Literature DB >> 16888057

Beauty in the eye of the beholder: the two blue opsins of lycaenid butterflies and the opsin gene-driven evolution of sexually dimorphic eyes.

Marilou P Sison-Mangus1, Gary D Bernard, Jochen Lampel, Adriana D Briscoe.   

Abstract

Although previous investigations have shown that wing coloration is an important component of social signaling in butterflies, the contribution of opsin evolution to sexual wing color dichromatism and interspecific divergence remains largely unexplored. Here we report that the butterfly Lycaena rubidus has evolved sexually dimorphic eyes due to changes in the regulation of opsin expression patterns to match the contrasting life histories of males and females. The L. rubidus eye contains four visual pigments with peak sensitivities in the ultraviolet (UV; lambdamax=360 nm), blue (B; lambdamax=437 nm and 500 nm, respectively) and long (LW; lambdamax=568 nm) wavelength range. By combining in situ hybridization of cloned opsin-encoding cDNAs with epi-microspectrophotometry, we found that all four opsin mRNAs and visual pigments are expressed in the eyes in a sex-specific manner. The male dorsal eye, which contains only UV and B (lambdamax=437 nm) visual pigments, indeed expresses two short wavelength opsin mRNAs, UVRh and BRh1. The female dorsal eye, which also has the UV and B (lambdamax=437 nm) visual pigments, also contains the LW visual pigment, and likewise expresses UVRh, BRh1 and LWRh mRNAs. Unexpectedly, in the female dorsal eye, we also found BRh1 co-expressed with LWRh in the R3-8 photoreceptor cells. The ventral eye of both sexes, on the other hand, contains all four visual pigments and expresses all four opsin mRNAs in a non-overlapping fashion. Surprisingly, we found that the 500 nm visual pigment is encoded by a duplicate blue opsin gene, BRh2. Further, using molecular phylogenetic methods we trace this novel blue opsin gene to a duplication event at the base of the Polyommatine+Thecline+Lycaenine radiation. The blue opsin gene duplication may help explain the blueness of blue lycaenid butterflies.

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Year:  2006        PMID: 16888057     DOI: 10.1242/jeb.02360

Source DB:  PubMed          Journal:  J Exp Biol        ISSN: 0022-0949            Impact factor:   3.312


  38 in total

1.  Rhabdom evolution in butterflies: insights from the uniquely tiered and heterogeneous ommatidia of the Glacial Apollo butterfly, Parnassius glacialis.

Authors:  Atsuko Matsushita; Hiroko Awata; Motohiro Wakakuwa; Shin-ya Takemura; Kentaro Arikawa
Journal:  Proc Biol Sci       Date:  2012-05-23       Impact factor: 5.349

2.  Spatial distribution of opsin-encoding mRNAs in the tiered larval retinas of the sunburst diving beetle Thermonectus marmoratus (Coleoptera: Dytiscidae).

Authors:  Srdjan Maksimovic; Tiffany A Cook; Elke K Buschbeck
Journal:  J Exp Biol       Date:  2009-12       Impact factor: 3.312

Review 3.  Neural mechanisms underlying the evolvability of behaviour.

Authors:  Paul S Katz
Journal:  Philos Trans R Soc Lond B Biol Sci       Date:  2011-07-27       Impact factor: 6.237

4.  Extraordinary diversity of visual opsin genes in dragonflies.

Authors:  Ryo Futahashi; Ryouka Kawahara-Miki; Michiyo Kinoshita; Kazutoshi Yoshitake; Shunsuke Yajima; Kentaro Arikawa; Takema Fukatsu
Journal:  Proc Natl Acad Sci U S A       Date:  2015-02-23       Impact factor: 11.205

5.  The evolution of red color vision is linked to coordinated rhodopsin tuning in lycaenid butterflies.

Authors:  Marjorie A Liénard; Gary D Bernard; Andrew Allen; Jean-Marc Lassance; Siliang Song; Richard Rabideau Childers; Nanfang Yu; Dajia Ye; Adriana Stephenson; Wendy A Valencia-Montoya; Shayla Salzman; Melissa R L Whitaker; Michael Calonje; Feng Zhang; Naomi E Pierce
Journal:  Proc Natl Acad Sci U S A       Date:  2021-02-09       Impact factor: 11.205

6.  Coevolution of coloration and colour vision?

Authors:  Olle Lind; Miriam J Henze; Almut Kelber; Daniel Osorio
Journal:  Philos Trans R Soc Lond B Biol Sci       Date:  2017-07-05       Impact factor: 6.237

7.  Determination of Photoreceptor Cell Spectral Sensitivity in an Insect Model from In Vivo Intracellular Recordings.

Authors:  Kyle J McCulloch; Daniel Osorio; Adriana D Briscoe
Journal:  J Vis Exp       Date:  2016-02-26       Impact factor: 1.355

8.  Coexpression of three middle wavelength-absorbing visual pigments in sexually dimorphic photoreceptors of the butterfly Colias erate.

Authors:  Yuri Ogawa; Hiroko Awata; Motohiro Wakakuwa; Michiyo Kinoshita; Doekele G Stavenga; Kentaro Arikawa
Journal:  J Comp Physiol A Neuroethol Sens Neural Behav Physiol       Date:  2012-09-13       Impact factor: 1.836

9.  An expanded set of photoreceptors in the Eastern Pale Clouded Yellow butterfly, Colias erate.

Authors:  Primoz Pirih; Kentaro Arikawa; Doekele G Stavenga
Journal:  J Comp Physiol A Neuroethol Sens Neural Behav Physiol       Date:  2010-06-04       Impact factor: 1.836

10.  Four photoreceptor classes in the open rhabdom eye of the red palm weevil, Rynchophorus ferrugineus Olivier.

Authors:  Marko Ilić; Primož Pirih; Gregor Belušič
Journal:  J Comp Physiol A Neuroethol Sens Neural Behav Physiol       Date:  2016-01-09       Impact factor: 1.836

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