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Author Spotlight: Identifying Compensatory Pathways in Malaria Parasites Containing Hypomorphic Allele of Essential Protein Kinases
Published on: November 22, 2024
Stable Translocation Intermediates Jam Global Protein Export in Plasmodium falciparum Parasites and Link the PTEX
Paolo Mesén-Ramírez1, Ferdinand Reinsch1, Alexandra Blancke Soares1
1Bernhard Nocht Institute for Tropical Medicine, Parasitology section, Hamburg, Germany.
Abstract:
Protein export is central for the survival and virulence of intracellular P. falciparum blood stage parasites. To reach the host cell, exported proteins cross the parasite plasma membrane (PPM) and the parasite-enclosing parasitophorous vacuole membrane (PVM), a process that requires unfolding, suggestive of protein translocation. Components of a proposed translocon at the PVM termed PTEX are essential in this phase of export but translocation activity has not been shown for the complex and questions have been raised about its proposed membrane pore component EXP2 for which no functional data is available in P. falciparum. It is also unclear how PTEX mediates trafficking of both, soluble as well as transmembrane proteins. Taking advantage of conditionally foldable domains, we here dissected the translocation events in the parasite periphery, showing that two successive translocation steps are needed for the export of transmembrane proteins, one at the PPM and one at the PVM. Our data provide evidence that, depending on the length of the C-terminus of the exported substrate, these steps occur by transient interaction of the PPM and PVM translocon, similar to the situation for protein transport across the mitochondrial membranes. Remarkably, we obtained constructs of exported proteins that remained arrested in the process of being translocated across the PVM. This clogged the translocation pore, prevented the export of all types of exported proteins and, as a result, inhibited parasite growth. The substrates stuck in translocation were found in a complex with the proposed PTEX membrane pore component EXP2, suggesting a role of this protein in translocation. These data for the first time provide evidence for EXP2 to be part of a translocating entity, suggesting that PTEX has translocation activity and provide a mechanistic framework for the transport of soluble as well as transmembrane proteins from the parasite boundary into the host cell.
Insights
Protein export in Plasmodium falciparum requires two translocation steps across parasite membranes. Arresting this process with specific protein constructs inhibits parasite growth and implicates EXP2 in translocation.
Area of Science:
- Cellular Biology
- Parasitology
- Molecular Biology
Background:
- Protein export is crucial for Plasmodium falciparum survival and virulence.
- Exported proteins must cross the parasite plasma membrane (PPM) and parasitophorous vacuole membrane (PVM).
- The proposed PTEX translocon complex's role and the function of its component EXP2 remain unclear.
Purpose of the Study:
- To dissect the translocation events involved in protein export in P. falciparum.
- To investigate the mechanism of soluble and transmembrane protein trafficking.
- To determine the functional role of EXP2 in protein translocation.
Main Methods:
- Utilized conditionally foldable protein domains to study translocation.
- Analyzed protein export steps at the PPM and PVM.
- Investigated protein interactions and parasite growth inhibition.
Main Results:
- Identified two successive translocation steps for transmembrane proteins at the PPM and PVM.
- Demonstrated transient interactions between PPM and PVM translocons.
- Showed that arrested translocation via EXP2 inhibits parasite growth.
Conclusions:
- Provided evidence for EXP2's role in protein translocation, suggesting PTEX has activity.
- Established a mechanistic framework for protein transport across parasite membranes.
- Highlighted the essentiality of continuous protein export for parasite survival.
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