Literature DB >> 12796458

Structural colouration of avian skin: convergent evolution of coherently scattering dermal collagen arrays.

Richard O Prum1, Rodolfo Torres.   

Abstract

Structural colours of avian skin have long been hypothesized to be produced by incoherent (Rayleigh/Tyndall) scattering. We investigated the colour, anatomy, nanostructure and biophysics of structurally coloured skin, ramphotheca and podotheca from 31 species of birds from 17 families in 10 orders from across Aves. Integumentary structural colours of birds include ultraviolet, dark blue, light blue, green and yellow hues. The discrete peaks in reflectance spectra do not conform to the inverse fourth power relationship predicted by Rayleigh scattering. The dermis of structurally coloured skin consists of a thick (100-500 micro m) layer of collagen that is usually underlain by a layer of melanin granules. Transmission electron micrographs (TEMs) of this colour-producing dermal collagen layer revealed quasi-ordered arrays of parallel collagen fibres. Two-dimensional (2-D) Fourier analysis of TEMs of the collagen arrays revealed a ring of peak spatial frequencies in the spatial variation in refractive index that are the appropriate size to make the observed ultraviolet-yellow colours by coherent scattering alone. One species, Philepitta castanea (Eurylaimidae), has exceptionally ordered, hexagonal arrays of collagen fibres that produce a hexagonal pattern of spatial frequency peaks in the power spectra. Ultraviolet, blue, green and yellow structural colours of avian skin are produced by coherent scattering (i.e. constructive interference) by arrays of collagen fibres in the dermis. Some yellow and orange skin colours are produced with a combination of structural and pigmentary mechanisms. These combined colours can have reflectance spectra with discrete peaks that are more saturated than hues produced by carotenoid pigments alone. Bluish facial skin from two species of Neotropical antbirds (Thamnophilidae) are nanostructurally too small to produce visible light by coherent scattering, and the colour production mechanism in these species remains unknown. Based on the phylogenetic distribution of structurally coloured skin in Aves, this mechanism of colour production has evolved convergently more than 50 independent times within extant birds.

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Year:  2003        PMID: 12796458     DOI: 10.1242/jeb.00431

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


  48 in total

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4.  Exaggeration and suppression of iridescence: the evolution of two-dimensional butterfly structural colours.

Authors:  Shelley Wickham; Maryanne C J Large; Leon Poladian; Lars S Jermiin
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5.  Electron tomography, three-dimensional Fourier analysis and colour prediction of a three-dimensional amorphous biophotonic nanostructure.

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Review 6.  A protean palette: colour materials and mixing in birds and butterflies.

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Review 7.  Gold bugs and beyond: a review of iridescence and structural colour mechanisms in beetles (Coleoptera).

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8.  Structure and optical function of amorphous photonic nanostructures from avian feather barbs: a comparative small angle X-ray scattering (SAXS) analysis of 230 bird species.

Authors:  Vinodkumar Saranathan; Jason D Forster; Heeso Noh; Seng-Fatt Liew; Simon G J Mochrie; Hui Cao; Eric R Dufresne; Richard O Prum
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9.  Optical properties of the uropygial gland secretion: no evidence for UV cosmetics in birds.

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Review 10.  Not just black and white: pigment pattern development and evolution in vertebrates.

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Journal:  Semin Cell Dev Biol       Date:  2008-11-27       Impact factor: 7.727

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