Literature DB >> 12618404

Gene duplication and spectral diversification of cone visual pigments of zebrafish.

Akito Chinen1, Takanori Hamaoka, Yukihiro Yamada, Shoji Kawamura.   

Abstract

Zebrafish is becoming a powerful animal model for the study of vision but the genomic organization and variation of its visual opsins have not been fully characterized. We show here that zebrafish has two red (LWS-1 and LWS-2), four green (RH2-1, RH2-2, RH2-3, and RH2-4), and single blue (SWS2) and ultraviolet (SWS1) opsin genes in the genome, among which LWS-2, RH2-2, and RH2-3 are novel. SWS2, LWS-1, and LWS-2 are located in tandem and RH2-1, RH2-2, RH2-3, and RH2-4 form another tandem gene cluster. The peak absorption spectra (lambdamax) of the reconstituted photopigments from the opsin cDNAs differed markedly among them: 558 nm (LWS-1), 548 nm (LWS-2), 467 nm (RH2-1), 476 nm (RH2-2), 488 nm (RH2-3), 505 nm (RH2-4), 355 nm (SWS1), 416 nm (SWS2), and 501 nm (RH1, rod opsin). The quantitative RT-PCR revealed a considerable difference among the opsin genes in the expression level in the retina. The expression of the two red opsin genes and of three green opsin genes, RH2-1, RH2-3, and RH2-4, is significantly lower than that of RH2-2, SWS1, and SWS2. These findings must contribute to our comprehensive understanding of visual capabilities of zebrafish and the evolution of the fish visual system and should become a basis of further studies on expression and developmental regulation of the opsin genes.

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Year:  2003        PMID: 12618404      PMCID: PMC1462461     

Source DB:  PubMed          Journal:  Genetics        ISSN: 0016-6731            Impact factor:   4.562


  48 in total

1.  Mapping absorbance spectra, cone fractions, and neuronal mechanisms to photopic spectral sensitivity in the zebrafish.

Authors:  David A Cameron
Journal:  Vis Neurosci       Date:  2002 May-Jun       Impact factor: 3.241

2.  Cone opsin genes of african cichlid fishes: tuning spectral sensitivity by differential gene expression.

Authors:  K L Carleton; T D Kocher
Journal:  Mol Biol Evol       Date:  2001-08       Impact factor: 16.240

3.  Absorption spectrum of rhodopsin denatured with acid.

Authors:  Y Kito; T Suzuki; M Azuma; Y Sekoguti
Journal:  Nature       Date:  1968-06-08       Impact factor: 49.962

4.  Visual pigments in teleost fishes: effects of habitat, microhabitat, and behavior on visual system evolution.

Authors:  J S Levine; E F MacNichol
Journal:  Sens Processes       Date:  1979-06

5.  Monoclonal antibodies to rhodopsin: characterization, cross-reactivity, and application as structural probes.

Authors:  R S Molday; D MacKenzie
Journal:  Biochemistry       Date:  1983-02-01       Impact factor: 3.162

6.  Spectral tuning and evolution of short wave-sensitive cone pigments in cottoid fish from Lake Baikal.

Authors:  Jill A Cowing; Subathra Poopalasundaram; Susan E Wilkie; James K Bowmaker; David M Hunt
Journal:  Biochemistry       Date:  2002-05-14       Impact factor: 3.162

7.  Molecular cloning and characterization of five opsin genes from the marine flatfish Atlantic halibut (Hippoglossus hippoglossus).

Authors:  J V Helvik; O Drivenes; T H Naess; A Fjose; H C Seo
Journal:  Vis Neurosci       Date:  2001 Sep-Oct       Impact factor: 3.241

8.  Visualization of rod photoreceptor development using GFP-transgenic zebrafish.

Authors:  Takanori Hamaoka; Masaki Takechi; Akito Chinen; Yuko Nishiwaki; Shoji Kawamura
Journal:  Genesis       Date:  2002-11       Impact factor: 2.487

9.  Site of attachment of 11-cis-retinal in bovine rhodopsin.

Authors:  J K Wang; J H McDowell; P A Hargrave
Journal:  Biochemistry       Date:  1980-10-28       Impact factor: 3.162

Review 10.  Expression of pineal ultraviolet- and green-like opsins in the pineal organ and retina of teleosts.

