The malaria agent Plasmodium falciparum is predicted to export a "secretome" of several hundred proteins to remodel the host erythrocyte. Prediction of protein export is based on the presence of an ER-type signal sequence and a downstream Host-Targeting (HT) motif (which is similar to, but distinct from, the closely related Plasmodium Export Element [PEXEL]). Previous attempts to determine the entire secretome, using either the HT-motif or the PEXEL, have yielded large sets of proteins, which have not been comprehensively tested. We present here an expanded secretome that is optimized for both P. falciparum signal sequences and the HT-motif. From the most conservative of these three secretome predictions, we identify 11 proteins that are pr...
A major part of virulence for Plasmodium falciparum malaria infection, the most lethal parasitic dis...
A major part of virulence for Plasmodium falciparum malaria infection, the most lethal parasitic dis...
When in their human hosts, malaria parasites spend most of their time housed within vacuoles inside ...
The malaria agent <i>Plasmodium falciparum</i> is predicted to export a "secretome" of s...
To establish infection in the host, malaria parasites export remodeling and virulence proteins into ...
Malaria parasites secrete proteins across the vacuolar membrane into the erythrocyte, inducing modif...
Erythrocytes are extensively remodelled by the malaria parasite following invasion of the cell. Plas...
BACKGROUND: The apicomplexan parasite Plasmodium falciparum causes the most severe form of malaria i...
Malaria parasites actively remodel the infected red blood cell (irbc) by exporting proteins into the...
Plasmodium falciparum is the protozoan parasite that causes the most virulent of human malarias. The...
In order to survive and promote its virulence the malaria parasite must export hundreds of its prote...
Background: The apicomplexan parasite Plasmodium falciparum causes the most severe form of malari...
SummaryA major part of virulence for Plasmodium falciparum malaria infection, the most lethal parasi...
Plasmodium falciparum is the causative agent of the most devastating human malaria worldwide. The di...
The intracellular survival of Plasmodium falciparum within human erythrocytes is dependent on export...
A major part of virulence for Plasmodium falciparum malaria infection, the most lethal parasitic dis...
A major part of virulence for Plasmodium falciparum malaria infection, the most lethal parasitic dis...
When in their human hosts, malaria parasites spend most of their time housed within vacuoles inside ...
The malaria agent <i>Plasmodium falciparum</i> is predicted to export a "secretome" of s...
To establish infection in the host, malaria parasites export remodeling and virulence proteins into ...
Malaria parasites secrete proteins across the vacuolar membrane into the erythrocyte, inducing modif...
Erythrocytes are extensively remodelled by the malaria parasite following invasion of the cell. Plas...
BACKGROUND: The apicomplexan parasite Plasmodium falciparum causes the most severe form of malaria i...
Malaria parasites actively remodel the infected red blood cell (irbc) by exporting proteins into the...
Plasmodium falciparum is the protozoan parasite that causes the most virulent of human malarias. The...
In order to survive and promote its virulence the malaria parasite must export hundreds of its prote...
Background: The apicomplexan parasite Plasmodium falciparum causes the most severe form of malari...
SummaryA major part of virulence for Plasmodium falciparum malaria infection, the most lethal parasi...
Plasmodium falciparum is the causative agent of the most devastating human malaria worldwide. The di...
The intracellular survival of Plasmodium falciparum within human erythrocytes is dependent on export...
A major part of virulence for Plasmodium falciparum malaria infection, the most lethal parasitic dis...
A major part of virulence for Plasmodium falciparum malaria infection, the most lethal parasitic dis...
When in their human hosts, malaria parasites spend most of their time housed within vacuoles inside ...