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In Situ Monitoring of Transiently Formed Molecular Chaperone Assemblies in Bacteria, Yeast, and Human Cells
Published on: September 2, 2019
Exported plasmodial J domain protein, PFE0055c, and PfHsp70-x form a specific co-chaperone-chaperone partnership
Tanima Dutta1,2, Harpreet Singh3, Jason E Gestwicki4
1The Vice Chancellery, The University of Notre Dame Australia, Fremantle, WA, Australia.
Abstract:
Plasmodium falciparum is a unicellular protozoan parasite and causative agent of a severe form of malaria in humans, accounting for very high worldwide fatality rates. At the molecular level, survival of the parasite within the human host is mediated by P. falciparum heat shock proteins (PfHsps) that provide protection during febrile episodes. The ATP-dependent chaperone activity of Hsp70 relies on the co-chaperone J domain protein (JDP), with which it forms a chaperone-co-chaperone complex. The exported P. falciparum JDP (PfJDP), PFA0660w, has been shown to stimulate the ATPase activity of the exported chaperone, PfHsp70-x. Furthermore, PFA0660w has been shown to associate with another exported PfJDP, PFE0055c, and PfHsp70-x in J-dots, highly mobile structures found in the infected erythrocyte cytosol. Therefore, the present study aims to conduct a structural and functional characterization of the full-length exported PfJDP, PFE0055c. Recombinant PFE0055c was successfully expressed and purified and found to stimulate the basal ATPase activity of PfHsp70-x to a greater extent than PFA0660w but, like PFA0660w, did not significantly stimulate the basal ATPase activity of human Hsp70. Small-molecule inhibition assays were conducted to determine the effect of known inhibitors of JDPs (chalcone, C86) and Hsp70 (benzothiazole rhodacyanines, JG231 and JG98) on the basal and PFE0055c-stimulated ATPase activity of PfHsp70-x. In this study, JG231 and JG98 were found to inhibit both the basal and PFE0055c-stimulated ATPase activity of PfHsp70-x. C86 only inhibited the PFE0055c-stimulated ATPase activity of PfHsp70-x, consistent with PFE0055c binding to PfHsp70-x through its J domain. This research has provided further insight into the molecular basis of the interaction between these exported plasmodial chaperones, which could inform future antimalarial drug discovery studies.
Insights
This study characterizes Plasmodium falciparum J domain protein (PfJDP) PFE0055c, revealing its enhanced stimulation of PfHsp70-x ATPase activity. Findings inform antimalarial drug discovery by detailing parasite chaperone interactions.
Area of Science:
- Molecular parasitology
- Protein biochemistry
- Drug discovery
Background:
- Plasmodium falciparum causes severe malaria, with parasite survival dependent on heat shock proteins (PfHsps).
- Hsp70 chaperone activity requires J domain protein (JDP) co-chaperones, forming essential complexes.
- Exported PfJDPs like PFA0660w and PFE0055c interact with exported PfHsp70-x in infected cells.
Purpose of the Study:
- To structurally and functionally characterize the full-length exported Plasmodium falciparum J domain protein (PfJDP), PFE0055c.
- To elucidate the interaction between PFE0055c and the exported chaperone PfHsp70-x.
- To explore the potential of these interactions for antimalarial drug development.
Main Methods:
- Recombinant expression and purification of PFE0055c.
- Assays measuring the ATPase activity of PfHsp70-x and human Hsp70, both basal and stimulated by PFE0055c.
- Small-molecule inhibition assays using known JDP and Hsp70 inhibitors (C86, JG231, JG98).
Main Results:
- Purified PFE0055c significantly stimulated PfHsp70-x ATPase activity more than PFA0660w.
- PFE0055c did not significantly stimulate human Hsp70 ATPase activity.
- Inhibitors JG231 and JG98 blocked both basal and PFE0055c-stimulated PfHsp70-x ATPase activity.
- Inhibitor C86 selectively blocked PFE0055c-stimulated PfHsp70-x ATPase activity, suggesting PFE0055c binding via its J domain.
Conclusions:
- PFE0055c is a potent stimulator of exported PfHsp70-x ATPase activity.
- The interaction between PFE0055c and PfHsp70-x is specific and druggable.
- Understanding these exported plasmodial chaperone interactions is crucial for developing novel antimalarial therapies.
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