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Molecular factors responsible for host cell recognition and invasion in Plasmodium falciparum
1Department of Biology, Cleveland State University, Ohio 44115.
Abstract:
In Plasmodium falciparum, the rhoptries involved in the invasion process are a pair of flask-shaped organelles located at the apical tip of invading stages. They, along with the more numerous micronemes and dense granules, constitute the apical complex in Plasmodium and other members of the phylum Apicomplexa. Several proteins of varying molecular weight have been identified in P. falciparum rhoptries. These include the 225-, 140/130/110-, 80/60/40-, RAP-1 80-, AMA-1 80-, QF3 80-, and 55-kDa proteins. Some of these proteins are lost during schizont rupture and release of merozoites. Others such as the 140/130/110-kDa complex are transferred to the erythrocyte membrane during invasion. The ring-infected surface antigen (RESA), a 155-kDa polypeptide located in dense granules also associates with the erythrocyte membrane during invasion. Erythrocyte-binding studies have demonstrated that both the 140/130/110-kDa rhoptry complex and RESA bind to inside-out-vesicles (IOVs) prepared from human erythrocytes. The 140/130/110-kDa complex also binds to erythrocyte membranes prepared by hypotonic lysis. These proteins, however, do not bind to intact human erythrocytes. In a heterologous erythrocyte model, both the 140/130/110-kDa complex and RESA are shown to bind directly to mouse erythrocytes. Other studies have shown that RESA associates with spectrin in the erythrocyte cytoskeleton. We have recently developed a liposome-binding assay to demonstrate the lipophilic binding properties of the P. falciparum rhoptry complex of 140/130/110 kDa. The rhoptry complex binds to liposomes containing neutrally, positively, and negatively charged phospholipids. However, liposomes containing phosphatidylethanolamine compete effectively for rhoptry protein binding to mouse erythrocytes.(ABSTRACT TRUNCATED AT 250 WORDS)
Insights
The Plasmodium falciparum rhoptry complex binds to liposomes, indicating lipophilic properties. This finding aids in understanding malaria parasite invasion mechanisms and identifying potential drug targets.
Area of Science:
- Malariology
- Cell Biology
- Parasitology
Background:
- Plasmodium falciparum rhoptries are crucial organelles for malaria parasite invasion.
- Rhoptry proteins are released during merozoite invasion and interact with host erythrocytes.
- Understanding these interactions is key to developing anti-malarial strategies.
Purpose of the Study:
- To investigate the binding properties of the Plasmodium falciparum 140/130/110-kDa rhoptry complex.
- To explore the lipophilic interactions of rhoptry proteins with host cell membranes.
- To characterize the binding of rhoptry proteins to various phospholipid compositions.
Main Methods:
- Development of a liposome-binding assay to assess rhoptry protein lipophilicity.
- Erythrocyte-binding studies using intact and modified erythrocytes (IOVs, membranes).
- Competition assays with specific phospholipids to identify binding determinants.
Main Results:
- The 140/130/110-kDa rhoptry complex exhibits lipophilic binding properties.
- Rhoptry proteins bind to liposomes with diverse phospholipid charges (neutral, positive, negative).
- Phosphatidylethanolamine-containing liposomes effectively compete for rhoptry protein binding.
Conclusions:
- The Plasmodium falciparum rhoptry complex possesses intrinsic lipophilic characteristics.
- Specific phospholipids, like phosphatidylethanolamine, may mediate rhoptry protein interactions.
- These findings provide insights into the molecular mechanisms of malaria parasite invasion.