2024/09/10 by Ellen MacDonald, Gavin L. Foster, Christopher D. Standish +3 · 1 voice · 1 citation
Earth and Planetary Sciences · Environmental Science · #Ocean Acidification Effects and Responses #Marine and coastal ecosystems #Marine Bivalve and Aquaculture Studies
paper · doi:10.1016/j.epsl.2024.118976
• The δ 11 B of coralline algae skeleton offer a means to reconstruct coastal pH. • 2D maps of trace element content and δ 11 B were collected on Boreolithothamniom cf. soriferum . • These images were aligned using correlated multimodal imaging techniques. • We reconstruct an ocean acidification trend of −0.018 pH units yr -1 in Loch Sween. • Loch Sween switched from being a substantial sink of CO 2 to a source in ∼2008. Ocean Acidification (OA) arises from the increase in atmospheric carbon dioxide concentration following the industrial revolution. The ecological and socio-economic consequences of OA were first identified around 10–15 years ago but remain poorly understood. This is particularly true in coastal regions where local processes can have dramatic consequences on pH trends through time, obscuring and compounding the long-term effects from rising atmospheric CO 2 . Here we explore the possibility of generating long records of coastal ocean pH using the skeletons of widely distributed coralline algae (CA). The skeletons of these slow growing (<1 mm/year) taxa often contain micron-scale heterogeneities, making sampling for high-resolution climate reconstructions using bulk sampling techniques difficult. Here we use laser ablation coupled to inductively coupled plasma mass spectrometers to generate high-resolution 2D images of the element/calcium ratios and boron isotope composition (δ 11 B) of a sample of Boreolithothamniom cf. soriferum from Loch Sween in Scotland, UK where we have been monitoring temperature since 2004 and pH during 2014. By carefully correlating the geochemical images with a scanning electron microscopy image we can segment them to remove the marginal portions of the skeleton, isolating the central growth axis to generate an age model and growth rate. The δ 11 B-pH is significantly elevated above the seawater pH in Loch Sween (8.4 to 8.9 vs. 7.9 to 8.1) consistent with other CA that show internal pH elevation. On a seasonal scale, internal pH is negatively correlated with temperature and also exhibits a long-term decline. By removing this temperature effect, internal pH can be correlated to seawater pH during the 2014 monitoring period allowing us to reconstruct a seawater acidification trend from 2004 to 2018 of -0.018 pH units per year, 10x higher than open ocean trends but consistent with contemporaneous monitoring efforts of UK coastal waters. Reconstructed aqueous CO 2 suggests that prior to ∼2008 Loch Sween was a sink of CO 2 but after this date, particularly during the early summer, it was a substantial CO 2 source. Comparison of reconstructed aqueous CO 2 with a record of calcification rate of our sample of Boreolithothamniom cf. soriferum suggests this acidification and associated rise in local seawater pCO 2 may have freed this sample from carbon limitation leading to a recent increase in calcification.