of artemisinin resistant falciparum malaria in Myanmar (2009–2013)
Abstract
Background
Emergence of artemisinin-resistant malaria in Southeast Asian countries threatens the global control of malaria. Although K13 ke...
Artemisinin-resistant malaria
Artemisinin-resistant malaria
SUMMARY
The artemisinin antimalarials are the cornerstone of current malaria treatment. The development of artemisinin resistance in
Plasmodium f...
Prevalence of Plasmodium Species among Humans and Monkeys at Mole National Park in Northern Ghana
Prevalence of Plasmodium Species among Humans and Monkeys at Mole National Park in Northern Ghana
Malaria is one of the most severe public health problems in Ghana. In developing countries such as Ghana, with high of prevalence of malaria, the procedures for diagnoses and detec...
Development of a Novel Cytochrome b Real-Time PCR Assay for Identification of Plasmodium malariae
Development of a Novel Cytochrome b Real-Time PCR Assay for Identification of Plasmodium malariae
This article aims to establish a novel cytochrome b real-time PCR assay using Taqman probe for identification of P. malariae and its discrimination from other Plasmodium human infe...
Genetic features of P. falciparum parasites collected in 2012-2016 and anti-malaria resistance along China-Myanmar border
Genetic features of P. falciparum parasites collected in 2012-2016 and anti-malaria resistance along China-Myanmar border
Abstract
BackgroundThe therapeutic efficacy study (TES) of Dihydroartemisinin-Piperaquine (DHA-PIP) for uncomplicated P.falciparum patients had implemented during 2012-2016...
A
Plasmodium falciparum
redox survival mechanism licenses killing by artemisinins
A
Plasmodium falciparum
redox survival mechanism licenses killing by artemisinins
Abstract
Mutations in
Plasmodium falciparum
Kelch13 (K13) confer artemisinin resistance (ART-R) which threate...

