The aetiological agent responsible for the most severe form of human malaria is the intraerythrocytic protozoan parasite plasmodium falciparum. Clinical manifestations of P. falciparum malaria include cerebral malaria, which is the major cause of death from this disease, whereby infected erythrocytes sequester in the deep vascular beds of the brain. During growth of the asexual stage of the parasite in human erythrocytes, a series of dramatic and extensive changes occur in the structural and functional properties of the infected erythrocyte, which includes development of knob structures and the ability to adhere to endothelium. Crucial to these changes are proteins of parasite origin which are either deposited on the inner aspect of erythrocyte membrane or inserted into it. Several parasite proteins are present at the cytoplasmic side of the knob structure including the knob-associated histidine rich protein (KAHRP) and PfEMP3. The adhesive properties of P. falciparum infected red cells are due to the antigenically variant parasite protein PfEMP1 which is concentrated in the knob on the outside of the membrane. It is likely that interaction of the cytoplasmic tail of PfEMP1 with other proteins and the cytoskeleton of the red blood cell are crucial to the strength of the adhesive interactions of the parasite-infected red cell with ligands on endothelial cells. The hypothesis to be tested, in this work, is that both KAHRP and PfEMP3 are important for the expression of the adhesive properties encoded by PfEMP1 on the P.falciparum infected red cell surface. This will be done by constructing targeted gene disruptions of KAHRP and PfEMP3 as well as introducing mutated genes to determine the effect on the adhesive and membrane properties of the parasite infected red cell. This will enable an understanding of the role of these proteins and their relationship with PfEMP1 in determining the adhesive properties of the infected red cell. These studies will contribute to an increased understanding of the pathophysiology of falciparum malaria. In the broader sense, our findings in red blood cells (the simplest and best understood of all eukaryotic cells) may be useful to augment our understanding of the role of particular proteins in the regulation of cell structure and the mechanical and adhesive properties of eukaryotic cells in general.

Agency
National Institute of Health (NIH)
Institute
National Institute of Allergy and Infectious Diseases (NIAID)
Type
Research Project (R01)
Project #
1R01AI044008-01
Application #
2727027
Study Section
Tropical Medicine and Parasitology Study Section (TMP)
Program Officer
Fairfield, Alexandra
Project Start
1999-01-01
Project End
2001-12-31
Budget Start
1999-01-01
Budget End
1999-12-31
Support Year
1
Fiscal Year
1999
Total Cost
Indirect Cost
Name
Walter and Eliza Hall Institute Medical Research
Department
Type
DUNS #
City
Victoria
State
Country
Australia
Zip Code
VIC, -3052
Boddey, Justin A; Hodder, Anthony N; Gunther, Svenja et al. (2010) An aspartyl protease directs malaria effector proteins to the host cell. Nature 463:627-31
de Koning-Ward, Tania F; Gilson, Paul R; Boddey, Justin A et al. (2009) A newly discovered protein export machine in malaria parasites. Nature 459:945-9
Hodder, Anthony N; Maier, Alexander G; Rug, Melanie et al. (2009) Analysis of structure and function of the giant protein Pf332 in Plasmodium falciparum. Mol Microbiol 71:48-65
Boddey, Justin A; Moritz, Robert L; Simpson, Richard J et al. (2009) Role of the Plasmodium export element in trafficking parasite proteins to the infected erythrocyte. Traffic 10:285-99
Glenister, Fiona K; Fernandez, Kate M; Kats, Lev M et al. (2009) Functional alteration of red blood cells by a megadalton protein of Plasmodium falciparum. Blood 113:919-28
Maier, Alexander G; Rug, Melanie; O'Neill, Matthew T et al. (2008) Exported proteins required for virulence and rigidity of Plasmodium falciparum-infected human erythrocytes. Cell 134:48-61
Rug, Melanie; Prescott, Stuart W; Fernandez, Kate M et al. (2006) The role of KAHRP domains in knob formation and cytoadherence of P falciparum-infected human erythrocytes. Blood 108:370-8
Cooke, Brian M; Buckingham, Donna W; Glenister, Fiona K et al. (2006) A Maurer's cleft-associated protein is essential for expression of the major malaria virulence antigen on the surface of infected red blood cells. J Cell Biol 172:899-908
Maier, Alexander G; Braks, Joanna A M; Waters, Andrew P et al. (2006) Negative selection using yeast cytosine deaminase/uracil phosphoribosyl transferase in Plasmodium falciparum for targeted gene deletion by double crossover recombination. Mol Biochem Parasitol 150:118-21
Knuepfer, Ellen; Rug, Melanie; Cowman, Alan F (2005) Function of the plasmodium export element can be blocked by green fluorescent protein. Mol Biochem Parasitol 142:258-62

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