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Phage Phenomics: Physiological Approaches to Characterize Novel Viral Proteins
Published on: June 11, 2015
Unravelling the differences: comparative proteomic analysis of a clonal virulent and an attenuated Histomonas
Andreas Monoyios1, Martina Patzl2, Sarah Schlosser3
1Clinic for Poultry and Fish Medicine, Department for Farm Animals and Veterinary Public Health, University of Veterinary Medicine Vienna, Veterinärplatz 1, A-1210 Vienna, Austria.
Abstract:
The current study focused on Histomonas meleagridis, a unicellular protozoan, responsible for histomonosis in poultry. Recently, the occurrence of the disease increased due to the ban of effective chemotherapeutic drugs. Basic questions regarding the molecular biology, virulence mechanisms or even life cycle of the flagellate are still puzzling. In order to address some of these issues, we conducted a comparative proteomic analysis of a virulent and an attenuated H. meleagridis strain traced back to a single cell and propagated in vitro as monoxenic mono-eukaryotic cultures. Using two-dimensional electrophoresis (2-DE) for proteome visualization with computational 2-DE gel image and statistical analysis, upregulated proteins in either of the two H. meleagridis strains were detected. Statistical analysis fulfilling two criteria (≥threefold upregulation and P < 0.05) revealed 119 differentially expressed protein spots out of which 62 spots were noticed in gels with proteins from the virulent and 57 spots in gels with proteins from the attenuated culture. Mass spectrometric analysis of 32 protein spots upregulated in gels of the virulent strain identified 17 as H. meleagridis-specific. The identification revealed that these spots belonged to eight different proteins, with the majority related to cellular stress management. Two ubiquitous cellular proteins, actin and enolase, were upregulated in multiple gel positions in this strain, indicating either post-translational modification or truncation, or even both. Additionally, a known virulence factor named legumain cysteine peptidase was also detected. In contrast to this, mass spectrometric analysis of 49 protein spots, upregulated in gels of the attenuated strain, singled out 32 spots as specific for the flagellate. These spots were shown to correspond to 24 different proteins that reflect the increased metabolism, in vitro adaptation of the parasite, and amoeboid morphology. In addition to H. meleagridis proteins, the analysis identified differential expression of Escherichia coli DH5α proteins that could have been influenced by the co-cultivated H. meleagridis strain, indicating a reciprocal interaction of these two organisms during monoxenic cultivation.
Insights
This study compared virulent and attenuated Histomonas meleagridis strains using proteomics. Key differences were found in proteins related to cellular stress and metabolism, offering insights into parasite biology and virulence.
Area of Science:
- Parasitology
- Molecular Biology
- Proteomics
Background:
- Histomonas meleagridis causes histomonosis in poultry, a disease with increasing prevalence due to drug bans.
- Fundamental knowledge gaps exist regarding the molecular biology, virulence, and life cycle of H. meleagridis.
Purpose of the Study:
- To conduct a comparative proteomic analysis of virulent and attenuated H. meleagridis strains.
- To identify differentially expressed proteins and gain insights into virulence and adaptation mechanisms.
Main Methods:
- Comparative proteomic analysis using two-dimensional electrophoresis (2-DE) and mass spectrometry.
- Statistical analysis of protein expression with stringent criteria (≥threefold change, P < 0.05).
- Monoxenic cultivation of H. meleagridis strains with Escherichia coli DH5α.
Main Results:
- 119 differentially expressed protein spots identified between virulent and attenuated strains.
- Virulent strain showed upregulation of proteins related to cellular stress management, including legumain cysteine peptidase.
- Attenuated strain exhibited proteins associated with increased metabolism, in vitro adaptation, and amoeboid morphology.
Conclusions:
- Proteomic differences highlight distinct strategies employed by virulent and attenuated H. meleagridis strains.
- Findings provide a foundation for understanding H. meleagridis virulence and developing novel control strategies.
- Evidence of reciprocal interaction between H. meleagridis and E. coli during cultivation was observed.

