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Published on: December 4, 2015
Analysis of structure and function of the giant protein Pf332 in Plasmodium falciparum
Anthony N Hodder1, Alexander G Maier, Melanie Rug
1The Walter and Eliza Hall Institute of Medical Research, Melbourne, Australia.
Abstract:
Virulence of Plasmodium falciparum, the most lethal parasitic disease in humans, results in part from adhesiveness and increased rigidity of infected erythrocytes. Pf332 is trafficked to the parasite-infected erythrocyte via Maurer's clefts, structures for protein sorting and export in the host erythrocyte. This protein has a domain similar to the Duffy-binding-like (DBL) domain, which functions by binding to receptors for adherence and invasion. To address structure of the Pf332 DBL domain, we expressed this region, and validated its fold on the basis of the disulphide bond pattern, which conformed to the generic pattern for DBL domains. The modelled structure for Pf332 DBL had differences compared with the erythrocyte-binding region of the alphaDBL domain of Plasmodium knowlesi Duffy-binding protein (Pk alpha-DBL). We addressed the function of Pf332 by constructing parasites that either lack expression of the protein or express an altered form. We found no evidence that Pf332 is involved in cytoadhesion or merozoite invasion. Truncation of Pf332 had a significant effect on deformability of the P. falciparum-infected erythrocyte, while loss of the full protein deletion did not. Our data suggest that Pf332 may contribute to the overall deformability of the P. falciparum-infected erythrocyte by anchoring and scaffolding.
Insights
The Plasmodium falciparum protein Pf332, despite lacking roles in adhesion or invasion, significantly impacts infected erythrocyte deformability. Its truncation alters cell mechanics, suggesting Pf332 anchors and scaffolds infected cells.
Area of Science:
- Malariology
- Parasitology
- Structural Biology
Background:
- Plasmodium falciparum causes severe malaria, with virulence linked to infected erythrocyte changes.
- Pf332 protein is exported to the erythrocyte via Maurer's clefts and possesses a Duffy-binding-like (DBL) domain.
Purpose of the Study:
- To investigate the structure and function of the Pf332 DBL domain in Plasmodium falciparum-infected erythrocytes.
- To determine Pf332's role in erythrocyte adhesion, invasion, and mechanical properties.
Main Methods:
- Expression and structural validation of the Pf332 DBL domain.
- Construction of Plasmodium falciparum parasites with altered Pf332 expression (knockout and truncation).
- Assessment of infected erythrocyte deformability, cytoadhesion, and merozoite invasion.
Main Results:
- The Pf332 DBL domain's fold conforms to the generic DBL pattern but differs from Pk alpha-DBL.
- No evidence found for Pf332 involvement in cytoadhesion or merozoite invasion.
- Truncation of Pf332 significantly affected infected erythrocyte deformability, unlike full deletion.
Conclusions:
- Pf332 does not appear to mediate cytoadhesion or invasion in P. falciparum.
- Pf332 likely contributes to infected erythrocyte deformability through anchoring and scaffolding mechanisms.
- Structural and functional data provide insights into malaria parasite-host cell interactions.
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