Coral skeleton P/Ca proxy for seawater phosphate: Multi-colony calibration with a contemporaneous seawater phosphate record

A geochemical proxy for surface ocean nutrient concentrations recorded in coral skeleton could provide new insight into the connections between sub-seasonal to centennial scale nutrient dynamics, ocean physics, and primary production in the past. Previous work showed that coralline P/Ca, a novel sea...

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Main Authors: LaVigne, Michele (Author), Matthews, Kathryn A. (Author), Grottoli, Andrea G. (Author), Cobb, Kim M. (Author), Anagnostou, Eleni (Author), Cabioch, Guy (Author), Sherrell, Robert M. (Author)
Format: Article
Language:English
Published: 2010.
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Online Access:Get fulltext
LEADER 03011 am a22001933u 4500
001 339950
042 |a dc 
100 1 0 |a LaVigne, Michele  |e author 
700 1 0 |a Matthews, Kathryn A.  |e author 
700 1 0 |a Grottoli, Andrea G.  |e author 
700 1 0 |a Cobb, Kim M.  |e author 
700 1 0 |a Anagnostou, Eleni  |e author 
700 1 0 |a Cabioch, Guy  |e author 
700 1 0 |a Sherrell, Robert M.  |e author 
245 0 0 |a Coral skeleton P/Ca proxy for seawater phosphate: Multi-colony calibration with a contemporaneous seawater phosphate record 
260 |c 2010. 
856 |z Get fulltext  |u https://eprints.soton.ac.uk/339950/1/Lavigne2010-P-Ca-multicolony-corals.pdf 
520 |a A geochemical proxy for surface ocean nutrient concentrations recorded in coral skeleton could provide new insight into the connections between sub-seasonal to centennial scale nutrient dynamics, ocean physics, and primary production in the past. Previous work showed that coralline P/Ca, a novel seawater phosphate proxy, varies synchronously with annual upwelling-driven cycles in surface water phosphate concentration. However, paired contemporaneous seawater phosphate time-series data, needed for rigorous calibration of the new proxy, were lacking. Here we present further development of the P/Ca proxy in Porites lutea and Montastrea sp. corals, showing that skeletal P/Ca in colonies from geographically distinct oceanic nutrient regimes is a linear function of seawater phosphate (PO4 SW) concentration. Further, high-resolution P/Ca records in multiple colonies of Pavona gigantea and Porites lobata corals grown at the same upwelling location in the Gulf of Panama were strongly correlated to a contemporaneous time-series record of surface water PO4 SW at this site (r2 = 0.7-0.9). This study supports application of the following multi-colony calibration equations to down-core records from comparable upwelling sites, resulting in ±0.2 and ±0.1 lmol/kg uncertainties in PO4 SW reconstructions from P. lobata and P. gigantea, respectively. P/Ca Porites lobata (lmol/mol) = (21.1 ? 2.4)PO4 SW (lmol/kg) + (14.3 ? 3.8) P/Ca Pavona gigantea (lmol/mol) = (29.2 ? 1.4)PO4 SW (lmol/kg) + (33.4 ? 2.7) Inter-colony agreement in P/Ca response to PO4 SW was good (±5-12% about mean calibration slope), suggesting that species-specific calibration slopes can be applied to new coral P/Ca records to reconstruct past changes in surface ocean phosphate. However, offsets in the y-intercepts of calibration regressions among co-located individuals and taxa suggest that biologically-regulated "vital effects" and/or skeletal extension rate may also affect skeletal P incorporation. Quantification of the effect of skeletal extension rate on P/Ca could lead to corrected calibration equations and improved inter-colony P/Ca agreement. Nevertheless, the efficacy of the P/Ca proxy is thus supported by both broad scale correlation to mean surface water phosphate and regional calibration against documented local seawater phosphate variations. 
655 7 |a Article