MCT-Dependent Cryptosporidium parvum-Induced Bovine Monocyte Extracellular Traps (METs) under Physioxia

Seyed Sajjad Hasheminasab1, Iván Conejeros1, Ulrich Gärtner2

  • 1Institute of Parasitology, Biomedical Research Center Seltersberg (BFS), Justus Liebig University Giessen, 35392 Giessen, Germany.

Biology
|July 29, 2023
PubMed

Insights

Monocyte extracellular traps (METs) fight Cryptosporidium parvum by trapping oocysts and hindering sporozoites. This defense is lactate monocarboxylate transporter (MCT)-dependent, not P2X1-dependent, under low oxygen conditions.

Area of Science:

  • Immunology
  • Parasitology
  • Cell Biology

Background:

  • Cryptosporidium parvum causes zoonotic cryptosporidiosis in humans and animals.
  • Monocytes are key innate immune cells with anti-parasitic functions.
  • Monocyte extracellular traps (METs) are an emerging defense mechanism against parasites.

Purpose of the Study:

  • To investigate the role of ATP purinergic receptor P2X1, glycolysis, Notch signaling, and lactate monocarboxylate transporters (MCT) in Cryptosporidium parvum-induced MET formation in bovine monocytes.
  • To determine the oxygen-dependent nature of METosis under intestinal physioxia and hyperoxia.
  • To elucidate the mechanism of METs in combating C. parvum oocysts and sporozoites.

Main Methods:

  • Exposure of bovine monocytes to C. parvum under varying oxygen conditions (5% O2 and 21% O2).
  • Inhibition studies using P2X1 antagonist (NF449), glycolysis inhibitor (2-DG), MCT inhibitor (AR-C 141990), and Notch inhibitors (DAPT, compound E).
  • Microscopy techniques including immunofluorescence, confocal, scanning electron microscopy (SEM), and live cell 3D-holotomographic microscopy.
  • Measurement of monocyte energetic states (ECAR and OCR).

Main Results:

  • C. parvum-induced suicidal METs were confirmed, leading to oocyst entrapment and hindered sporozoite mobility.
  • MET formation was P2X1-independent and only partially dependent on glycolysis.
  • MCT inhibition significantly reduced MET extrusion under physioxic conditions (5% O2).
  • Notch signaling inhibition did not affect bovine MET production.
  • Monocytes did not alter ECAR or OCR upon C. parvum exposure.

Conclusions:

  • C. parvum-mediated METosis is a P2X1-independent but MCT-dependent defense mechanism.
  • METs contribute to anti-cryptosporidial effects by entrapping parasites and inhibiting sporozoite excystation.
  • This study highlights the importance of MCTs in monocyte-mediated immunity against C. parvum under intestinal physioxia.

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