Morphological and Optical Modification of Melanosomes in Fish Integuments upon Oxidation

Author:

Mouchet Sébastien R.123ORCID,Cortesi Fabio34ORCID,Bokic Bojana5ORCID,Lazovic Vladimir5ORCID,Vukusic Pete1ORCID,Marshall N. Justin3ORCID,Kolaric Branko56ORCID

Affiliation:

1. School of Physics, University of Exeter, Stocker Road, Exeter EX4 4QL, UK

2. Department of Physics, Namur Institute of Structured Matter (NISM), Institute of Life, Earth and Environment (ILEE), University of Namur, Rue de Bruxelles 61, 5000 Namur, Belgium

3. Queensland Brain Institute, The University of Queensland, Brisbane, QLD 4072, Australia

4. School of the Environment, The University of Queensland, Brisbane, QLD 4072, Australia

5. Center for Photonics, Institute of Physics, University of Belgrade, Pregrevica 118, 11080 Belgrade, Serbia

6. Micro- and Nanophotonic Materials Group, University of Mons, Place du Parc 20, 7000 Mons, Belgium

Abstract

Reactive oxygen species (ROS) such as superoxide radicals O2−, hydroxyl radicals OH−, and hydrogen peroxide H2O2 may have detrimental effects on marine organisms, including their integuments and visual appearances. Although some studies have described the impact of ROS on marine ecosystems and species ecology, the influence on the optical response of the integuments of marine species and on their visual appearances remains unknown. In this article, we used histology and optical characterisation to show, for the first time, that skin melanophores (melanin-containing chromophores) of the coral reef fish, Stegastes apicalis, change their shapes and fluorescent proprieties upon oxidation with H2O2 radicals. Our observations also suggest that pheomelanosomes may occur in fish integuments, where, previously, it was thought that fish melanosomes only contain eumelanin. This investigation relied on light and electron microscopy and steady-state fluorimetry, as well as time-resolved streak imaging systems. We suggest that the changes in the morphological and spectral characteristics of melanophores can be used as a marker of physiological stress induced by environmental factors such as ROS. Moreover, S. apicalis may be used as a potential model for studying the interaction between the surrounding environment and natural organisms in biologically diverse ecosystems, such as the Great Barrier Reef in Australia.

Funder

Belgian National Fund for Scientific Research

BEWARE Fellowship

Agathon De Potter Fund of the Royal Academy of Science, Letters and Fine Arts of Belgium

Namur Institute of Structured Matter

Australian Research Council

EU: the EIC Pathfinder Challenges 2022 call through the Research

Office of Naval Research Global

Ministry of Science, Technological Development and Innovation of the Republic of Serbia

FRS-FNRS

Inter-university Attraction Pole: Photonics@be

Publisher

MDPI AG

Subject

General Medicine

Reference62 articles.

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3. Mouchet, S.R., and Deparis, O. (2021). Natural Photonics and Bioinspiration, Artech House. Available online: https://us.artechhouse.com/Natural-Photonics-and-Bioinspiration-P2221.aspx.

4. Reflectors in Fishes;Denton;Sci. Am.,1971

5. Brown, F. (1973). Comparative Animal Physiology, WB Saunders.

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