Defining ER-mitochondria contact dynamics in Plasmodium falciparum by targeting component of phospholipid synthesis pathway, phosphatidylserine synthase (PfPSS)

Mitochondrion. 2022 Jul:65:124-138. doi: 10.1016/j.mito.2022.05.005. Epub 2022 May 24.

Abstract

The malaria parasite completes the asexual cycle inside the host erythrocyte, which requires extensive membrane biogenesis for its development and multiplication. Metabolic pathways for the synthesis of membrane phospholipids (PL), including phosphatidylcholine (PC), phosphatidylethanolamine (PE) and phosphatidylserine (PS), are crucial for parasite survival. Here, we have studied the P. falciparum enzyme responsible for PS synthesis, Phosphatidylserine synthase (PfPSS), GFP targeting approach confirmed it to be localized in the parasite ER as well as in ER-protrusions. Detailed high resolution microscopy, using these transgenic parasites expressing PfPSS-GFP, redefined the dynamics of ER during the intraerythrocytic life cycle and its association with the mitochondria. We report for the first time presence of ER-mitochondria contact (ERMC) in Plasmodium; ERMC is formed by PfPSS containing ER-protrusions, which associate with the mitochondria surface throughout the parasite growth cycle. Further, ERMC is found to be stable and refractory to ER and mitochondrial stresses, suggesting that it is formed through strong tethering complexes. PfPSS was found to interact with other major key enzyme involved in PL synthesis, choline/Etn-phosphotransferase (CEPT), which suggest that ER is the major site for PL biosynthesis. Overall, this study defines the morphological organisation of ERMC which mediates PL synthesis/transport in the Plasmodium.

Keywords: ER-mitochondria contact (ERMC); Lipid biosynthesis; Membrane biosynthesis; Phospholipids; Plasmodium.

MeSH terms

  • CDPdiacylglycerol-Serine O-Phosphatidyltransferase / metabolism
  • Erythrocytes / metabolism
  • Erythrocytes / parasitology
  • Mitochondria / metabolism
  • Phospholipids*
  • Plasmodium falciparum* / metabolism

Substances

  • Phospholipids
  • CDPdiacylglycerol-Serine O-Phosphatidyltransferase