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CO 2-driven ocean acidification alters and weakens integrity of the calcareous tubes produced by the serpulid Tubeworm, Hydroides elegans

机译:二氧化碳驱动的海洋酸化改变和削弱由蛇纹石线虫,Hydroides elegans产生的钙质管的完整性。

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摘要

As a consequence of anthropogenic CO 2-driven ocean acidification (OA), coastal waters are becoming increasingly challenging for calcifiers due to reductions in saturation states of calcium carbonate (CaCO 3) minerals. The response of calcification rate is one of the most frequently investigated symptoms of OA. However, OA may also result in poor quality calcareous products through impaired calcification processes despite there being no observed change in calcification rate. The mineralogy and ultrastructure of the calcareous products under OA conditions may be altered, resulting in changes to the mechanical properties of calcified structures. Here, the warm water biofouling tubeworm, Hydroides elegans, was reared from larva to early juvenile stage at the aragonite saturation state (Ω A) for the current pCO 2 level (ambient) and those predicted for the years 2050, 2100 and 2300. Composition, ultrastructure and mechanical strength of the calcareous tubes produced by those early juvenile tubeworms were examined using X-ray diffraction (XRD), Fourier transform infrared spectroscopy (FT-IR), scanning electron microscopy (SEM) and nanoindentation. Juvenile tubes were composed primarily of the highly soluble CaCO 3 mineral form, aragonite. Tubes produced in seawater with aragonite saturation states near or below one had significantly higher proportions of the crystalline precursor, amorphous calcium carbonate (ACC) and the calcite/aragonite ratio dramatically increased. These alterations in tube mineralogy resulted in a holistic deterioration of the tube hardness and elasticity. Thus, in conditions where Ω A is near or below one, the aragonite-producing juvenile tubeworms may no longer be able to maintain the integrity of their calcification products, and may result in reduced survivorship due to the weakened tube protection. © 2012 Chan et al.
机译:由于人为CO 2驱动的海洋酸化(OA)的结果,由于碳酸钙(CaCO 3)矿物的饱和态降低,沿海水域对钙化剂的挑战日益增加。钙化率的反应是OA中最常被研究的症状之一。然而,尽管没有观察到钙化速率的变化,但OA也可能由于钙化过程受损而导致钙质产品质量下降。在OA条件下,钙质产品的矿物学和超微结构可能会发生变化,从而导致钙化结构的机械性能发生变化。在这里,对于当前的pCO 2水平(环境)和2050、2100和2300年的预测值,温水生物污垢虫(Hydroides elegans)以agon石饱和状态(ΩA)从幼虫饲养到少年初期。用X射线衍射(XRD),傅里叶变换红外光谱(FT-IR),扫描电子显微镜(SEM)和纳米压痕技术检查了那些早期幼虫的钙质管的超微结构和机械强度。少年管主要由高度溶解的CaCO 3矿物形式文石组成。在文石饱和状态接近或低于1的海水中生产的试管,其晶体前体,无定形碳酸钙(ACC)的比例明显更高,方解石/文石的比例急剧增加。管矿物学的这些改变导致管硬度和弹性的整体恶化。因此,在ΩA接近或低于ΩA的条件下,产agon石的幼虫可能不再能够保持其钙化产物的完整性,并且由于弱化管的保护而可能导致存活率降低。 ©2012 Chan等。

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