Stage-dependent processing and localization of a Plasmodium falciparum protein of 130,000 molecular weight

M Perkins1

  • 1Laboratory of Biochemical Cytology, Rockefeller University, New York, New York 10021.

Experimental Parasitology
|February 1, 1988
PubMed

Insights

This study tracks a Plasmodium falciparum protein (130,000 m.w.) through its lifecycle. The protein is synthesized, processed into smaller forms, and released during merozoite invasion, binding to erythrocyte membranes.

Area of Science:

  • Malariology
  • Parasitology
  • Molecular Biology

Background:

  • Plasmodium falciparum causes severe malaria.
  • A 130,000 m.w. protein was previously identified and cloned.
  • This protein binds to soluble glycophorin, a host erythrocyte protein.

Purpose of the Study:

  • To investigate the synthesis, processing, and localization of the 130,000 m.w. Plasmodium falciparum protein.
  • To determine the protein's interaction with host erythrocyte membranes.

Main Methods:

  • Immunoblotting of parasite extracts from different intraerythrocytic stages.
  • Antibodies were raised against a 30,000 m.w. fusion protein.
  • Immunofluorescent staining of parasites and erythrocytes.

Main Results:

  • The 130,000 m.w. protein is synthesized at the trophozoite stage.
  • It accumulates at the schizont stage and is processed into a triplet of polypeptides at the merozoite stage.
  • The protein localizes to the erythrocyte cytoplasm in vesicles and accumulates around the erythrocyte plasma membrane in schizonts.
  • It binds strongly to erythrocyte membranes, suggesting interaction with internal glycophorin domains.
  • The protein is conserved across 11 geographic isolates of P. falciparum.

Conclusions:

  • The 130,000 m.w. protein undergoes significant processing and localization changes during the Plasmodium falciparum lifecycle.
  • Its interaction with erythrocyte membranes suggests a role in parasite invasion or egress.
  • The protein's conservation indicates its importance in malaria pathogenesis.