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Updated: Jun 2, 2026

Multimodal Optical Microscopy Methods Reveal Polyp Tissue Morphology and Structure in Caribbean Reef Building Corals
Published on: September 5, 2014
The presence of multiple phenoloxidases in Caribbean reef-building corals
Laura D Mydlarz1, Caroline V Palmer
1Department of Biology, University of Texas at Arlington, Arlington, TX 76011, USA. mydlarz@uta.edu
Abstract:
The melanin-synthesis pathways, phenoloxidase (PO) and laccases, are staple components of invertebrate immunity and have been shown to be vital in disease resistance. The importance of this pathway in immunity is a consequence of the release of oxygen radicals with cytotoxic effects and the production of insoluble melanin, which aids in the encapsulation of pathogens and parasites. Recently, melanization has been demonstrated as a critical immune response in several coral systems, although the biochemical components have not been thoroughly investigated. Coral diseases are posing a serious threat to coral reef survival, necessitating a full understanding of resistance mechanisms. In this study, we take a comparative approach to probe potential pathway components of melanin-synthesis in seven species from four different families of healthy Caribbean reef-building corals. Using different quinone substrates, we tested for the activity of the POs catecholase and cresolase, as well as laccase activity in each coral species. Since many invertebrate POs demonstrate some dependence on cations such as copper, calcium and magnesium, we treated the coral extracts with the chelators EDTA and EGTA to test the reliance of coral catecholase on these cations. The activity of the antioxidants peroxidase, superoxide dismutase and catalase was also tested in each coral and correlated to PO activity. All corals had demonstrable catecholase, cresolase and laccase activities, but only catecholase and cresolase activities varied significantly among species. Catecholase activity in each coral species was reduced by treatment with EDTA and EGTA, although some coral species were less affected than the others. Overall, these data show remarkable heterogeneity among the seven coral species of boulder-like reef building Caribbean coral. These differences may originate from the level of investment of each coral species into immunity and may explain disease ecology on the reef.
Insights
Coral immunity relies on melanin-synthesis pathways like phenoloxidase (PO) and laccases. This study reveals significant species-specific variations in PO activity among Caribbean corals, impacting disease resistance.
Area of Science:
- Marine Biology
- Immunology
- Biochemistry
Background:
- Melanin-synthesis pathways, including phenoloxidase (PO) and laccases, are crucial for invertebrate immunity and disease resistance.
- Melanization in corals is a vital immune response, but its biochemical underpinnings remain largely uninvestigated.
- Coral diseases threaten reef survival, highlighting the need to understand coral immune mechanisms.
Purpose of the Study:
- To comparatively investigate melanin-synthesis pathway components in seven Caribbean reef-building coral species.
- To assess the activity of PO (catecholase and cresolase) and laccase enzymes.
- To determine the dependence of coral PO activity on specific cations and antioxidant enzyme presence.
Main Methods:
- Assayed catecholase, cresolase, and laccase activities in coral extracts from seven species.
- Tested the effect of chelators EDTA and EGTA on catecholase activity to assess cation dependence.
- Measured antioxidant enzyme activities (peroxidase, superoxide dismutase, catalase) and correlated them with PO activity.
Main Results:
- All tested coral species exhibited catecholase, cresolase, and laccase activities.
- Significant interspecific variation was observed in catecholase and cresolase activities.
- Coral catecholase activity was reduced by EDTA and EGTA, indicating cation dependence, with varying sensitivity among species.
Conclusions:
- Demonstrated significant heterogeneity in melanin-synthesis pathway components among Caribbean coral species.
- Observed cation dependence of coral catecholase activity suggests a conserved mechanism.
- Interspecific differences in immunity may influence coral disease susceptibility and reef ecology.
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