Oxidative stress fuels Trypanosoma cruzi infection in mice

Claudia N Paiva1, Daniel F Feijó, Fabianno F Dutra

  • 1Laboratório de Inflamação e Imunidade, Departamento de Imunologia, Instituto de Microbiologia Professor Paulo de Góes (IMPPG), Rio de Janeiro, Brazil.

Insights

Activating the NRF2-HO-1 pathway reduces Trypanosoma cruzi infection by modulating macrophage iron levels, not adaptive immunity. This suggests oxidative stress aids parasite persistence and offers new therapeutic targets.

Area of Science:

  • Immunology
  • Cell Biology
  • Parasitology

Background:

  • Oxidative damage aids microbe elimination by macrophages.
  • Nuclear factor, erythroid-derived 2, like 2 (NRF2) controls antioxidant responses, including heme-oxygenase-1 (HO-1).
  • NRF2/HO-1 activation unexpectedly reduces pathogen infection, but mechanisms remain unclear.

Purpose of the Study:

  • Investigate the role of NRF2/HO-1 in Trypanosoma cruzi infection.
  • Elucidate the mechanism by which NRF2/HO-1 impacts parasite burden.
  • Explore potential therapeutic strategies targeting oxidative stress in T. cruzi infection.

Main Methods:

  • Induction of NRF2/HO-1 in mice using cobalt protoporphyrin (CoPP).
  • Assessment of parasitemia and tissue parasitism.
  • Inhibition of HO-1 activity and evaluation of its effects.
  • Analysis of macrophage parasitism and related cellular mechanisms.
  • Investigation of iron metabolism in infected macrophages.

Main Results:

  • CoPP treatment reduced T. cruzi parasitemia and tissue load.
  • HO-1 inhibition increased parasitemia, while CoPP-induced effects were independent of adaptive immunity.
  • CoPP reduced macrophage parasitism via NRF2, independent of apoptosis, type I IFN, or NO.
  • Antioxidants decreased parasite burden by increasing ferritin and ferroportin, reducing labile iron.
  • Ferrous sulfate reversed CoPP's protective effects.

Conclusions:

  • Oxidative stress, orchestrated by NRF2/HO-1, limits T. cruzi parasite persistence.
  • NRF2/HO-1-mediated reduction in macrophage parasitism involves iron sequestration.
  • Targeting oxidative stress and iron metabolism presents a novel therapeutic avenue against T. cruzi.

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