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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
Molecular architecture of a complex between an adhesion protein from the malaria parasite and intracellular adhesion
Alan Brown1, Louise Turner, Stig Christoffersen
1Department of Biochemistry, University of Cambridge, Cambridge, CB2 1GA, United Kingdom.
Abstract:
The adhesion of Plasmodium falciparum-infected erythrocytes to human tissues or endothelium is central to the pathology caused by the parasite during malaria. It contributes to the avoidance of parasite clearance by the spleen and to the specific pathologies of cerebral and placental malaria. The PfEMP1 family of adhesive proteins is responsible for this sequestration by mediating interactions with diverse human ligands. In addition, as the primary targets of acquired, protective immunity, the PfEMP1s are potential vaccine candidates. PfEMP1s contain large extracellular ectodomains made from CIDR (cysteine-rich interdomain regions) and DBL (Duffy-binding-like) domains and show extensive variation in sequence, size, and domain organization. Here we use biophysical methods to characterize the entire ∼300-kDa ectodomain from IT4VAR13, a protein that interacts with the host receptor, intercellular adhesion molecule-1 (ICAM-1). We show through small angle x-ray scattering that IT4VAR13 is rigid, elongated, and monomeric. We also show that it interacts with ICAM-1 through the DBLβ domain alone, forming a 1:1 complex. These studies provide a first low resolution structural view of a PfEMP1 ectodomain in complex with its ligand. They show that it combines a modular domain arrangement consisting of individual ligand binding domains, with a defined higher order architecture that exposes the ICAM-1 binding surface to allow adhesion.
Insights
Malaria parasite proteins (PfEMP1) cause disease by sticking to human tissues. Researchers used biophysical methods to reveal how one PfEMP1 protein binds to ICAM-1, offering insights for malaria vaccines.
Area of Science:
- Structural biology
- Parasitology
- Immunology
Background:
- Malaria pathology involves Plasmodium falciparum-infected erythrocyte adhesion to endothelium.
- This adhesion mediates sequestration, evading spleen clearance and causing severe malaria syndromes.
- The PfEMP1 protein family mediates these interactions and is a target for immunity and vaccine development.
Purpose of the Study:
- To structurally characterize the ~300-kDa ectodomain of the PfEMP1 protein IT4VAR13.
- To elucidate the interaction mechanism between IT4VAR13 and its ligand, intercellular adhesion molecule-1 (ICAM-1).
Main Methods:
- Small-angle X-ray scattering (SAXS) was employed to determine the low-resolution structure of the IT4VAR13 ectodomain.
- Biophysical methods were used to characterize the complex formed between IT4VAR13 and ICAM-1.
Main Results:
- The IT4VAR13 ectodomain is a rigid, elongated monomer.
- IT4VAR13 interacts with ICAM-1 exclusively through its DBLβ domain, forming a 1:1 complex.
- This reveals a modular domain arrangement with a higher-order architecture exposing the ICAM-1 binding site.
Conclusions:
- The study provides the first low-resolution structural view of a PfEMP1 ectodomain bound to its ligand.
- Understanding the structural basis of PfEMP1-ICAM-1 interaction is crucial for developing targeted malaria therapies and vaccines.
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