Effect of Seasonal Malaria Chemoprevention on Immune Markers of Exhaustion and Regulation

Abstract Background Seasonal malaria chemoprevention (SMC) is a novel strategy to reduce malaria infections in children. Infection with Plasmodium falciparum results in immune dysfunction characterized by elevated expression of markers associated with exhaustion, such as PD1 and LAG3, and regulatory...

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Veröffentlicht in:The Journal of infectious diseases 2020-01, Vol.221 (1), p.138-145
Hauptverfasser: Attaher, Oumar, Zaidi, Irfan, Kwan, Jennifer L, Issiaka, Djibrilla, Samassekou, Mamoudou B, Cisse, Kadidia B, Coulibaly, Barou, Keita, Sekouba, Sissoko, Sibiri, Traore, Tiangoua, Diarra, Kalifa, Diarra, Bacary S, Dembele, Adama, Kanoute, Moussa B, Mahamar, Almahamoudou, Barry, Amadou, Fried, Michal, Dicko, Alassane, Duffy, Patrick E
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Sprache:eng
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Zusammenfassung:Abstract Background Seasonal malaria chemoprevention (SMC) is a novel strategy to reduce malaria infections in children. Infection with Plasmodium falciparum results in immune dysfunction characterized by elevated expression of markers associated with exhaustion, such as PD1 and LAG3, and regulatory CD4+FOXP3+ T cells. Methods In the current study, the impact of seasonal malaria chemoprevention on malaria-induced immune dysfunction, as measured by markers associated with exhaustion and regulatory T cells, was explored by flow cytometry. Results Children that received seasonal malaria chemoprevention had fewer malaria episodes and showed significantly lower fold changes in CD4+PD1+ and CD4+PD1+LAG3+ compared to those that did not receive SMC. Seasonal malaria chemoprevention had no observable effect on fold changes in CD8 T cells expressing PD1 or CD160. However, children receiving SMC showed greater increases in CD4+FOXP3+ T regulatory cells compared to children not receiving SMC. Conclusions These results provide important insights into the dynamics of malaria-induced changes in the CD4 T-cell compartment of the immune system and suggest that the reduction of infections due to seasonal malaria chemoprevention may also prevent immune dysfunction. Clinical Trials Registration NCT02504918.
ISSN:0022-1899
1537-6613
DOI:10.1093/infdis/jiz415