Related Experiment Video
Updated: Sep 21, 2026

HeLa Based Cell Free Expression Systems for Expression of Plasmodium Rhoptry Proteins
Published on: June 10, 2015
Nanobody generation and structural characterization of Plasmodium falciparum 6-cysteine protein Pf12p
Melanie H Dietrich1,2, Li-Jin Chan1,2, Amy Adair1
1The Walter and Eliza Hall Institute of Medical Research, Infectious Diseases and Immune Defences Division, Parkville, Victoria, Australia.
Insights
The first crystal structure of Plasmodium falciparum 6-cysteine protein Pf12p was determined, revealing its two-domain fold. This structural insight and generated nanobodies offer new tools for studying malaria parasite 6-cysteine proteins.
Area of Science:
- Structural biology
- Malaria research
- Parasitology
Background:
- Surface-associated proteins are crucial for Plasmodium parasite development and vaccine targets.
- The Plasmodium falciparum 6-cysteine (6-cys) protein family has stage-specific expression and roles in parasite transmission and immune evasion.
- Limited structural data exists for most 6-cys proteins, hindering functional understanding.
Purpose of the Study:
- To determine the crystal structure of the Plasmodium falciparum 6-cysteine protein Pf12p.
- To characterize Pf12p's structural features and its interaction with other proteins.
- To generate and characterize nanobodies targeting Pf12p for further research.
Main Methods:
- X-ray crystallography to determine the 3D structure of Pf12p at 2.8 Å resolution.
- Co-immunoprecipitation assays to investigate protein-protein interactions.
- Nanobody generation and epitope mapping using binding assays.
Main Results:
- The first crystal structure of Pf12p was solved, showing a monomeric molecule with two canonical 6-cys domains (D1 and D2).
- Pf12p does not form a complex with Pf41, unlike its paralog Pf12.
- Ten Pf12p-specific nanobodies were generated, binding to distinct epitopes within the D2 domain or at the D1-D2 interface.
Conclusions:
- The determined structure of Pf12p provides crucial structural insights into the 6-cys protein family.
- The generated nanobodies serve as valuable tools for probing the functions of Pf12p and related 6-cys proteins.
- This work lays the foundation for developing novel strategies to target Plasmodium falciparum 6-cys proteins.
Abstract:
Surface-associated proteins play critical roles in the Plasmodium parasite life cycle and are major targets for vaccine development. The 6-cysteine (6-cys) protein family is expressed in a stage-specific manner throughout Plasmodium falciparum life cycle and characterized by the presence of 6-cys domains, which are β-sandwich domains with conserved sets of disulfide bonds. Although several 6-cys family members have been implicated to play a role in sexual stages, mosquito transmission, evasion of the host immune response and host cell invasion, the precise function of many family members is still unknown and structural information is only available for four 6-cys proteins. Here, we present to the best of our knowledge, the first crystal structure of the 6-cys protein Pf12p determined at 2.8 Å resolution. The monomeric molecule folds into two domains, D1 and D2, both of which adopt the canonical 6-cys domain fold. Although the structural fold is similar to that of Pf12, its paralog in P. falciparum, we show that Pf12p does not complex with Pf41, which is a known interaction partner of Pf12. We generated 10 distinct Pf12p-specific nanobodies which map into two separate epitope groups; one group which binds within the D2 domain, while several members of the second group bind at the interface of the D1 and D2 domain of Pf12p. Characterization of the structural features of the 6-cys family and their associated nanobodies provide a framework for generating new tools to study the diverse functions of the 6-cys protein family in the Plasmodium life cycle.
More Related Videos
09:23Plasmodium falciparum Gametocyte Culture and Mosquito Infection Through Artificial Membrane Feeding
Published on: July 3, 2020
09:13Author Spotlight: Identifying Compensatory Pathways in Malaria Parasites Containing Hypomorphic Allele of Essential Protein Kinases
Published on: November 22, 2024