Two Phosphoglucomutase Paralogs Facilitate Ionophore-Triggered Secretion of the Toxoplasma Micronemes

Sudeshna Saha1, Bradley I Coleman1, Rashmi Dubey1

  • 1Department of Biology, Boston College, Chestnut Hill, Massachusetts, USA.

Msphere
|December 5, 2017
PubMed

Insights

Toxoplasma gondii parafusin-related protein 1 (PRP1) and PGM2 are not essential for parasite survival or virulence. Deleting these phosphoglucomutase paralogs impairs calcium-triggered microneme secretion but not host cell invasion or egress.

Area of Science:

  • Parasitology
  • Cell Biology
  • Molecular Biology

Background:

  • Calcium (Ca2+)-mediated exocytosis is crucial for apicomplexan parasite life cycles.
  • Parafusin proteins, phosphoglucomutase (PGM) paralogs, regulate Ca2+-dependent exocytosis in eukaryotes.
  • In *Toxoplasma gondii*, parafusin-related protein 1 (PRP1) is implicated in Ca2+-dependent microneme secretion.

Purpose of the Study:

  • To investigate the role of *Toxoplasma gondii* PGM paralogs, PRP1 and PGM2, in Ca2+-dependent microneme secretion.
  • To determine if PRP1 and PGM2 are essential for the parasite's lytic cycle, host cell invasion, egress, and virulence.

Main Methods:

  • Reverse genetics was employed to create deletion mutants of PRP1, PGM2, and both genes.
  • Microneme secretion was analyzed under basal, ionophore-induced (A23187), and phosphatidic acid-triggered conditions.
  • Parasite lytic cycle progression, host cell invasion, egress, and acute virulence in mice were assessed.

Main Results:

  • Genetic deletion of PRP1, PGM2, or both was dispensable for the parasite's lytic cycle, host cell invasion, and egress.
  • High Ca2+-flux-mediated microneme secretion (induced by A23187) was abrogated in the deletion mutants.
  • Basal constitutive and phosphatidic acid-triggered microneme secretion remained unaffected in the absence of PRP1 and PGM2.
  • Parasites lacking both PGM paralogs exhibited normal acute virulence in mice.

Conclusions:

  • *Toxoplasma gondii* PGM paralogs PRP1 and PGM2 facilitate microneme secretion upon high Ca2+ flux.
  • This Ca2+-flux-mediated secretion pathway is not essential for the parasite's lytic cycle completion or acute virulence.
  • The findings highlight the non-essential nature of these specific PGM paralogs for critical parasite functions despite their role in a specific secretion pathway.

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