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.

Mbio
|June 6, 2019
PubMed

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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