Molecular and mineral responses of corals grown under artificial Calcite Sea conditions

Author:

Conci Nicola1,Griesshaber Erika23,Rivera‐Vicéns Ramón E.1,Schmahl Wolfgang W.234,Vargas Sergio1,Wörheide Gert135ORCID

Affiliation:

1. Department of Earth and Environmental Sciences, Paleontology and Geobiology Ludwig‐Maximilians‐Universität Munich Germany

2. Department of Earth and Environmental Sciences, Crystallography Ludwig‐Maximilians‐Universität Munich Germany

3. GeoBio‐Center LMU Ludwig‐Maximilians‐Universität Munich Germany

4. SNSB ‐ Mineralogische Staatssammlung Munich Germany

5. SNSB ‐ Bayerische Staatssammlung für Paläontologie und Geologie Munich Germany

Abstract

AbstractThe formation of skeletal structures composed of different calcium carbonate polymorphs (e.g. aragonite and calcite) appears to be both biologically and environmentally regulated. Among environmental factors influencing aragonite and calcite precipitation, changes in seawater conditions—primarily in the molar ratio of magnesium and calcium during so‐called ‘Calcite’ (mMg:mCa below 2) or ‘Aragonite’ seas (mMg:mCa above 2)—have had profound impacts on the distribution and performance of marine calcifiers throughout Earth's history. Nonetheless, the fossil record shows that some species appear to have counteracted such changes and kept their skeleton polymorph unaltered. Here, the aragonitic octocoral Heliopora coerulea and the aragonitic scleractinian Montipora digitata were exposed to Calcite Sea‐like mMg:mCa with various levels of magnesium and calcium concentration, and changes in both the mineralogy (i.e. CaCO3 polymorph) and gene expression were monitored. Both species maintained aragonite deposition at lower mMg:mCa ratios, while concurrent calcite presence was only detected in M. digitata. Despite a strong variability between independent experimental replicates for both species, the expression for a set of putative calcification‐related genes, including known components of the M. digitata skeleton organic matrix (SkOM), was found to consistently change at lower mMg:mCa. These results support the previously proposed involvements of the SkOM in counteracting decreases in seawater mMg:mCa. Although no consistent expression changes in calcium and magnesium transporters were observed, down‐regulation calcium channels in H. coerulea in one experimental replicate and at an mMg:mCa of 2.5, pointing to a possible active calcium uptake regulation by the corals under altered mMg:mCa.

Funder

Deutsche Forschungsgemeinschaft

Publisher

Wiley

Subject

General Earth and Planetary Sciences,General Environmental Science,Ecology, Evolution, Behavior and Systematics

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