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Red fluorescence in reef fish: A novel signalling mechanism?

BACKGROUND: At depths below 10 m, reefs are dominated by blue-green light because seawater selectively absorbs the longer, 'red' wavelengths beyond 600 nm from the downwelling sunlight. Consequently, the visual pigments of many reef fish are matched to shorter wavelengths, which are transm...

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Autores principales: Michiels, Nico K, Anthes, Nils, Hart, Nathan S, Herler, Jürgen, Meixner, Alfred J, Schleifenbaum, Frank, Schulte, Gregor, Siebeck, Ulrike E, Sprenger, Dennis, Wucherer, Matthias F
Formato: Texto
Lenguaje:English
Publicado: BioMed Central 2008
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2567963/
https://www.ncbi.nlm.nih.gov/pubmed/18796150
http://dx.doi.org/10.1186/1472-6785-8-16
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author Michiels, Nico K
Anthes, Nils
Hart, Nathan S
Herler, Jürgen
Meixner, Alfred J
Schleifenbaum, Frank
Schulte, Gregor
Siebeck, Ulrike E
Sprenger, Dennis
Wucherer, Matthias F
author_facet Michiels, Nico K
Anthes, Nils
Hart, Nathan S
Herler, Jürgen
Meixner, Alfred J
Schleifenbaum, Frank
Schulte, Gregor
Siebeck, Ulrike E
Sprenger, Dennis
Wucherer, Matthias F
author_sort Michiels, Nico K
collection PubMed
description BACKGROUND: At depths below 10 m, reefs are dominated by blue-green light because seawater selectively absorbs the longer, 'red' wavelengths beyond 600 nm from the downwelling sunlight. Consequently, the visual pigments of many reef fish are matched to shorter wavelengths, which are transmitted better by water. Combining the typically poor long-wavelength sensitivity of fish eyes with the presumed lack of ambient red light, red light is currently considered irrelevant for reef fish. However, previous studies ignore the fact that several marine organisms, including deep sea fish, produce their own red luminescence and are capable of seeing it. RESULTS: We here report that at least 32 reef fishes from 16 genera and 5 families show pronounced red fluorescence under natural, daytime conditions at depths where downwelling red light is virtually absent. Fluorescence was confirmed by extensive spectrometry in the laboratory. In most cases peak emission was around 600 nm and fluorescence was associated with guanine crystals, which thus far were known for their light reflecting properties only. Our data indicate that red fluorescence may function in a context of intraspecific communication. Fluorescence patterns were typically associated with the eyes or the head, varying substantially even between species of the same genus. Moreover red fluorescence was particularly strong in fins that are involved in intraspecific signalling. Finally, microspectrometry in one fluorescent goby, Eviota pellucida, showed a long-wave sensitivity that overlapped with its own red fluorescence, indicating that this species is capable of seeing its own fluorescence. CONCLUSION: We show that red fluorescence is widespread among marine fishes. Many features indicate that it is used as a private communication mechanism in small, benthic, pair- or group-living fishes. Many of these species show quite cryptic colouration in other parts of the visible spectrum. High inter-specific variation in red fluorescence and its association with structures used in intra-specific signalling further corroborate this view. Our findings challenge the notion that red light is of no importance to marine fish, calling for a reassessment of its role in fish visual ecology in subsurface marine environments.
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spelling pubmed-25679632008-10-16 Red fluorescence in reef fish: A novel signalling mechanism? Michiels, Nico K Anthes, Nils Hart, Nathan S Herler, Jürgen Meixner, Alfred J Schleifenbaum, Frank Schulte, Gregor Siebeck, Ulrike E Sprenger, Dennis Wucherer, Matthias F BMC Ecol Research Article BACKGROUND: At depths below 10 m, reefs are dominated by blue-green light because seawater selectively absorbs the longer, 'red' wavelengths beyond 600 nm from the downwelling sunlight. Consequently, the visual pigments of many reef fish are matched to shorter wavelengths, which are transmitted better by water. Combining the typically poor long-wavelength sensitivity of fish eyes with the presumed lack of ambient red light, red light is currently considered irrelevant for reef fish. However, previous studies ignore the fact that several marine organisms, including deep sea fish, produce their own red luminescence and are capable of seeing it. RESULTS: We here report that at least 32 reef fishes from 16 genera and 5 families show pronounced red fluorescence under natural, daytime conditions at depths where downwelling red light is virtually absent. Fluorescence was confirmed by extensive spectrometry in the laboratory. In most cases peak emission was around 600 nm and fluorescence was associated with guanine crystals, which thus far were known for their light reflecting properties only. Our data indicate that red fluorescence may function in a context of intraspecific communication. Fluorescence patterns were typically associated with the eyes or the head, varying substantially even between species of the same genus. Moreover red fluorescence was particularly strong in fins that are involved in intraspecific signalling. Finally, microspectrometry in one fluorescent goby, Eviota pellucida, showed a long-wave sensitivity that overlapped with its own red fluorescence, indicating that this species is capable of seeing its own fluorescence. CONCLUSION: We show that red fluorescence is widespread among marine fishes. Many features indicate that it is used as a private communication mechanism in small, benthic, pair- or group-living fishes. Many of these species show quite cryptic colouration in other parts of the visible spectrum. High inter-specific variation in red fluorescence and its association with structures used in intra-specific signalling further corroborate this view. Our findings challenge the notion that red light is of no importance to marine fish, calling for a reassessment of its role in fish visual ecology in subsurface marine environments. BioMed Central 2008-09-16 /pmc/articles/PMC2567963/ /pubmed/18796150 http://dx.doi.org/10.1186/1472-6785-8-16 Text en Copyright © 2008 Michiels et al; licensee BioMed Central Ltd. http://creativecommons.org/licenses/by/2.0 This is an Open Access article distributed under the terms of the Creative Commons Attribution License ( (http://creativecommons.org/licenses/by/2.0) ), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Michiels, Nico K
Anthes, Nils
Hart, Nathan S
Herler, Jürgen
Meixner, Alfred J
Schleifenbaum, Frank
Schulte, Gregor
Siebeck, Ulrike E
Sprenger, Dennis
Wucherer, Matthias F
Red fluorescence in reef fish: A novel signalling mechanism?
title Red fluorescence in reef fish: A novel signalling mechanism?
title_full Red fluorescence in reef fish: A novel signalling mechanism?
title_fullStr Red fluorescence in reef fish: A novel signalling mechanism?
title_full_unstemmed Red fluorescence in reef fish: A novel signalling mechanism?
title_short Red fluorescence in reef fish: A novel signalling mechanism?
title_sort red fluorescence in reef fish: a novel signalling mechanism?
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2567963/
https://www.ncbi.nlm.nih.gov/pubmed/18796150
http://dx.doi.org/10.1186/1472-6785-8-16
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