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Published on: February 25, 2022
Isolation and molecular cloning of a fish myeloperoxidase
Rosario Castro1, M Carla Piazzon, Manuel Noya
1Instituto de Acuicultura y Departamento de Biología Celular y Ecología, Universidad de Santiago de Compostela, 15782 Santiago de Compostela, Spain.
Abstract:
Myeloperoxidase (MPO) is a conspicuous enzyme in neutrophils of many fish species. Although the MPO gene has been identified in some fish species, the structure and functions of the protein remain to be determined in these vertebrates. In the present study, we isolated turbot neutrophil MPO from kidney cells by affinity chromatography, with Ulva rigida acidic sulphated polysaccharides (ASP), some of which resemble glycosaminoglycans, and Sepharose. The product obtained, of approximately 150kDa molecular weight and with peroxidase activity, was examined by SDS-page electrophoresis under reduced conditions and immunoblotting, and a single band of about 75kDa was observed. The results obtained suggest that turbot MPO is a dimer and that the band of 75kDa probably corresponds to a monomer generated by treatment of the samples with the reducing agent. The band was analysed by electromatrix-assisted laser desorption ionization-time-of flight-mass spectrometry (MALDI-TOF-MS) and liquid chromatography-electrospray ionization-ion trap mass spectrometry, dynamic exclusion mode (LC-ESI-IT DE), to determine the amino acid composition of some peptides. The peptides obtained were very similar to myeloperoxidases of other organisms, including other fish and mammals, and were used to design the primers for cDNA amplification. A 567bp product was amplified and the deduced amino acid sequence, which contains several putative N-glycosylation and O-glycosylation sites, was compared with other myeloperoxidases. As expected, turbot MPO was more similar to MPO from other fish species (67-86% identity), where the phylogenetic tree obtained agrees with the taxonomic hierarchy, than to MPO from mammals (55-57% identity) and other groups. The results obtained in the present study will also allow functional studies to be carried out with turbot neutrophil MPO enzyme, as well as analysis of MPO gene expression under different stimuli.
Insights
This study isolated turbot neutrophil myeloperoxidase (MPO), revealing its dimeric structure and 75kDa monomer. The findings enable further functional and gene expression research on fish MPO.
Area of Science:
- Biochemistry
- Immunology
- Aquatic Biology
Background:
- Myeloperoxidase (MPO) is a key neutrophil enzyme in fish, but its structure and function are poorly understood.
- Previous studies identified the MPO gene in fish, yet detailed protein characterization is lacking.
Purpose of the Study:
- To isolate and characterize turbot neutrophil MPO.
- To determine the molecular weight, subunit composition, and partial amino acid sequence of turbot MPO.
- To facilitate future functional and gene expression studies of fish MPO.
Main Methods:
- Isolation of turbot neutrophil MPO using affinity chromatography with Ulva rigida acidic sulphated polysaccharides (ASP) and Sepharose.
- Analysis of purified MPO by SDS-PAGE electrophoresis and immunoblotting.
- Peptide analysis using MALDI-TOF-MS and LC-ESI-IT DE mass spectrometry for amino acid sequencing.
- cDNA amplification and sequence analysis.
Main Results:
- Turbot MPO was isolated with a molecular weight of approximately 150kDa, suggesting a dimeric structure.
- SDS-PAGE revealed a 75kDa monomer under reducing conditions.
- Peptide analysis confirmed similarity to MPO from other species, enabling primer design.
- A 567bp cDNA product was amplified, revealing putative glycosylation sites and high sequence identity with fish MPO (67-86%).
Conclusions:
- Turbot neutrophil MPO is a dimer composed of ~75kDa monomers.
- The characterized turbot MPO sequence provides a foundation for future functional and expression studies.
- Phylogenetic analysis supports the taxonomic relationships of MPO across different vertebrate groups.
