MalariaEgress · Role of perforin-like proteins and phospholipases in malaria parasite egress
Horizon 2020 — Marie Skłodowska-Curie Actions
- Duration
- 2018-01-01 → 2020-01-07
- EU contribution
- €183,455
- Participants
- 1
- Scheme
- MSCA-IF-EF-ST
Lines connect the coordinator with its partners.
Results in brief
Role of perforin-like proteins and phospholipases in malaria parasite egress
Malaria is one of the world’s deadliest diseases that infects around 228 million people worldwide. Around 400,000 people die of malaria every year and most of them are children under five years of age in malaria-endemic sub-Saharan Africa. Malaria is caused by a single-celled parasite, Plasmodium, and is most commonly spread via bite from a female Anopheles mosquito. Of the five Plasmodium species that infect humans, Plasmodium falciparum is responsible for the majority of malaria related deaths. Malaria is preventable and treatable but progress towards controlling the disease is threatened by emergence of drug resistance in the parasite. The clinical manifestations of the disease arise from the parasite’s blood stages when it goes through multiple cycles of asexual replication and destroys human red blood cells (RBCs) in the process. All effective antimalarial drugs target the asexual blood stages, which therefore make good chemotherapeutic targets for developing antimalarials. To this end, we need a proper understanding of how malaria parasites propagate within host erythrocytes. Malaria parasites grow and replicate asexually within a parasitophorous vacuole in host RBCs. As the parasite grows, it has to form membranous structures for nutrient uptake from the host and maintain its plasma membrane and the parasitophorous vacuole membrane (PVM). As the parasite starts to replicate, it also has to develop membranes for various cellular compartments like the nucleus, apicoplast and mitochondrion. Thus, the malaria parasite has to produce and maintain a substantial amount of membranes and this results in a ~6-fold increase in phospholipid (PL) content in infected RBCs. The drastic membrane dynamics requires a finely tuned lipid metabolism that involves lipids being synthesized de novo or scavenged from the host and then also modified, transported and degraded by the parasite. At the end of each cycle of replication, malaria parasites exit the host cell in a coordinated manner, a crucial process known as egress, to invade fresh RBCs. Egress involves a rapid sequence of events that results in the rupture of the PVM and the host RBC membrane (RBCM). We know that egress is triggered by protein kinase G-dependent discharge of a subtilisin protease, SUB1, into the PV lumen where SUB1 cleaves and activates several effector molecules. One such effector molecule, SERA6, a serine protease, has been shown to cleave host spectrin in the RBC cytoskeleton to bring about the final event of RBCM rupture. However, effector molecules involved in the preceding steps of PVM rupture and RBCM poration are unknown. Phospholipases (PLases) are lipolytic enzymes that target and cleave PLs. They play key roles in lipid metabolism and mediate various cell functions such as membrane synthesis, degradation and signaling. The parasite produces several PLases throughout its asexual life cycle, but little is known about the specific roles each of these enzymes play. Owing to their membranolytic activity, it is also possible that one of the PLases causes PVM rupture during egress. In this project, we selected and studied the role of four phospholipases by inducing knockout of their genes in P. falciparum. We have also worked towards devising a medium-throughput inducible genetic screen to identify phospholipases that play a role during parasite egress. Our study shows that PLases play vital roles in membrane dynamics in the malaria parasite and is required for several processes throughout the parasite’s asexual life cycle.
Data: CORDIS, © European Union
Project objective
The malaria parasite Plasmodium falciparum, which causes ~600,000 deaths annually, propagates within host erythrocytes. Roughly synchronous egress of blood stage parasites in vivo causes the periodic fevers associated with malaria and is essential for parasite replication. Blocking parasite egress can stop disease progression, so understanding its mechanism is key to identifying new drug targets. Egress of malaria parasites from host erythrocytes involves the rupture of two membranes- the parasitophorous vacuole membrane and the erythrocyte membrane. It is unclear how the parasitophorous vacuole membrane ruptures during egress, and what mechanism is responsible for poration of the erythrocyte membrane. While it has been shown that egress is protease-dependent, the effector molecules that bring about the disruption of both membranes remain unknown. Potential effector molecules include parasite perforin-like proteins (PLPs) and phospholipases. This project aims to test the hypothesis that Plasmodium PLPs and phospholipases are involved in malarial egress. First, we will apply newly developed conditional knockout strategies to establish the role in egress of a candidate perforin-like protein. Second, we aim to devise a novel conditional genetic screen to identify egress related phospholipases in a medium-throughput manner. This work will add to the efforts being made to understand egress and will attempt to develop a much needed forward genetic screen in the malaria parasite. The interdisciplinary approach proposed here combines the experienced researcher (ER)’s skills in genomics and the host laboratory’s expertise in malarial cell biology and conditional knockout technologies. This will equip the ER with the right exposure and new skills to pursue a future independent research career in malaria research.
Original text from CORDIS.
Participants
- THE FRANCIS CRICK INSTITUTE LIMITED · LondonCoordinatorUnited Kingdom
Links
Data: CORDIS, © European Union
