Related Experiment Video
Updated: Jun 21, 2026

Tractable Mammalian Cell Infections with Protozoan-primed Bacteria
Published on: April 2, 2013
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.
Abstract:
The apicomplexan protozoan parasite Cryptosporidium parvum is responsible for cryptosporidiosis, which is a zoonotic intestinal illness that affects newborn cattle, wild animals, and people all over the world. Mammalian monocytes are bone marrow-derived myeloid leukocytes with important defense effector functions in early host innate immunity due to their ATP purinergic-, CD14- and CD16-receptors, adhesion, migration and phagocytosis capacities, inflammatory, and anti-parasitic properties. The formation of monocyte extracellular traps (METs) has recently been reported as an additional effector mechanism against apicomplexan parasites. Nonetheless, nothing is known in the literature on METs extrusion neither towards C. parvum-oocysts nor sporozoites. Herein, ATP purinergic receptor P2X1, glycolysis, Notch signaling, and lactate monocarboxylate transporters (MCT) were investigated in C. parvum-exposed bovine monocytes under intestinal physioxia (5% O2) and hyperoxia (21% O2; most commonly used hyperoxic laboratory conditions). C. parvum-triggered suicidal METs were confirmed by complete rupture of exposed monocytes, co-localization of extracellular DNA with myeloperoxidase (MPO) and histones (H1-H4) via immunofluorescence- and confocal microscopy analyses. C. parvum-induced suicidal METs resulted not only in oocyst entrapment but also in hindered sporozoite mobility from oocysts according to scanning electron microscopy (SEM) analyses. Early parasite-induced bovine monocyte activation, accompanied by membrane protrusions toward C. parvum-oocysts/sporozoites, was unveiled using live cell 3D-holotomographic microscopy analysis. The administration of NF449, an inhibitor of the ATP purinergic receptor P2X1, to monocytes subjected to varying oxygen concentrations did not yield a noteworthy decrease in C. parvum-induced METosis. This suggests that the cell death process is not dependent on P2X1. Additionally, blockage of glycolysis in monocyte through 2-deoxy glucose (2-DG) inhibition reduced C. parvum-induced METosis but not significantly. According to monocyte energetic state measurements, C. parvum-exposed cells neither increased extracellular acidification rates (ECAR) nor oxygen consumption rates (OCR). Lactate monocarboxylate transporters (MCT) inhibitor (i.e., AR-C 141990) treatments significantly diminished C. parvum-mediated METs extrusion under physioxic (5% O2) condition. Similarly, treatment with either DAPT or compound E, two selective Notch inhibitors, exhibited no significant suppressive effects on bovine MET production. Overall, for the first time, we demonstrate C. parvum-mediated METosis as P2X1-independent but as an MCT-dependent defense mechanism under intestinal physioxia (5% CO2) conditions. METs findings suggest anti-cryptosporidial effects through parasite entrapment and inhibition of sporozoite excystation.
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.
Related Concept Videos
Fungal Phylum Microsporidia
Diversity of Protists II
Amebiasis

