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Updated: Jan 24, 2026

High Yield Purification of Plasmodium falciparum Merozoites For Use in Opsonizing Antibody Assays
Published on: July 17, 2014
Yield improvement and enzymatic dissection of Plasmodium falciparum plasmepsin V
Chaleampol Loymunkong1, Pichamon Sittikul2, Napat Songtawee3
1Department of Biochemistry, Faculty of Science, Kasetsart University, Chatuchak, Bangkok 10900, Thailand.
Abstract:
To survive within a red blood cell (RBC), malaria parasites establish striking modifications to the permeability, rigidity and cytoadherence properties of the host cell. This is mediated by the export of hundreds of proteins from the parasite into the erythrocyte. Plasmodium falciparum plasmepsin V (PfPMV), is an ER resident aspartic protease that processes proteins for export into the host erythrocyte, plays a crucial role in parasite virulence and survival and is considered a potential malaria drug target. Most attempts at its heterologous expression in Escherichia coli have resulted in mainly the production of insoluble proteins. In this study, we employed a multipurpose fusion tag to improve the production of PfPMV in E. coli. Recombinant PfPMVm, comprising residues 84-521, was substantially obtained in soluble form and could be purified in a single step, yielding a 3.7-fold increase in purified PfPMVm compared to previous reports. Additionally, we have mutated the catalytic residues (D118N and D365N), individually and together, and the unpaired cysteine residue C178 to evaluate the effects on catalytic efficiency. Mutation of D365 had more pronounced effects on the catalytic efficiency than that of D118, suggesting that the D365 may act as a catalytic nucleophile to activate the water molecule. The importance of C178 was also confirmed by the inhibition by metal ions, indicating that C178 is partially involved in the substrate recognition. Collectively, our results describe an improved system to produce recombinant PfPMVm in E. coli and dissect the amino acids involved in catalysis and substrate recognition.
Insights
Researchers developed an improved method to produce soluble Plasmodium falciparum plasmepsin V (PfPMV) in E. coli. This advancement aids in studying PfPMV, a key malaria parasite protein and potential drug target.
Area of Science:
- Biochemistry
- Parasitology
- Molecular Biology
Background:
- Malaria parasites modify host red blood cells for survival, exporting hundreds of proteins.
- Plasmodium falciparum plasmepsin V (PfPMV) is an essential aspartic protease for protein export and parasite virulence, making it a drug target.
Purpose of the Study:
- To develop an improved method for producing soluble recombinant PfPMV in E. coli.
- To investigate the roles of catalytic residues and a cysteine residue in PfPMV activity and substrate recognition.
Main Methods:
- Utilized a multipurpose fusion tag for enhanced heterologous expression of PfPMV in E. coli.
- Purified recombinant PfPMV (residues 84-521) in a single step.
- Generated mutants of catalytic residues (D118N, D365N) and cysteine residue (C178) to assess their impact on enzyme function.
Main Results:
- Achieved a substantial yield of soluble recombinant PfPMV, with a 3.7-fold increase in purified protein compared to previous methods.
- Mutation of D365 significantly impacted catalytic efficiency, suggesting its role as a catalytic nucleophile.
- Inhibition by metal ions confirmed the involvement of C178 in substrate recognition.
Conclusions:
- An optimized system for producing soluble recombinant PfPMV in E. coli has been established.
- Key amino acids involved in PfPMV catalysis and substrate binding have been identified, providing insights for drug development.
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