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Updated: Jan 28, 2026

Cultivation of Heligmosomoides Polygyrus: An Immunomodulatory Nematode Parasite and its Secreted Products
Published on: April 6, 2015
Molecular characterization of Histomonas meleagridis exoproteome with emphasis on protease secretion and
Rounik Mazumdar1, Katharina Nöbauer2, Karin Hummel2
1Clinic for Poultry and Fish Medicine, Department for Farm Animals and Veterinary Public Health, University of Veterinary Medicine Vienna, Vienna, Austria.
Abstract:
The exoproteome of parasitic protists constitutes extracellular proteins that play a fundamental role in host-parasite interactions. Lytic factors, especially secreted proteases, are capable of modulating tissue invasion, thereby aggravating host susceptibility. Despite the important role of exoproteins during infection, the exoproteomic data on Histomonas meleagridis are non-existent. The present study employed traditional 1D-in-gel-zymography (1D-IGZ) and micro-LC-ESI-MS/MS (shotgun proteomics), to investigate H. meleagridis exoproteomes, obtained from a clonal virulent and an attenuated strain. Both strains were maintained as mono-eukaryotic monoxenic cultures with Escherichia coli. We demonstrated active in vitro secretion kinetics of proteases by both parasite strains, with a widespread proteolytic activity ranging from 17 kDa to 120 kDa. Based on protease inhibitor susceptibility assay, the majority of proteases present in both exoproteomes belonged to the family of cysteine proteases and showed stronger activity in the exoproteome of a virulent H. meleagridis. Shotgun proteomics, aided by customized database search, identified 176 proteins including actin, potential moonlighting glycolytic enzymes, lytic molecules such as pore-forming proteins (PFPs) and proteases like cathepsin-L like cysteine protease. To quantify the exoproteomic differences between the virulent and the attenuated H. meleagridis cultures, a sequential window acquisition of all theoretical spectra mass spectrometric (SWATH-MS) approach was applied. Surprisingly, results showed most of the exoproteomic differences to be of bacterial origin, especially targeting metabolism and locomotion. By deciphering such molecular signatures, novel insights into a complex in vitro protozoan- bacteria relationship were elucidated.
Insights
This study investigated the exoproteomes of Histomonas meleagridis strains, revealing cysteine proteases and bacterial proteins. These findings offer insights into parasite-host interactions and the protozoan-bacteria relationship.
Area of Science:
- Parasitology
- Proteomics
- Microbiology
Background:
- The exoproteome of parasitic protists is crucial for host interactions.
- Secreted proteases modulate tissue invasion and host susceptibility.
- Exoproteomic data for Histomonas meleagridis was previously unavailable.
Purpose of the Study:
- To investigate the exoproteomes of virulent and attenuated Histomonas meleagridis strains.
- To identify secreted proteins, particularly proteases, involved in host-parasite interactions.
- To elucidate the molecular signatures of the in vitro protozoan-bacteria relationship.
Main Methods:
- 1D-in-gel-zymography (1D-IGZ) and micro-LC-ESI-MS/MS (shotgun proteomics) were employed.
- Protease inhibitor susceptibility assays were used to characterize protease activity.
- Sequential window acquisition of all theoretical spectra mass spectrometric (SWATH-MS) was applied for quantitative analysis.
Main Results:
- Both virulent and attenuated H. meleagridis strains secreted proteases with widespread proteolytic activity (17-120 kDa).
- Cysteine proteases predominated in the exoproteomes, with higher activity in the virulent strain.
- Shotgun proteomics identified 176 proteins, including actin, glycolytic enzymes, pore-forming proteins, and cathepsin-L like proteases.
- SWATH-MS revealed that most exoproteomic differences were of bacterial origin, impacting metabolism and locomotion.
Conclusions:
- The study characterized the exoproteomes of H. meleagridis, identifying key proteases and bacterial components.
- Differences in exoproteomic profiles, particularly bacterial contributions, may influence parasite virulence.
- These findings provide novel insights into the complex in vitro protozoan-bacteria relationship and potential therapeutic targets.
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