The environment: A vector of phenotypic disparity during the settlement phase of coral reef fishes

In coral reef fish, the transition from pelagic larvae to reef-associated juveniles is a complete metamorphosis in which coordinated physiological, morphological, and behavioural changes occur, enabling the fish to settle and grow in coastal habitats and then recruit into the adult population. Envir...

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Published inJournal of experimental marine biology and ecology Vol. 568; p. 151937
Main Authors Reynaud, Mathieu, Gairin, Emma, Lecchini, David, Laudet, Vincent, Frédérich, Bruno
Format Journal Article
LanguageEnglish
Published Elsevier B.V 01.11.2023
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Abstract In coral reef fish, the transition from pelagic larvae to reef-associated juveniles is a complete metamorphosis in which coordinated physiological, morphological, and behavioural changes occur, enabling the fish to settle and grow in coastal habitats and then recruit into the adult population. Environmental factors can modulate different aspects of metamorphosis such as the timing of its initiation, its duration, and the coordination of the morphological changes. Here, we raised the coral-reef-dwelling convict surgeonfish, Acanthurus triostegus, in different types of habitats during the post-settlement period. The selected habitats, whether natural (beach rock, mangrove, and sand beach habitats where A. triostegus settle naturally), or experimental (pelagic ocean and oxygen depleted ‘dead’ zone) were characterized by their substrate type, fish community composition, and physico-chemical profile. By using landmark-based geometric morphometric methods, we compared growth, body shape changes, and quantified phenotypic disparity levels among and within the different habitats. The results showed that fish raised in mangrove grew faster than in the other habitats and, most importantly that different habitats lead to variations in the rate and the nature of shape transformation. The ontogenetic trajectories defined in the shape space differed across habitats in terms of length and direction. A peak of shape disparity was observed for the natural habitats at three days post settlement when compared to fish reared in dead zone or oceanic environment. Overall, these results suggest that environmental diversity could generate developmental plasticity, ultimately producing phenotypic disparity that may allow the acclimation of fish to their local environment. •Different settlement habitats induce variation in growth, body shape, and ontogenetic trajectory in a coral reef fish.•Different levels of phenotypic disparity within populations could be induced by the environment.•Metamorphosis is modulated by the environment.
AbstractList In coral reef fish, the transition from pelagic larvae to reef-associated juveniles is a complete metamorphosis in which coordinated physiological, morphological, and behavioural changes occur, enabling the fish to settle and grow in coastal habitats and then recruit into the adult population. Environmental factors can modulate different aspects of metamorphosis such as the timing of its initiation, its duration, and the coordination of the morphological changes. Here, we raised the coral-reef-dwelling convict surgeonfish, Acanthurus triostegus, in different types of habitats during the post-settlement period. The selected habitats, whether natural (beach rock, mangrove, and sand beach habitats where A. triostegus settle naturally), or experimental (pelagic ocean and oxygen depleted ‘dead’ zone) were characterized by their substrate type, fish community composition, and physico-chemical profile. By using landmark-based geometric morphometric methods, we compared growth, body shape changes, and quantified phenotypic disparity levels among and within the different habitats. The results showed that fish raised in mangrove grew faster than in the other habitats and, most importantly that different habitats lead to variations in the rate and the nature of shape transformation. The ontogenetic trajectories defined in the shape space differed across habitats in terms of length and direction. A peak of shape disparity was observed for the natural habitats at three days post settlement when compared to fish reared in dead zone or oceanic environment. Overall, these results suggest that environmental diversity could generate developmental plasticity, ultimately producing phenotypic disparity that may allow the acclimation of fish to their local environment.
In coral reef fish, the transition from pelagic larvae to reef-associated juveniles is a complete metamorphosis in which coordinated physiological, morphological, and behavioural changes occur, enabling the fish to settle and grow in coastal habitats and then recruit into the adult population. Environmental factors can modulate different aspects of metamorphosis such as the timing of its initiation, its duration, and the coordination of the morphological changes. Here, we raised the coral-reef-dwelling convict surgeonfish, Acanthurus triostegus, in different types of habitats during the post-settlement period. The selected habitats, whether natural (beach rock, mangrove, and sand beach habitats where A. triostegus settle naturally), or experimental (pelagic ocean and oxygen depleted ‘dead’ zone) were characterized by their substrate type, fish community composition, and physico-chemical profile. By using landmark-based geometric morphometric methods, we compared growth, body shape changes, and quantified phenotypic disparity levels among and within the different habitats. The results showed that fish raised in mangrove grew faster than in the other habitats and, most importantly that different habitats lead to variations in the rate and the nature of shape transformation. The ontogenetic trajectories defined in the shape space differed across habitats in terms of length and direction. A peak of shape disparity was observed for the natural habitats at three days post settlement when compared to fish reared in dead zone or oceanic environment. Overall, these results suggest that environmental diversity could generate developmental plasticity, ultimately producing phenotypic disparity that may allow the acclimation of fish to their local environment. •Different settlement habitats induce variation in growth, body shape, and ontogenetic trajectory in a coral reef fish.•Different levels of phenotypic disparity within populations could be induced by the environment.•Metamorphosis is modulated by the environment.
ArticleNumber 151937
Author Laudet, Vincent
Frédérich, Bruno
Lecchini, David
Reynaud, Mathieu
Gairin, Emma
Author_xml – sequence: 1
  givenname: Mathieu
  surname: Reynaud
  fullname: Reynaud, Mathieu
  organization: PSL Université Paris, EPHE-UPVD-CNRS, UAR3278 CRIOBE, 98729 Moorea, French Polynesia
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  givenname: Emma
  surname: Gairin
  fullname: Gairin, Emma
  organization: Marine Eco-Evo-Devo Unit, Okinawa Institute of Science and Technology, Okinawa, Japan
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  givenname: David
  surname: Lecchini
  fullname: Lecchini, David
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  givenname: Vincent
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  givenname: Bruno
  surname: Frédérich
  fullname: Frédérich, Bruno
  email: bruno.frederich@uliege.be
  organization: Laboratory of Evolutionary Ecology, FOCUS, University of Liège, Liège, Belgium
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Keywords Coral reefs
Geometric morphometrics
Acanthurus triostegus
Ontogenetic trajectories
Development
Habitat
Ontogeny
Moorea Island
Metamorphosis
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Snippet In coral reef fish, the transition from pelagic larvae to reef-associated juveniles is a complete metamorphosis in which coordinated physiological,...
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SubjectTerms Acanthurus
Acanthurus triostegus
acclimation
adults
community structure
Coral reefs
Development
fish
fish communities
Geometric morphometrics
geometry
Habitat
Metamorphosis
Moorea Island
morphometry
Ontogenetic trajectories
Ontogeny
oxygen
phenotype
sand
Title The environment: A vector of phenotypic disparity during the settlement phase of coral reef fishes
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Volume 568
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