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

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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