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Exposure-dependent control of malaria-induced inflammation in children
Silvia Portugal1, Jacqueline Moebius1, Jeff Skinner1
1Laboratory of Immunogenetics, National Institute of Allergy and Infectious Diseases, National Institutes of Health, Rockville, Maryland, United States of America.
Abstract:
In malaria-naïve individuals, Plasmodium falciparum infection results in high levels of parasite-infected red blood cells (iRBCs) that trigger systemic inflammation and fever. Conversely, individuals in endemic areas who are repeatedly infected are often asymptomatic and have low levels of iRBCs, even young children. We hypothesized that febrile malaria alters the immune system such that P. falciparum re-exposure results in reduced production of pro-inflammatory cytokines/chemokines and enhanced anti-parasite effector responses compared to responses induced before malaria. To test this hypothesis we used a systems biology approach to analyze PBMCs sampled from healthy children before the six-month malaria season and the same children seven days after treatment of their first febrile malaria episode of the ensuing season. PBMCs were stimulated with iRBC in vitro and various immune parameters were measured. Before the malaria season, children's immune cells responded to iRBCs by producing pro-inflammatory mediators such as IL-1β, IL-6 and IL-8. Following malaria there was a marked shift in the response to iRBCs with the same children's immune cells producing lower levels of pro-inflammatory cytokines and higher levels of anti-inflammatory cytokines (IL-10, TGF-β). In addition, molecules involved in phagocytosis and activation of adaptive immunity were upregulated after malaria as compared to before. This shift was accompanied by an increase in P. falciparum-specific CD4+Foxp3- T cells that co-produce IL-10, IFN-γ and TNF; however, after the subsequent six-month dry season, a period of markedly reduced malaria transmission, P. falciparum-inducible IL-10 production remained partially upregulated only in children with persistent asymptomatic infections. These findings suggest that in the face of P. falciparum re-exposure, children acquire exposure-dependent P. falciparum-specific immunoregulatory responses that dampen pathogenic inflammation while enhancing anti-parasite effector mechanisms. These data provide mechanistic insight into the observation that P. falciparum-infected children in endemic areas are often afebrile and tend to control parasite replication.
Insights
Children exposed to malaria develop immune responses that reduce fever and inflammation while improving parasite control. This adaptation helps control Plasmodium falciparum infection in endemic areas.
Area of Science:
- Immunology
- Infectious Diseases
- Systems Biology
Background:
- Plasmodium falciparum infection causes severe inflammation and fever in malaria-naïve individuals.
- Repeated exposure in endemic areas leads to asymptomatic infections with low parasite levels.
- Febrile malaria may induce immune system alterations that modify responses to subsequent P. falciparum re-exposure.
Purpose of the Study:
- To investigate how febrile malaria alters the immune system's response to P. falciparum re-exposure.
- To compare immune responses before and after a malaria episode in children.
- To understand the mechanisms behind asymptomatic P. falciparum infections.
Main Methods:
- Systems biology approach analyzing peripheral blood mononuclear cells (PBMCs) from children.
- PBMCs stimulated in vitro with P. falciparum-infected red blood cells (iRBCs).
- Measurement of pro-inflammatory and anti-inflammatory cytokines, phagocytosis molecules, and T cell responses.
Main Results:
- Before malaria season, PBMCs produced high levels of pro-inflammatory cytokines (IL-1β, IL-6, IL-8) upon iRBC stimulation.
- After malaria treatment, PBMCs showed reduced pro-inflammatory and increased anti-inflammatory cytokine (IL-10, TGF-β) production.
- Upregulation of phagocytosis and adaptive immunity molecules, along with an increase in P. falciparum-specific CD4+ T cells co-producing IL-10, IFN-γ, and TNF.
Conclusions:
- Febrile malaria induces exposure-dependent immunoregulatory responses to P. falciparum.
- These adaptive responses dampen pathogenic inflammation and enhance anti-parasite mechanisms.
- Mechanistic insights into how children in endemic areas control parasite replication and remain afebrile.
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