Effects of light and elevated pCO2 on the growth and photochemical efficiency of Acropora cervicornis

被引:0
作者
I. C. Enochs
D. P. Manzello
R. Carlton
S. Schopmeyer
R. van Hooidonk
D. Lirman
机构
[1] University of Miami,Cooperative Institute for Marine and Atmospheric Studies, Rosenstiel School of Marine and Atmospheric Science
[2] NOAA,Atlantic Oceanographic and Meteorological Laboratories (AOML)
[3] University of Miami,Rosenstiel School of Marine and Atmospheric Science
来源
Coral Reefs | 2014年 / 33卷
关键词
Ocean acidification; Light; Calcification;
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中图分类号
学科分类号
摘要
The effects of light and elevated pCO2 on the growth and photochemical efficiency of the critically endangered staghorn coral, Acropora cervicornis, were examined experimentally. Corals were subjected to high and low treatments of CO2 and light in a fully crossed design and monitored using 3D scanning and buoyant weight methodologies. Calcification rates, linear extension, as well as colony surface area and volume of A. cervicornis were highly dependent on light intensity. At pCO2 levels projected to occur by the end of the century from ocean acidification (OA), A. cervicornis exhibited depressed calcification, but no change in linear extension. Photochemical efficiency (Fv/Fm) was higher at low light, but unaffected by CO2. Amelioration of OA-depressed calcification under high-light treatments was not observed, and we suggest that the high-light intensity necessary to reach saturation of photosynthesis and calcification in A. cervicornis may limit the effectiveness of this potentially protective mechanism in this species. High CO2 causes depressed skeletal density, but not linear extension, illustrating that the measurement of extension by itself is inadequate to detect CO2 impacts. The skeletal integrity of A. cervicornis will be impaired by OA, which may further reduce the resilience of the already diminished populations of this endangered species.
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页码:477 / 485
页数:8
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共 202 条
[1]  
Albright R(2010)Ocean acidification compromises recruitment success of the threatened Caribbean coral Proc Natl Acad Sci USA 107 20400-20404
[2]  
Mason B(2009)Flattening of Caribbean coral reefs: region-wide declines in architectural complexity Proc R Soc Lond, B 276 3019-3025
[3]  
Miller M(2001)White-band disease and the changing face of Caribbean coral reefs Hydrobiologia 460 25-38
[4]  
Langdon C(2008)Climate change and coral reef bleaching: An ecological assessment of long-term impacts, recovery trends and future outlook Estuar Coast Shelf Sci 80 435-471
[5]  
Alvarez-Filip L(2002)Impact of sea grass density on carbonate dissolution in Bahamian sediments Limnol Oceanogr 47 1751-1763
[6]  
Dulvy NK(2008)Rates of carbonate dissolution in permeable sediments estimated from pore-water profiles: The role of sea grasses Limnol Oceanogr 53 549-565
[7]  
Gill JA(1981)Simulating light-saturation curves for photosynthesis and calcification by reef-building corals Mar Biol 63 135-141
[8]  
Côté IM(1975)Light-enhanced calcification, and the role of oxidative phosphorylation in calcification of the coral Proc R Soc Lond, B 190 323-331
[9]  
Watkinson AR(1978)Mechanical properties of coral skeleton: compressive strength and its adaptive significance Paleobiology 4 419-435
[10]  
Aronson RB(1980)Coral morphology, diversity and reef growth Nature 286 249-252