Molecular Evolution of Arthropod Color Vision Deduced from Multiple Opsin Genes of Jumping Spiders
Open Access
- 24 January 2008
- journal article
- Published by Springer Nature in Journal of Molecular Evolution
- Vol. 66 (2) , 130-137
- https://doi.org/10.1007/s00239-008-9065-9
Abstract
Among terrestrial animals, only vertebrates and arthropods possess wavelength-discrimination ability, so-called “color vision”. For color vision to exist, multiple opsins which encode visual pigments sensitive to different wavelengths of light are required. While the molecular evolution of opsins in vertebrates has been well investigated, that in arthropods remains to be elucidated. This is mainly due to poor information about the opsin genes of non-insect arthropods. To obtain an overview of the evolution of color vision in Arthropoda, we isolated three kinds of opsins, Rh1, Rh2, and Rh3, from two jumping spider species, Hasarius adansoni and Plexippus paykulli. These spiders belong to Chelicerata, one of the most distant groups from Hexapoda (insects), and have color vision as do insects. Phylogenetic analyses of jumping spider opsins revealed a birth and death process of color vision evolution in the arthropod lineage. Phylogenetic positions of jumping spider opsins revealed that at least three opsins had already existed before the Chelicerata-Pancrustacea split. In addition, sequence comparison between jumping spider Rh3 and the shorter wavelength-sensitive opsins of insects predicted that an opsin of the ancestral arthropod had the lysine residue responsible for UV sensitivity. These results strongly suggest that the ancestral arthropod had at least trichromatic vision with a UV pigment and two visible pigments. Thereafter, in each pancrustacean and chelicerate lineage, the opsin repertoire was reconstructed by gene losses, gene duplications, and function-altering amino acid substitutions, leading to evolution of color vision.Keywords
This publication has 34 references indexed in Scilit:
- Cephalochordate Melanopsin: Evolutionary Linkage between Invertebrate Visual Cells and Vertebrate Photosensitive Retinal Ganglion CellsCurrent Biology, 2005
- Ecdysozoan phylogeny and Bayesian inference: first use of nearly complete 28S and 18S rRNA gene sequences to classify the arthropods and their kinMolecular Phylogenetics and Evolution, 2004
- Early Duplication and Functional Diversification of the Opsin Gene Family in InsectsMolecular Biology and Evolution, 2004
- Counterion displacement in the molecular evolution of the rhodopsin familyNature Structural & Molecular Biology, 2004
- Extensive duplications of phototransduction genes in early vertebrate evolution correlate with block (chromosome) duplicationsGenomics, 2004
- Theoretical constraints on oxygen and carbon dioxide concentrations in the Precambrian atmospherePublished by Elsevier ,2003
- THEEVOLUTION OFCOLORVISION ININSECTSAnnual Review of Entomology, 2001
- The rapid generation of mutation data matrices from protein sequencesBioinformatics, 1992
- Evolutionary trees from DNA sequences: A maximum likelihood approachJournal of Molecular Evolution, 1981
- Spectral sensitivities of jumping spider eyesJournal of Comparative Physiology A, 1976