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Plasmodium falciparum erythrocyte membrane protein 1 diversity in seven genomes--divide and conquer
Thomas S Rask1, Daniel A Hansen, Thor G Theander
1Center for Biological Sequence Analysis, Department of Systems Biology, Technical University of Denmark, Lyngby, Denmark. rask@cbs.dtu.dk
Abstract:
The var gene encoded hyper-variable Plasmodium falciparum erythrocyte membrane protein 1 (PfEMP1) family mediates cytoadhesion of infected erythrocytes to human endothelium. Antibodies blocking cytoadhesion are important mediators of malaria immunity acquired by endemic populations. The development of a PfEMP1 based vaccine mimicking natural acquired immunity depends on a thorough understanding of the evolved PfEMP1 diversity, balancing antigenic variation against conserved receptor binding affinities. This study redefines and reclassifies the domains of PfEMP1 from seven genomes. Analysis of domains in 399 different PfEMP1 sequences allowed identification of several novel domain classes, and a high degree of PfEMP1 domain compositional order, including conserved domain cassettes not always associated with the established group A-E division of PfEMP1. A novel iterative homology block (HB) detection method was applied, allowing identification of 628 conserved minimal PfEMP1 building blocks, describing on average 83% of a PfEMP1 sequence. Using the HBs, similarities between domain classes were determined, and Duffy binding-like (DBL) domain subclasses were found in many cases to be hybrids of major domain classes. Related to this, a recombination hotspot was uncovered between DBL subdomains S2 and S3. The VarDom server is introduced, from which information on domain classes and homology blocks can be retrieved, and new sequences can be classified. Several conserved sequence elements were found, including: (1) residues conserved in all DBL domains predicted to interact and hold together the three DBL subdomains, (2) potential integrin binding sites in DBLα domains, (3) an acylation motif conserved in group A var genes suggesting N-terminal N-myristoylation, (4) PfEMP1 inter-domain regions proposed to be elastic disordered structures, and (5) several conserved predicted phosphorylation sites. Ideally, this comprehensive categorization of PfEMP1 will provide a platform for future studies on var/PfEMP1 expression and function.
Insights
This study reclassifies Plasmodium falciparum erythrocyte membrane protein 1 (PfEMP1) domains, identifying conserved building blocks and novel domain classes. This advances understanding of PfEMP1 diversity for malaria vaccine development.
Area of Science:
- Malariology
- Molecular Biology
- Immunology
Background:
- Plasmodium falciparum erythrocyte membrane protein 1 (PfEMP1) mediates infected red blood cell adhesion, crucial for malaria pathogenesis.
- Antibodies targeting PfEMP1 are key to acquired immunity, making PfEMP1 diversity a critical factor for vaccine development.
Purpose of the Study:
- To redefine and reclassify PfEMP1 domains across seven genomes.
- To identify conserved structural elements and novel domain classes within the PfEMP1 family.
- To establish a comprehensive classification system for PfEMP1 to aid future research.
Main Methods:
- Analysis of 399 PfEMP1 sequences to identify domain classes and compositional order.
- Application of a novel iterative homology block (HB) detection method to identify conserved building blocks.
- Utilized HBs to determine similarities between domain classes and identify recombination hotspots.
Main Results:
- Identified novel PfEMP1 domain classes and a high degree of domain compositional order, including conserved domain cassettes.
- Discovered 628 conserved minimal PfEMP1 building blocks (HBs) representing 83% of sequences.
- Found Duffy binding-like (DBL) domain subclasses to be hybrids and uncovered a recombination hotspot between DBL subdomains S2 and S3.
- Introduced the VarDom server for accessing PfEMP1 domain and HB information and classifying new sequences.
- Identified conserved residues for DBL subdomain interaction, potential integrin binding sites, an acylation motif, elastic disordered inter-domain regions, and phosphorylation sites.
Conclusions:
- The comprehensive categorization of PfEMP1 provides a foundational platform for future studies on var gene expression and PfEMP1 function.
- Understanding PfEMP1 domain composition and conserved elements is crucial for designing effective malaria vaccines that mimic natural immunity.
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