Authors:  J Forsell; P Ekström; I N Flamarique; B Holmqvist
Journal:  J Exp Biol       Date:  2001-07       Impact factor: 3.312

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  105 in total

1.  Salmonid opsin sequences undergo positive selection and indicate an alternate evolutionary relationship in oncorhynchus.

Authors:  Stephen G Dann; W Ted Allison; David B Levin; John S Taylor; Craig W Hawryshyn
Journal:  J Mol Evol       Date:  2004-04       Impact factor: 2.395

2.  Multiple Genetic Mechanisms Contribute to Visual Sensitivity Variation in the Labridae.

Authors:  Genevieve A C Phillips; Karen L Carleton; N Justin Marshall
Journal:  Mol Biol Evol       Date:  2015-10-12       Impact factor: 16.240

3.  Tertiary structure and spectral tuning of UV and violet pigments in vertebrates.

Authors:  Shozo Yokoyama; William T Starmer; Yusuke Takahashi; Takashi Tada
Journal:  Gene       Date:  2005-12-15       Impact factor: 3.688

4.  Spectral properties of the zebrafish visual motor response.

Authors:  Charles E Burton; Yangzhong Zhou; Qing Bai; Edward A Burton
Journal:  Neurosci Lett       Date:  2017-03-04       Impact factor: 3.046

5.  Ontogeny of cone photoreceptor mosaics in zebrafish.

Authors:  W Ted Allison; Linda K Barthel; Kristina M Skebo; Masaki Takechi; Shoji Kawamura; Pamela A Raymond
Journal:  J Comp Neurol       Date:  2010-10-15       Impact factor: 3.215

6.  Interphotoreceptor retinoid-binding protein gene structure in tetrapods and teleost fish.

Authors:  John M Nickerson; Ruth A Frey; Vincent T Ciavatta; Deborah L Stenkamp
Journal:  Mol Vis       Date:  2006-12-09       Impact factor: 2.367

7.  Cone signals in monostratified and bistratified amacrine cells of adult zebrafish retina.

Authors:  M M Torvund; T S Ma; V P Connaughton; F Ono; R F Nelson
Journal:  J Comp Neurol       Date:  2016-12-07       Impact factor: 3.215

8.  Diversity of guanylate cyclase-activating proteins (GCAPs) in teleost fish: characterization of three novel GCAPs (GCAP4, GCAP5, GCAP7) from zebrafish (Danio rerio) and prediction of eight GCAPs (GCAP1-8) in pufferfish (Fugu rubripes).

Authors:  Yoshikazu Imanishi; Lili Yang; Izabela Sokal; Slawomir Filipek; Krzysztof Palczewski; Wolfgang Baehr
Journal:  J Mol Evol       Date:  2004-08       Impact factor: 2.395

9.  Characterization of transgenic zebrafish lines that express GFP in the retina, pineal gland, olfactory bulb, hatching gland, and optic tectum.

Authors:  Wei Fang; Sarah Bonaffini; Jian Zou; Xiaolei Wang; Cen Zhang; Taro Tsujimura; Shoji Kawamura; Xiangyun Wei
Journal:  Gene Expr Patterns       Date:  2013-03-14       Impact factor: 1.224

10.  An arbitrary-spectrum spatial visual stimulator for vision research.

Authors:  Katrin Franke; André Maia Chagas; Zhijian Zhao; Maxime Jy Zimmermann; Philipp Bartel; Yongrong Qiu; Klaudia P Szatko; Tom Baden; Thomas Euler
Journal:  Elife       Date:  2019-09-23       Impact factor: 8.140

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