Related Experiment Video
Updated: Oct 15, 2025

Methods to Investigate the Regulatory Role of Small RNAs and Ribosomal Occupancy of Plasmodium falciparum
Published on: December 4, 2015
Plasmodium early transcribed membrane proteins appear tailored to the host range of malaria parasites
Arianne M Brandsma1, Cecilie Hilmer2, Manuel Rauch3
1Parasitology Unit, Max Planck Institute for Infection Biology, 10117 Berlin, Germany; Princess Máxima Center for Pediatric Oncology, Heidelberg 25, 3584 CS Utrecht, The Netherlands.
Abstract:
Early transcribed membrane proteins form a unique protein family in malaria parasites. These molecules are expressed during Plasmodium intracellular phases and inserted at the parasite parasitophorus vacuole membrane, which constitutes the host-parasite interface. Upregulated in infectious sporozoites 4 (UIS4) is an essential early transcribed membrane protein of liver stages of the murine malaria model parasite Plasmodium berghei. Despite its relevance for liver stage maturation, the molecular functions of UIS4 remain elusive, and UIS4 orthologs in human malaria parasites have not yet been identified. In order to characterise functional domains of UIS4, we generated P. berghei parasites carrying a carboxy-terminally truncated version of UIS4. We observed that uis4Δc parasites are severely impaired in liver stage development, similar to uis4(-) parasites, indicating an important role of the C-terminal domain for UIS4 function. To test whether members of the P. falciparum early transcribed membrane protein family are potential UIS4 orthologs, we selected candidates based on structural homology and parasitophorous vacuole membrane localization. We generated transgenic P. berghei parasites where UIS4 was replaced by Plasmodium falciparum ETRAMP8 or ETRAMP10.3. Both early transcribed membrane proteins were expressed in transgenic parasite lines, but liver stage maturation was impaired, indicating that the selected early transcribed membrane proteins failed to substitute the function of UIS4. As a control, we included the UIS4 ortholog from the murine parasite Plasmodium chaubaudi. We observed that PcUIS4 successfully restores UIS4 function in P. berghei. Together, these results suggest that Plasmodium parasites express tailor-made parasitophorous vacuole membrane proteins that might at least partially explain the narrow host range of malaria parasites.
Insights
The C-terminal domain of UIS4 is crucial for malaria parasite liver stage development. Plasmodium falciparum proteins cannot replace UIS4 function, suggesting host specificity in these essential parasite proteins.
Area of Science:
- Malariology
- Parasitology
- Molecular Biology
Background:
- Early transcribed membrane proteins (ETRMPs) are vital for Plasmodium parasites, localizing to the parasitophorous vacuole membrane.
- Upregulated in infectious sporozoites 4 (UIS4) is essential for Plasmodium berghei liver stage maturation, but its function and human orthologs are unknown.
Purpose of the Study:
- To investigate the functional domains of UIS4 and identify potential orthologs in human malaria parasites.
- To explore the specificity of ETRMPs in malaria parasite development and host adaptation.
Main Methods:
- Generated carboxy-terminally truncated UIS4 (uis4Δc) P. berghei parasites.
- Created transgenic P. berghei expressing Plasmodium falciparum ETRAMP8 or ETRAMP10.3 in place of UIS4.
- Tested Plasmodium chaubaudi UIS4 (PcUIS4) complementation in P. berghei.
Main Results:
- uis4Δc parasites showed severe defects in liver stage development, highlighting the importance of the UIS4 C-terminal domain.
- P. falciparum ETRAMPs could not rescue UIS4 function in P. berghei, indicating a lack of functional substitution.
- PcUIS4 successfully restored UIS4 function in P. berghei, demonstrating cross-species complementation.
Conclusions:
- The C-terminal domain of UIS4 is essential for its function in Plasmodium berghei liver stage development.
- Plasmodium falciparum ETRAMPs are not functional orthologs of P. berghei UIS4.
- Malaria parasites may possess species-specific parasitophorous vacuole membrane proteins, contributing to their narrow host ranges.
Related Concept Videos
Symbiosis
Diversity of Protists II
Introduction to Membrane Proteins
Fungal Phylum Microsporidia
Protein Transport to the Inner Chloroplast Membrane
Single-pass Transmembrane Proteins

