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Published on: August 16, 2017
Complete subunit sequences, structure and evolution of the 6 x 6-mer hemocyanin from the common house centipede,
Kristina Kusche1, Anne Hembach, Silke Hagner-Holler
1Institute of Zoology, Molecular Animal Physiology, University of Mainz, Germany.
Insights
This study reveals the complete molecular structure of hemocyanin in the house centipede Scutigera coleoptrata, the first myriapod hemocyanin fully sequenced. Findings illuminate hemocyanin evolution and diversity in arthropods.
Area of Science:
- Biochemistry
- Evolutionary Biology
- Molecular Biology
Background:
- Hemocyanins are copper-containing proteins crucial for oxygen transport in arthropods.
- Previously, hemocyanins were thought to be absent in Myriapoda, unlike in Chelicerata and Crustacea.
Purpose of the Study:
- To determine the complete molecular structure of hemocyanin in Scutigera coleoptrata (house centipede).
- To investigate the evolutionary history and structure-function relationships of myriapod hemocyanins.
Main Methods:
- 2D-gel electrophoresis
- MALDI-TOF mass spectrometry
- Protein and cDNA sequencing
- Homology modeling
Main Results:
- The first full sequencing of a myriapod hemocyanin from Scutigera coleoptrata.
- Identified a 6 x 6-mer hemocyanin with four distinct subunit types (49.5-55.5% identity) and a fifth divergent subunit.
- Phylogenetic analyses indicate myriapod hemocyanins are monophyletic, with at least three subunits predating Chilopoda and Diplopoda divergence (>420 mya).
- Demonstrated highly variable substitution rates among myriapod hemocyanin subunits, contrasting with other arthropod groups.
Conclusions:
- This research provides the first comprehensive molecular data on myriapod hemocyanin.
- The findings suggest complex evolutionary pathways for hemocyanin subunits within Myriapoda.
- Phylogenetic results support monophyletic Mandibulata but not a Myriapoda-Hexapoda clade.
Abstract:
Hemocyanins are large oligomeric copper-containing proteins that serve for the transport of oxygen in many arthropod species. While studied in detail in the Chelicerata and Crustacea, hemocyanins had long been considered unnecessary in the Myriapoda. Here we report the complete molecular structure of the hemocyanin from the common house centipede Scutigera coleoptrata (Myriapoda: Chilopoda), as deduced from 2D-gel electrophoresis, MALDI-TOF mass spectrometry, protein and cDNA sequencing, and homology modeling. This is the first myriapod hemocyanin to be fully sequenced, and allows the investigation of hemocyanin structure-function relationship and evolution. S. coleoptrata hemocyanin is a 6 x 6-mer composed of four distinct subunit types that occur in an approximate 2 : 2 : 1 : 1 ratio and are 49.5-55.5% identical. The cDNA of a fifth, highly diverged, putative hemocyanin was identified that is not included in the native 6 x 6-mer hemocyanin. Phylogenetic analyses show that myriapod hemocyanins are monophyletic, but at least three distinct subunit types evolved before the separation of the Chilopoda and Diplopoda more than 420 million years ago. In contrast to the situation in the Crustacea and Chelicerata, the substitution rates among the myriapod hemocyanin subunits are highly variable. Phylogenetic analyses do not support a common clade of Myriapoda and Hexapoda, whereas there is evidence in favor of monophyletic Mandibulata.
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