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Toxicological Assays for Testing Effects of an Epigenetic Drug on Development, Fecundity and Survivorship of Malaria Mosquitoes
Published on: January 16, 2015
Protein-DNA complex is the exclusive malaria parasite component that activates dendritic cells and triggers innate
Xianzhu Wu1, Nagaraj M Gowda, Sanjeev Kumar
1Department of Biochemistry and Molecular Biology, Pennsylvania State University College of Medicine, Hershey, PA 17033, USA.
Abstract:
Dendritic cells (DCs) play a crucial role in the development of protective immunity to malaria. However, it remains unclear how malaria parasites trigger immune responses in DCs. In this study, we purified merozoites, food vacuoles, and parasite membrane fragments released during the Plasmodium falciparum schizont burst to homogeneity and tested for the activation of bone marrow-derived DCs from wild-type and TLR2(-/-), TLR4(-/-), TLR9(-/-), and MyD88(-/-) C57BL/6J mice. The results demonstrate that a protein-DNA complex is the exclusive parasite component that activates DCs by a TLR9-dependent pathway to produce inflammatory cytokines. Complex formation with proteins is essential for the entry of parasite DNA into DCs for TLR9 recognition and, thus, proteins convert inactive DNA into a potent immunostimulatory molecule. Exogenous cationic polymers, polylysine and chitosan, can impart stimulatory activity to parasite DNA, indicating that complex formation involves ionic interactions. Merozoites and DNA-protein complex could also induce inflammatory cytokine responses in human blood DCs. Hemozoin is neither a TLR9 ligand for DCs nor functions as a carrier of DNA into cells. Additionally, although TLR9 is critical for DCs to induce the production of IFN-gamma by NK cells, this receptor is not required for NK cells to secret IFN-gamma, and cell-cell contact among myeloid DCs, plasmacytoid DCs, and NK cells is required for IFN-gamma production. Together, these results contribute substantially toward the understanding of malaria parasite-recognition mechanisms. More importantly, our finding that proteins and carbohydrate polymers are able to confer stimulatory activity to an otherwise inactive parasite DNA have important implications for the development of a vaccine against malaria.
Insights
Malaria parasites activate dendritic cells (DCs) via a protein-DNA complex, engaging Toll-like receptor 9 (TLR9). This interaction is crucial for initiating immune responses and developing a malaria vaccine.
Area of Science:
- Immunology
- Parasitology
- Molecular Biology
Background:
- Dendritic cells (DCs) are vital for protective immunity against malaria.
- The precise mechanisms by which malaria parasites activate DCs are not fully understood.
- Plasmodium falciparum schizont rupture releases various parasite components.
Purpose of the Study:
- To identify the Plasmodium falciparum components that activate dendritic cells.
- To elucidate the molecular pathways involved in DC activation by malaria parasites.
- To explore the potential of these findings for malaria vaccine development.
Main Methods:
- Purification of merozoites, food vacuoles, and parasite membrane fragments.
- Activation assays using bone marrow-derived DCs from wild-type and knockout mice (TLR2, TLR4, TLR9, MyD88).
- Stimulation of human blood DCs with parasite components and exogenous polymers.
Main Results:
- A protein-DNA complex, not individual components like hemozoin, exclusively activates DCs via a Toll-like receptor 9 (TLR9)-dependent pathway.
- Proteins are essential for parasite DNA entry into DCs for TLR9 recognition, converting inactive DNA into an immunostimulatory molecule.
- Cationic polymers (polylysine, chitosan) can confer stimulatory activity to parasite DNA, suggesting ionic interactions in complex formation.
Conclusions:
- Malaria parasite recognition by DCs primarily occurs through a TLR9-dependent pathway activated by a protein-DNA complex.
- Proteins and carbohydrate polymers can enhance the immunogenicity of parasite DNA, offering novel strategies for malaria vaccine design.
- TLR9 is critical for DC-mediated induction of IFN-gamma by NK cells, requiring cell-cell contact.
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