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A Simple Protocol for Platelet-mediated Clumping of Plasmodium falciparum-infected Erythrocytes in a Resource Poor Setting
Published on: May 16, 2013
The PfRCR complex bridges malaria parasite and erythrocyte during invasion
Brendan Farrell1,2, Nawsad Alam1,2, Melissa N Hart3
1Department of Biochemistry, University of Oxford, Oxford, UK.
Abstract:
The symptoms of malaria occur during the blood stage of infection, when parasites invade and replicate within human erythrocytes. The PfPCRCR complex1, containing PfRH5 (refs. 2,3), PfCyRPA, PfRIPR, PfCSS and PfPTRAMP, is essential for erythrocyte invasion by the deadliest human malaria parasite, Plasmodium falciparum. Invasion can be prevented by antibodies3-6 or nanobodies1 against each of these conserved proteins, making them the leading blood-stage malaria vaccine candidates. However, little is known about how PfPCRCR functions during invasion. Here we present the structure of the PfRCR complex7,8, containing PfRH5, PfCyRPA and PfRIPR, determined by cryogenic-electron microscopy. We test the hypothesis that PfRH5 opens to insert into the membrane9, instead showing that a rigid, disulfide-locked PfRH5 can mediate efficient erythrocyte invasion. We show, through modelling and an erythrocyte-binding assay, that PfCyRPA-binding antibodies5 neutralize invasion through a steric mechanism. We determine the structure of PfRIPR, showing that it consists of an ordered, multidomain core flexibly linked to an elongated tail. We also show that the elongated tail of PfRIPR, which is the target of growth-neutralizing antibodies6, binds to the PfCSS-PfPTRAMP complex on the parasite membrane. A modular PfRIPR is therefore linked to the merozoite membrane through an elongated tail, and its structured core presents PfCyRPA and PfRH5 to interact with erythrocyte receptors. This provides fresh insight into the molecular mechanism of erythrocyte invasion and opens the way to new approaches in rational vaccine design.
Insights
Understanding malaria parasite invasion is key to developing vaccines. Researchers revealed the structure of the PfRCR complex, essential for Plasmodium falciparum erythrocyte invasion, offering new vaccine design strategies.
Area of Science:
- Molecular parasitology
- Structural biology
- Vaccine development
Background:
- Malaria symptoms arise from Plasmodium falciparum parasites invading human red blood cells.
- The PfPCRCR complex is crucial for this invasion, making its components prime vaccine targets.
Purpose of the Study:
- To elucidate the structure of the PfRCR complex and understand its mechanism of erythrocyte invasion.
- To investigate the function of PfRH5 and PfRIPR within the complex.
Main Methods:
- Cryo-electron microscopy was used to determine the structure of the PfRCR complex.
- Erythrocyte binding assays and molecular modeling were employed to study protein interactions.
Main Results:
- A rigid, disulfide-locked PfRH5 mediates invasion, challenging previous hypotheses.
- PfCyRPA-binding antibodies inhibit invasion via steric hindrance.
- PfRIPR's structure reveals a modular design, with its tail anchoring to the parasite membrane and its core interacting with erythrocyte receptors.
Conclusions:
- The study provides novel insights into the molecular mechanisms of malaria parasite invasion.
- Understanding the PfRCR complex structure and function facilitates rational design of new blood-stage malaria vaccines.

