AbstractErythrocytes infected with malaria parasites have increased permeability to ions and various nutrient solutes, mediated by a parasite ion channel known as the plasmodial surface anion channel (PSAC). The parasite clag3 gene family encodes PSAC activity, but there may also be additional unidentified components of this channel. Consistent with a lack of clag3 homology to genes of other ion channels, PSAC has a number of unusual functional properties. Here, we report that PSAC exhibits an unusual form of voltage-dependent inactivation. Inactivation was readily detected in the whole-cell patch-clamp configuration after steps to negative membrane potentials. The fraction of current that inactivates, its kinetics, and the rate of recovery...
The plasmodial surface anion channel mediates uptake of nutrients and other solutes into erythrocyte...
The plasmodial surface anion channel mediates uptake of nutrients and other solutes into erythrocyte...
Intraerythrocytic growth of the human malaria parasite Plasmodium falciparum depends on delivery of ...
AbstractErythrocytes infected with malaria parasites have increased permeability to ions and various...
AbstractErythrocytes infected with malaria parasites have increased permeability to various solutes....
SummaryDevelopment of malaria parasites within vertebrate erythrocytes requires nutrient uptake at t...
The plasmodial surface anion channel (PSAC) increases eryth-rocyte permeability to many solutes in m...
ABSTRACT The plasmodial surface anion channel (PSAC) increases erythrocyte permeability to many solu...
Erythrocytes infected with malaria parasites have increased permeability to ions and nutrients, as m...
ABSTRACT Malaria parasites increase host erythrocyte permeability to ions and nutrients via a broad-...
Malaria parasites activate a broad-selectivity ion channel on their host erythrocyte membrane to obt...
Malaria parasites grow within vertebrate erythrocytes and increase host cell permeability to access ...
The human malaria parasite Plasmodium falciparum increases red blood cell membrane permeability duri...
Parasite infection can lead to alterations in the permeability of host plasma membranes. Presented h...
Plasmodium falciparum alters the permeability of its host erythrocyte plasma membrane, inducing the ...
The plasmodial surface anion channel mediates uptake of nutrients and other solutes into erythrocyte...
The plasmodial surface anion channel mediates uptake of nutrients and other solutes into erythrocyte...
Intraerythrocytic growth of the human malaria parasite Plasmodium falciparum depends on delivery of ...
AbstractErythrocytes infected with malaria parasites have increased permeability to ions and various...
AbstractErythrocytes infected with malaria parasites have increased permeability to various solutes....
SummaryDevelopment of malaria parasites within vertebrate erythrocytes requires nutrient uptake at t...
The plasmodial surface anion channel (PSAC) increases eryth-rocyte permeability to many solutes in m...
ABSTRACT The plasmodial surface anion channel (PSAC) increases erythrocyte permeability to many solu...
Erythrocytes infected with malaria parasites have increased permeability to ions and nutrients, as m...
ABSTRACT Malaria parasites increase host erythrocyte permeability to ions and nutrients via a broad-...
Malaria parasites activate a broad-selectivity ion channel on their host erythrocyte membrane to obt...
Malaria parasites grow within vertebrate erythrocytes and increase host cell permeability to access ...
The human malaria parasite Plasmodium falciparum increases red blood cell membrane permeability duri...
Parasite infection can lead to alterations in the permeability of host plasma membranes. Presented h...
Plasmodium falciparum alters the permeability of its host erythrocyte plasma membrane, inducing the ...
The plasmodial surface anion channel mediates uptake of nutrients and other solutes into erythrocyte...
The plasmodial surface anion channel mediates uptake of nutrients and other solutes into erythrocyte...
Intraerythrocytic growth of the human malaria parasite Plasmodium falciparum depends on delivery of ...