The evolution of red color vision is linked to coordinated rhodopsin tuning in lycaenid butterflies
Author(s)
Liénard, Marjorie A.; Bernard, Gary D.; Allen, Andrew; Lassance, Jean-Marc; Song, Siliang; Childers, Richard Rabideau; Yu, Nanfang; Ye, Dajia; Stephenson, Adriana; Valencia-Montoya, Wendy A.; Salzman, Shayla; Whitaker, Melissa R. L.; Calonje, Michael; Zhang, Feng; Pierce, Naomi E.; ... Show more Show less
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© 2021 National Academy of Sciences. All rights reserved. Color vision has evolved multiple times in both vertebrates and invertebrates and is largely determined by the number and variation in spectral sensitivities of distinct opsin subclasses. However, because of the difficulty of expressing long-wavelength (LW) invertebrate opsins in vitro, our understanding of the molecular basis of functional shifts in opsin spectral sensitivities has been biased toward research primarily in vertebrates. This has restricted our ability to address whether invertebrate Gq protein-coupled opsins function in a novel or convergent way compared to vertebrate Gt opsins. Here we develop a robust heterologous expression system to purify invertebrate rhodopsins, identify specific amino acid changes responsible for adaptive spectral tuning, and pinpoint how molecular variation in invertebrate opsins underlie wavelength sensitivity shifts that enhance visual perception. By combining functional and optophysiological approaches, we disentangle the relative contributions of lateral filtering pigments from red-shifted LW and blue short-wavelength opsins expressed in distinct photoreceptor cells of individual ommatidia. We use in situ hybridization to visualize six ommatidial classes in the compound eye of a lycaenid butterfly with a four-opsin visual system. We show experimentally that certain key tuning residues underlying green spectral shifts in blue opsin paralogs have evolved repeatedly among short-wavelength opsin lineages. Taken together, our results demonstrate the interplay between regulatory and adaptive evolution at multiple Gq opsin loci, as well as how coordinated spectral shifts in LW and blue opsins can act together to enhance insect spectral sensitivity at blue and red wavelengths for visual performance adaptation.
Date issued
2021-02Department
Massachusetts Institute of Technology. Department of Biological Engineering; Massachusetts Institute of Technology. Department of Brain and Cognitive Sciences; McGovern Institute for Brain Research at MIT; Howard Hughes Medical InstituteJournal
Proceedings of the National Academy of Sciences
Publisher
National Academy of Sciences
Citation
Liénard, MA, Bernard, GD, Allen, A, Lassance, JM, Song, S et al. 2021. "The evolution of red color vision is linked to coordinated rhodopsin tuning in lycaenid butterflies." Proceedings of the National Academy of Sciences of the United States of America, 118 (6).
Version: Final published version
ISSN
0027-8424
1091-6490
Keywords
Multidisciplinary