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Light diffraction by sarcomeres produces iridescence in transmission in the transparent ghost catfish

Despite the elaborate varieties of iridescent colors in biological species, most of them are reflective. Here we show the rainbow-like structural colors found in the ghost catfish (Kryptopterus vitreolus), which exist only in transmission. The fish shows flickering iridescence throughout the transpa...

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Autores principales: Fan, Xiujun, Zheng, Xuezhi, An, Tong, Li, Xiuhong, Leung, Nathanael, Zhu, Bin, Sui, Tan, Shi, Nan, Fan, Tongxiang, Zhao, Qibin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: National Academy of Sciences 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10041080/
https://www.ncbi.nlm.nih.gov/pubmed/36913569
http://dx.doi.org/10.1073/pnas.2219300120
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author Fan, Xiujun
Zheng, Xuezhi
An, Tong
Li, Xiuhong
Leung, Nathanael
Zhu, Bin
Sui, Tan
Shi, Nan
Fan, Tongxiang
Zhao, Qibin
author_facet Fan, Xiujun
Zheng, Xuezhi
An, Tong
Li, Xiuhong
Leung, Nathanael
Zhu, Bin
Sui, Tan
Shi, Nan
Fan, Tongxiang
Zhao, Qibin
author_sort Fan, Xiujun
collection PubMed
description Despite the elaborate varieties of iridescent colors in biological species, most of them are reflective. Here we show the rainbow-like structural colors found in the ghost catfish (Kryptopterus vitreolus), which exist only in transmission. The fish shows flickering iridescence throughout the transparent body. The iridescence originates from the collective diffraction of light after passing through the periodic band structures of the sarcomeres inside the tightly stacked myofibril sheets, and the muscle fibers thus work as transmission gratings. The length of the sarcomeres varies from ~1 μm from the body neutral plane near the skeleton to ~2 μm next to the skin, and the iridescence of a live fish mainly results from the longer sarcomeres. The length of the sarcomere changes by ~80 nm as it relaxes and contracts, and the fish shows a quickly blinking dynamic diffraction pattern as it swims. While similar diffraction colors are also observed in thin slices of muscles from non-transparent species such as the white crucian carps, a transparent skin is required indeed to have such iridescence in live species. The ghost catfish skin is of a plywood structure of collagen fibrils, which allows more than 90% of the incident light to pass directly into the muscles and the diffracted light to exit the body. Our findings could also potentially explain the iridescence in other transparent aquatic species, including the eel larvae (Leptocephalus) and the icefishes (Salangidae).
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spelling pubmed-100410802023-09-13 Light diffraction by sarcomeres produces iridescence in transmission in the transparent ghost catfish Fan, Xiujun Zheng, Xuezhi An, Tong Li, Xiuhong Leung, Nathanael Zhu, Bin Sui, Tan Shi, Nan Fan, Tongxiang Zhao, Qibin Proc Natl Acad Sci U S A Physical Sciences Despite the elaborate varieties of iridescent colors in biological species, most of them are reflective. Here we show the rainbow-like structural colors found in the ghost catfish (Kryptopterus vitreolus), which exist only in transmission. The fish shows flickering iridescence throughout the transparent body. The iridescence originates from the collective diffraction of light after passing through the periodic band structures of the sarcomeres inside the tightly stacked myofibril sheets, and the muscle fibers thus work as transmission gratings. The length of the sarcomeres varies from ~1 μm from the body neutral plane near the skeleton to ~2 μm next to the skin, and the iridescence of a live fish mainly results from the longer sarcomeres. The length of the sarcomere changes by ~80 nm as it relaxes and contracts, and the fish shows a quickly blinking dynamic diffraction pattern as it swims. While similar diffraction colors are also observed in thin slices of muscles from non-transparent species such as the white crucian carps, a transparent skin is required indeed to have such iridescence in live species. The ghost catfish skin is of a plywood structure of collagen fibrils, which allows more than 90% of the incident light to pass directly into the muscles and the diffracted light to exit the body. Our findings could also potentially explain the iridescence in other transparent aquatic species, including the eel larvae (Leptocephalus) and the icefishes (Salangidae). National Academy of Sciences 2023-03-13 2023-03-21 /pmc/articles/PMC10041080/ /pubmed/36913569 http://dx.doi.org/10.1073/pnas.2219300120 Text en Copyright © 2023 the Author(s). Published by PNAS. https://creativecommons.org/licenses/by-nc-nd/4.0/This article is distributed under Creative Commons Attribution-NonCommercial-NoDerivatives License 4.0 (CC BY-NC-ND) (https://creativecommons.org/licenses/by-nc-nd/4.0/) .
spellingShingle Physical Sciences
Fan, Xiujun
Zheng, Xuezhi
An, Tong
Li, Xiuhong
Leung, Nathanael
Zhu, Bin
Sui, Tan
Shi, Nan
Fan, Tongxiang
Zhao, Qibin
Light diffraction by sarcomeres produces iridescence in transmission in the transparent ghost catfish
title Light diffraction by sarcomeres produces iridescence in transmission in the transparent ghost catfish
title_full Light diffraction by sarcomeres produces iridescence in transmission in the transparent ghost catfish
title_fullStr Light diffraction by sarcomeres produces iridescence in transmission in the transparent ghost catfish
title_full_unstemmed Light diffraction by sarcomeres produces iridescence in transmission in the transparent ghost catfish
title_short Light diffraction by sarcomeres produces iridescence in transmission in the transparent ghost catfish
title_sort light diffraction by sarcomeres produces iridescence in transmission in the transparent ghost catfish
topic Physical Sciences
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10041080/
https://www.ncbi.nlm.nih.gov/pubmed/36913569
http://dx.doi.org/10.1073/pnas.2219300120
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