Cargando…

The Skeletal Proteome of the Coral Acropora millepora: The Evolution of Calcification by Co-Option and Domain Shuffling

In corals, biocalcification is a major function that may be drastically affected by ocean acidification (OA). Scleractinian corals grow by building up aragonitic exoskeletons that provide support and protection for soft tissues. Although this process has been extensively studied, the molecular basis...

Descripción completa

Detalles Bibliográficos
Autores principales: Ramos-Silva, Paula, Kaandorp, Jaap, Huisman, Lotte, Marie, Benjamin, Zanella-Cléon, Isabelle, Guichard, Nathalie, Miller, David J., Marin, Frédéric
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3748352/
https://www.ncbi.nlm.nih.gov/pubmed/23765379
http://dx.doi.org/10.1093/molbev/mst109
_version_ 1782281057259749376
author Ramos-Silva, Paula
Kaandorp, Jaap
Huisman, Lotte
Marie, Benjamin
Zanella-Cléon, Isabelle
Guichard, Nathalie
Miller, David J.
Marin, Frédéric
author_facet Ramos-Silva, Paula
Kaandorp, Jaap
Huisman, Lotte
Marie, Benjamin
Zanella-Cléon, Isabelle
Guichard, Nathalie
Miller, David J.
Marin, Frédéric
author_sort Ramos-Silva, Paula
collection PubMed
description In corals, biocalcification is a major function that may be drastically affected by ocean acidification (OA). Scleractinian corals grow by building up aragonitic exoskeletons that provide support and protection for soft tissues. Although this process has been extensively studied, the molecular basis of biocalcification is poorly understood. Notably lacking is a comprehensive catalog of the skeleton-occluded proteins—the skeletal organic matrix proteins (SOMPs) that are thought to regulate the mineral deposition. Using a combination of proteomics and transcriptomics, we report the first survey of such proteins in the staghorn coral Acropora millepora. The organic matrix (OM) extracted from the coral skeleton was analyzed by mass spectrometry and bioinformatics, enabling the identification of 36 SOMPs. These results provide novel insights into the molecular basis of coral calcification and the macroevolution of metazoan calcifying systems, whereas establishing a platform for studying the impact of OA at molecular level. Besides secreted proteins, extracellular regions of transmembrane proteins are also present, suggesting a close control of aragonite deposition by the calicoblastic epithelium. In addition to the expected SOMPs (Asp/Glu-rich, galaxins), the skeletal repertoire included several proteins containing known extracellular matrix domains. From an evolutionary perspective, the number of coral-specific proteins is low, many SOMPs having counterparts in the noncalcifying cnidarians. Extending the comparison with the skeletal OM proteomes of other metazoans allowed the identification of a pool of functional domains shared between phyla. These data suggest that co-option and domain shuffling may be general mechanisms by which the trait of calcification has evolved.
format Online
Article
Text
id pubmed-3748352
institution National Center for Biotechnology Information
language English
publishDate 2013
publisher Oxford University Press
record_format MEDLINE/PubMed
spelling pubmed-37483522013-08-21 The Skeletal Proteome of the Coral Acropora millepora: The Evolution of Calcification by Co-Option and Domain Shuffling Ramos-Silva, Paula Kaandorp, Jaap Huisman, Lotte Marie, Benjamin Zanella-Cléon, Isabelle Guichard, Nathalie Miller, David J. Marin, Frédéric Mol Biol Evol Discoveries In corals, biocalcification is a major function that may be drastically affected by ocean acidification (OA). Scleractinian corals grow by building up aragonitic exoskeletons that provide support and protection for soft tissues. Although this process has been extensively studied, the molecular basis of biocalcification is poorly understood. Notably lacking is a comprehensive catalog of the skeleton-occluded proteins—the skeletal organic matrix proteins (SOMPs) that are thought to regulate the mineral deposition. Using a combination of proteomics and transcriptomics, we report the first survey of such proteins in the staghorn coral Acropora millepora. The organic matrix (OM) extracted from the coral skeleton was analyzed by mass spectrometry and bioinformatics, enabling the identification of 36 SOMPs. These results provide novel insights into the molecular basis of coral calcification and the macroevolution of metazoan calcifying systems, whereas establishing