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Published on: August 14, 2011
Uncoupling the Threading and Unfoldase Actions of Plasmodium HSP101 Reveals Differences in Export between Soluble and
Kathryn M Matthews1, Ming Kalanon1, Tania F de Koning-Ward2
1School of Medicine, Deakin University, Waurn Ponds, Victoria, Australia.
Abstract:
Plasmodium parasites must export proteins into their erythrocytic host to survive. Exported proteins must cross the parasite plasma membrane (PPM) and the parasitophorous vacuolar membrane (PVM) encasing the parasite to access the host cell. Crossing the PVM requires protein unfolding and passage through a translocon, the Plasmodium translocon of exported proteins (PTEX). In this study, we provide the first direct evidence that heat shock protein 101 (HSP101), a core component of PTEX, unfolds proteins for translocation across the PVM by creating transgenic Plasmodium parasites in which the unfoldase and translocation functions of HSP101 have become uncoupled. Strikingly, while these parasites could export native proteins, they were unable to translocate soluble, tightly folded reporter proteins bearing the Plasmodium export element (PEXEL) across the PVM into host erythrocytes under the same conditions. In contrast, an identical PEXEL reporter protein but harboring a transmembrane domain could be exported, suggesting that a prior unfolding step occurs at the PPM. Together, these results demonstrate that the export of parasite proteins is dependent on how these proteins are presented to the secretory pathway before they reach PTEX as well as their folded status. Accordingly, only tightly folded soluble proteins secreted into the vacuolar space and not proteins containing transmembrane domains or the majority of erythrocyte-stage exported proteins have an absolute requirement for the full unfoldase activity of HSP101 to be exported.IMPORTANCE The Plasmodium parasites that cause malaria export hundreds of proteins into their host red blood cell (RBC). These exported proteins drastically alter the structural and functional properties of the RBC and play critical roles in parasite virulence and survival. To access the RBC cytoplasm, parasite proteins must pass through the Plasmodium translocon of exported proteins (PTEX) located at the membrane interfacing the parasite and host cell. Our data provide evidence that HSP101, a component of PTEX, serves to unfold protein cargo requiring translocation. We also reveal that addition of a transmembrane domain to soluble cargo influences its ability to be translocated by parasites in which the HSP101 motor and unfolding activities have become uncoupled. Therefore, we propose that proteins with transmembrane domains use an alternative unfolding pathway prior to PTEX to facilitate export.
Insights
Heat shock protein 101 (HSP101) unfolds proteins for export across the parasitophorous vacuolar membrane (PVM) in Plasmodium parasites. This study shows HSP101
Area of Science:
- Malaria research
- Parasitology
- Molecular biology
Background:
- Plasmodium parasites export hundreds of proteins into host red blood cells (RBCs) for virulence and survival.
- Exported proteins must cross the parasite plasma membrane (PPM) and parasitophorous vacuolar membrane (PVM).
- Protein translocation across the PVM requires unfolding and passage through the Plasmodium translocon of exported proteins (PTEX).
Purpose of the Study:
- To investigate the role of heat shock protein 101 (HSP101) in protein unfolding for translocation across the PVM.
- To determine if HSP101's unfoldase and translocation functions are essential for exporting all Plasmodium proteins.
Main Methods:
- Creation of transgenic Plasmodium parasites with uncoupled HSP101 unfoldase and translocation functions.
- Assessment of the translocation of soluble and transmembrane domain-containing reporter proteins.
- Analysis of protein export under conditions where HSP101's unfoldase activity is compromised.
Main Results:
- Transgenic parasites with uncoupled HSP101 could export native proteins but failed to translocate soluble PEXEL reporter proteins.
- Transmembrane domain-containing PEXEL reporter proteins were successfully exported, suggesting prior unfolding at the PPM.
- The requirement for HSP101 unfoldase activity depends on the protein's structure and presentation to the secretory pathway.
Conclusions:
- HSP101 directly mediates protein unfolding for translocation across the PVM.
- Proteins with transmembrane domains may utilize an alternative unfolding pathway before reaching PTEX.
- The export efficiency of Plasmodium proteins is influenced by their folded status and presentation to the secretory pathway.
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