Coralline algae in a naturally acidified ecosystem persist by maintaining control of skeletal mineralogy and size

被引:54
作者
Kamenos, N. A. [1 ]
Perna, G. [1 ]
Gambi, M. C. [2 ]
Micheli, F. [3 ]
Kroeker, K. J. [4 ]
机构
[1] Univ Glasgow, Sch Geog & Earth Sci, Glasgow G12 8QQ, Lanark, Scotland
[2] Villa Dohrn Benth Ecol Ctr, Stn Zool Anton Dohrn, Dept Integrat Marine Ecol, I-80077 Naples, Italy
[3] Stanford Univ, Dept Biol, Hopkins Marine Stn, Pacific Grove, CA 93950 USA
[4] Univ Calif Santa Cruz, Ecol & Evolutionary Biol, Santa Cruz, CA 95064 USA
关键词
crustose coralline algae; ecosystem; growth; mineralogy; ocean acidification; vents; OCEAN ACIDIFICATION; LOW-PH; RESPONSES; IMPACTS; GROWTH; RHODOPHYTA; CARBONATES; SETTLEMENT;
D O I
10.1098/rspb.2016.1159
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
To understand the effects of ocean acidification (OA) on marine calcifiers, the trade-offs among different sublethal responses within individual species and the emergent effects of these trade-offs must be determined in an ecosystem setting. Crustose coralline algae (CCA) provide a model to test the ecological consequences of such sublethal effects as they are important in ecosystem functioning, service provision, carbon cycling and use dissolved inorganic carbon to calcify and photosynthesize. Settlement tiles were placed in ambient pH, low pH and extremely low pH conditions for 14 months at a natural CO2 vent. The size, magnesium (Mg) content and molecular-scale skeletal disorder of CCA patches were assessed at 3.5, 6.5 and 14 months from tile deployment. Despite reductions in their abundance in low pH, the largest CCA from ambient and low pH zones were of similar sizes and had similar Mg content and skeletal disorder. This suggests that the most resilient CCA in low pH did not trade-off skeletal structure to maintain growth. CCA that settled in the extremely low pH, however, were significantly smaller and exhibited altered skeletal mineralogy (high Mg calcite to gypsum (hydrated calcium sulfate)), although at present it is unclear if these mineralogical changes offered any fitness benefits in extreme low pH. This field assessment of biological effects of OA provides endpoint information needed to generate an ecosystem relevant understanding of calcifying system persistence.
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