a platform for studying the impact of OA at molecular level. Besides secreted proteins, extracellular regions of transmembrane proteins are also present, suggesting a close control of aragonite deposition by the calicoblastic epithelium. In addition to the expected SOMPs (Asp/Glu-rich, galaxins), the skeletal repertoire included several proteins containing known extracellular matrix domains. From an evolutionary perspective, the number of coral-specific proteins is low, many SOMPs having counterparts in the noncalcifying cnidarians. Extending the comparison with the skeletal OM proteomes of other metazoans allowed the identification of a pool of functional domains shared between phyla. These data suggest that co-option and domain shuffling may be general mechanisms by which the trait of calcification has evolved. Oxford University Press 2013-09 2013-06-12 /pmc/articles/PMC3748352/ /pubmed/23765379 http://dx.doi.org/10.1093/molbev/mst109 Text en © The Author 2013. Published by Oxford University Press. http://creativecommons.org/licenses/by-nc/3.0 This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/3.0/), which permits non-commercial re-use, distribution, and reproduction in any medium, provided the original work is properly cited. For commercial re-use, please contact journals.permissions@oup.com
spellingShingle Discoveries
Ramos-Silva, Paula
Kaandorp, Jaap
Huisman, Lotte
Marie, Benjamin
Zanella-Cléon, Isabelle
Guichard, Nathalie
Miller, David J.
Marin, Frédéric
The Skeletal Proteome of the Coral Acropora millepora: The Evolution of Calcification by Co-Option and Domain Shuffling
title The Skeletal Proteome of the Coral Acropora millepora: The Evolution of Calcification by Co-Option and Domain Shuffling
title_full The Skeletal Proteome of the Coral Acropora millepora: The Evolution of Calcification by Co-Option and Domain Shuffling
title_fullStr The Skeletal Proteome of the Coral Acropora millepora: The Evolution of Calcification by Co-Option and Domain Shuffling
title_full_unstemmed The Skeletal Proteome of the Coral Acropora millepora: The Evolution of Calcification by Co-Option and Domain Shuffling
title_short The Skeletal Proteome of the Coral Acropora millepora: The Evolution of Calcification by Co-Option and Domain Shuffling
title_sort skeletal proteome of the coral acropora millepora: the evolution of calcification by co-option and domain shuffling
topic Discoveries
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3748352/
https://www.ncbi.nlm.nih.gov/pubmed/23765379
http://dx.doi.org/10.1093/molbev/mst109
work_keys_str_mv AT ramossilvapaula theskeletalproteomeofthecoralacroporamilleporatheevolutionofcalcificationbycooptionanddomainshuffling
AT kaandorpjaap theskeletalproteomeofthecoralacroporamilleporatheevolutionofcalcificationbycooptionanddomainshuffling
AT huismanlotte theskeletalproteomeofthecoralacroporamilleporatheevolutionofcalcificationbycooptionanddomainshuffling
AT mariebenjamin theskeletalproteomeofthecoralacroporamilleporatheevolutionofcalcificationbycooptionanddomainshuffling
AT zanellacleonisabelle theskeletalproteomeofthecoralacroporamilleporatheevolutionofcalcificationbycooptionanddomainshuffling
AT guichardnathalie theskeletalproteomeofthecoralacroporamilleporatheevolutionofcalcificationbycooptionanddomainshuffling
AT millerdavidj theskeletalproteomeofthecoralacroporamilleporatheevolutionofcalcificationbycooptionanddomainshuffling
AT marinfrederic theskeletalproteomeofthecoralacroporamilleporatheevolutionofcalcificationbycooptionanddomainshuffling
AT ramossilvapaula skeletalproteomeofthecoralacroporamilleporatheevolutionofcalcificationbycooptionanddomainshuffling
AT kaandorpjaap skeletalproteomeofthecoralacroporamilleporatheevolutionofcalcificationbycooptionanddomainshuffling
AT huismanlotte skeletalproteomeofthecoralacroporamilleporatheevolutionofcalcificationbycooptionanddomainshuffling
AT mariebenjamin skeletalproteomeofthecoralacroporamilleporatheevolutionofcalcificationbycooptionanddomainshuffling
AT zanellacleonisabelle skeletalproteomeofthecoralacroporamilleporatheevolutionofcalcificationbycooptionanddomainshuffling
AT guichardnathalie skeletalproteomeofthecoralacroporamilleporatheevolutionofcalcificationbycooptionanddomainshuffling
AT millerdavidj skeletalproteomeofthecoralacroporamilleporatheevolutionofcalcificationbycooptionanddomainshuffling
AT marinfrederic skeletalproteomeofthecoralacroporamilleporatheevolutionofcalcificationbycooptionanddomainshuffling