During the intraerythrocytic asexual cycle malaria parasites acquire nutrients and other solutes through a broad selectivity channel localized at the membrane of the infected erythrocyte termed the plasmodial surface anion channel (PSAC). The protein product of the Plasmodium falciparum clonally variant clag3.1 and clag3.2 genes determines PSAC activity. Switches in the expression of clag3 genes, which are regulated by epigenetic mechanisms, are associated with changes in PSAC-dependent permeability that can result in resistance to compounds toxic for the parasite, such as blasticidin S. Here, we investigated whether other antimalarial drugs require CLAG3 to reach their intracellular target and consequently are prone to parasite resistance ...
Widespread Plasmodium falciparum resistance to first-line antimalarials underscores the vital need t...
The human malaria parasite Plasmodium falciparum increases red blood cell membrane permeability duri...
Plasmodium parasites, the causative agent of malaria infections, rapidly evolve drug resistance and ...
During the intraerythrocytic asexual cycle malaria parasites acquire nutrients and other solutes thr...
[eng] Malaria is responsible of almost half a million deaths every year. Currently, campaigns for t...
ABSTRACT The plasmodial surface anion channel (PSAC) increases erythrocyte permeability to many solu...
SummaryDevelopment of malaria parasites within vertebrate erythrocytes requires nutrient uptake at t...
ABSTRACT Malaria parasites increase host erythrocyte permeability to ions and nutrients via a broad-...
The plasmodial surface anion channel (PSAC) increases eryth-rocyte permeability to many solutes in m...
Malaria parasites activate a broad-selectivity ion channel on their host erythrocyte membrane to obt...
Erythrocytes infected with malaria parasites have increased permeability to ions and nutrients, as m...
AbstractErythrocytes infected with malaria parasites have increased permeability to various solutes....
The plasmodial surface anion channel mediates uptake of nutrients and other solutes into erythrocyte...
Background.: Many genes of the malaria parasite Plasmodium falciparum show clonally...
The plasmodial surface anion channel mediates uptake of nutrients and other solutes into erythrocyte...
Widespread Plasmodium falciparum resistance to first-line antimalarials underscores the vital need t...
The human malaria parasite Plasmodium falciparum increases red blood cell membrane permeability duri...
Plasmodium parasites, the causative agent of malaria infections, rapidly evolve drug resistance and ...
During the intraerythrocytic asexual cycle malaria parasites acquire nutrients and other solutes thr...
[eng] Malaria is responsible of almost half a million deaths every year. Currently, campaigns for t...
ABSTRACT The plasmodial surface anion channel (PSAC) increases erythrocyte permeability to many solu...
SummaryDevelopment of malaria parasites within vertebrate erythrocytes requires nutrient uptake at t...
ABSTRACT Malaria parasites increase host erythrocyte permeability to ions and nutrients via a broad-...
The plasmodial surface anion channel (PSAC) increases eryth-rocyte permeability to many solutes in m...
Malaria parasites activate a broad-selectivity ion channel on their host erythrocyte membrane to obt...
Erythrocytes infected with malaria parasites have increased permeability to ions and nutrients, as m...
AbstractErythrocytes infected with malaria parasites have increased permeability to various solutes....
The plasmodial surface anion channel mediates uptake of nutrients and other solutes into erythrocyte...
Background.: Many genes of the malaria parasite Plasmodium falciparum show clonally...
The plasmodial surface anion channel mediates uptake of nutrients and other solutes into erythrocyte...
Widespread Plasmodium falciparum resistance to first-line antimalarials underscores the vital need t...
The human malaria parasite Plasmodium falciparum increases red blood cell membrane permeability duri...
Plasmodium parasites, the causative agent of malaria infections, rapidly evolve drug resistance and ...