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Export of PfSBP1 to the Plasmodium falciparum Maurer's clefts
Theodora Saridaki1, Kathrin S Fröhlich, Catherine Braun-Breton
1Hygiene Institut, Abteilung Parasitologie, Universitätsklinikum Heidelberg, Im Neuenheimer Feld 324, 69120 Heidelberg, Germany.
Abstract:
The human malaria parasite Plasmodium falciparum exports determinants of virulence and pathology to destinations within the host erythrocyte, including the erythrocyte cytoplasm, plasma membrane and membrane profiles of parasite origin termed Maurer's clefts. Most of the exported proteins contain a conserved pentameric motif termed plasmodial export element (PEXEL)/vacuolar transfer signal (VTS) that functions as a cleavable sorting signal permitting export to the host erythrocyte. However, there are some exported proteins, such as the skeleton-binding protein 1 (PfSBP1) that lack the PEXEL/VTS motif and that are not N-terminally processed, suggesting the presence of alternative sorting signals and/or mechanisms. In this study, we have investigated trafficking of PfSBP1 to the Maurer's clefts. Our data show that the transmembrane domain of PfSBP1 functions as an internal signal sequence for entry into the parasite's secretory pathway and for transport to the parasite plasma membrane. Trafficking beyond the parasite's plasma membrane required additional N-terminal domains, which are characterized by a high negative net charge. Biochemical data indicate that these domains affect the solubility and extraction profile, the orientation of the protein within the membrane and the subcellular localization. Our findings suggest new principles of protein export in P. falciparum-infected erythrocytes.
Insights
Plasmodium falciparum exports virulence proteins to host cells. This study reveals alternative export pathways for proteins lacking the PEXEL/VTS motif, involving transmembrane domains and charged N-terminal regions.
Area of Science:
- Cell Biology
- Parasitology
- Molecular Biology
Background:
- Plasmodium falciparum exports virulence factors into the host erythrocyte.
- Most exported proteins use the plasmodial export element (PEXEL)/vacuolar transfer signal (VTS) for export.
- Some exported proteins, like PfSBP1, lack PEXEL/VTS, suggesting alternative export mechanisms.
Purpose of the Study:
- To investigate the trafficking mechanism of PfSBP1 to Maurer's clefts.
- To identify alternative sorting signals and export pathways in Plasmodium falciparum.
Main Methods:
- Investigated PfSBP1 trafficking using cellular and biochemical approaches.
- Analyzed the role of PfSBP1's transmembrane domain and N-terminal regions in protein export.
Main Results:
- The transmembrane domain of PfSBP1 acts as an internal signal for secretion and transport to the parasite plasma membrane.
- N-terminal domains with high negative charge are required for trafficking beyond the parasite plasma membrane.
- These domains influence protein solubility, membrane orientation, and subcellular localization.
Conclusions:
- PfSBP1 utilizes an alternative export pathway independent of PEXEL/VTS.
- Transmembrane domains can function as internal signal sequences for protein export.
- Charged N-terminal domains play a crucial role in the subcellular targeting of exported proteins, suggesting novel principles of protein export in malaria parasites.
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