Literature DB >> 29059507

The non-visual opsins: eighteen in the ancestor of vertebrates, astonishing increase in ray-finned fish, and loss in amniotes.

Felix Emile Gastonguay Beaudry1, Tom W Iwanicki1, Bertha Ruth Zelada Mariluz2, Sylvain Darnet2, Henner Brinkmann3, Patricia Schneider2, John Stewart Taylor1.   

Abstract

Non-visual opsins were discovered in the early 1990s. These genes play roles in circadian rhythm in mammals, seasonal reproduction in birds, light avoidance in amphibian larvae, and neural development in fish. However, the interpretation of such studies and the success of future work are compromised by the fact that non-visual opsin repertoires have not been properly characterized in any of these lineages. Here, we show that non-visual opsins from tetrapods and ray-finned fish are distributed among 18 monophyletic subfamilies. An amphibian sequence occurs in every subfamily, whereas mammalian orthologs occur in only seven. Species in the major ray-finned fish lineages, Holostei, Osteoglossomorpha, Otomorpha, Protacanthopterygii, and Neoteleostei, have large numbers of non-visual opsins (22-32 genes) as a result of gene duplication events including, but not limited to, the teleost genome duplication (TGD). In contrast to visual opsins, where lineage-specific duplication is common, the ray-finned fish non-visual opsin repertoire appears to have stabilized shortly after the TGD event and consequently even distantly related species have repertoires of similar size and composition. Most non-visual opsins have been named without the benefit of a phylogenetic perspective and, accordingly, major revisions are proposed.
© 2017 Wiley Periodicals, Inc.

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Year:  2017        PMID: 29059507     DOI: 10.1002/jez.b.22773

Source DB:  PubMed          Journal:  J Exp Zool B Mol Dev Evol        ISSN: 1552-5007            Impact factor:   2.656


  5 in total

1.  Rethinking Opsins.

Authors:  Roberto Feuda; Anant K Menon; Martin C Göpfert
Journal:  Mol Biol Evol       Date:  2022-03-02       Impact factor: 16.240

2.  OPN5 Regulating Mechanism of Follicle Development Through the TSH-DIO2/DIO3 Pathway in Mountain Ducks Under Different Photoperiods.

Authors:  Sui Liufu; Jianqiu Pan; Junfeng Sun; Xu Shen; Danli Jiang; Hongjia Ouyang; Danning Xu; Yunbo Tian; Yunmao Huang
Journal:  Front Physiol       Date:  2022-06-01       Impact factor: 4.755

3.  Rhodopsin gene evolution in early teleost fishes.

Authors:  Jhen-Nien Chen; Sarah Samadi; Wei-Jen Chen
Journal:  PLoS One       Date:  2018-11-05       Impact factor: 3.240

4.  Light-induced shifts in opsin gene expression in the four-eyed fish Anableps anableps.

Authors:  Daniele Salgado; Bertha R Mariluz; Maysa Araujo; Jamily Lorena; Louise N Perez; Rafaela de L Ribeiro; Josane de F Sousa; Patricia N Schneider
Journal:  Front Neurosci       Date:  2022-09-29       Impact factor: 5.152

5.  Gene expression patterns of novel visual and non-visual opsin families in immature and mature Japanese eel males.

Authors:  Jun-Hwan Byun; Ji-Yeon Hyeon; Eun-Su Kim; Byeong-Hoon Kim; Hiroshi Miyanishi; Hirohiko Kagawa; Yuki Takeuchi; Se-Jae Kim; Akihiro Takemura; Sung-Pyo Hur
Journal:  PeerJ       Date:  2020-02-27       Impact factor: 2.984

  5 in total

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