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本文引用的文献

1
Ocean acidification impacts mussel control on biomineralisation.海洋酸化影响贻贝对生物矿化的控制。
Sci Rep. 2014 Aug 28;4:6218. doi: 10.1038/srep06218.
2
Coralline algal structure is more sensitive to rate, rather than the magnitude, of ocean acidification.珊瑚藻结构对海洋酸化的速率更为敏感,而非其程度。
Glob Chang Biol. 2013 Dec;19(12):3621-8. doi: 10.1111/gcb.12351. Epub 2013 Oct 8.
3
Interactive effects of elevated temperature and CO2 levels on energy metabolism and biomineralization of marine bivalves Crassostrea virginica and Mercenaria mercenaria.温度升高和 CO2 水平升高对海洋双壳贝类贻贝和文蛤能量代谢和生物矿化的交互影响。
Comp Biochem Physiol A Mol Integr Physiol. 2013 Sep;166(1):101-11. doi: 10.1016/j.cbpa.2013.05.016. Epub 2013 May 21.
4
Food availability outweighs ocean acidification effects in juvenile Mytilus edulis: laboratory and field experiments.食物可利用性胜过贻贝幼体的海洋酸化影响:实验室和野外实验。
Glob Chang Biol. 2013 Apr;19(4):1017-27. doi: 10.1111/gcb.12109. Epub 2013 Jan 15.
5
A natural functionally graded biocomposite coating--human enamel.一种天然的功能梯度生物复合涂层——人牙釉质。
Acta Biomater. 2013 May;9(5):6330-7. doi: 10.1016/j.actbio.2012.12.029. Epub 2013 Jan 3.
6
Interactive effects of salinity and elevated CO2 levels on juvenile eastern oysters, Crassostrea virginica.盐度和 CO2 水平升高对幼年美洲牡蛎(Crassostrea virginica)的交互影响。
J Exp Biol. 2012 Jan 1;215(Pt 1):29-43. doi: 10.1242/jeb.061481.
7
Global change ecotoxicology: Identification of early life history bottlenecks in marine invertebrates, variable species responses and variable experimental approaches.全球变化生态毒理学:海洋无脊椎动物早期生活史瓶颈的识别、物种反应的可变性和实验方法的可变性。
Mar Environ Res. 2012 May;76:3-15. doi: 10.1016/j.marenvres.2011.10.004. Epub 2011 Nov 15.
8
Food supply and seawater pCO2 impact calcification and internal shell dissolution in the blue mussel Mytilus edulis.食物供应和海水 pCO2 对贻贝 Mytilus edulis 的钙化和内部贝壳溶解的影响。
PLoS One. 2011;6(9):e24223. doi: 10.1371/journal.pone.0024223. Epub 2011 Sep 16.
9
Functional impacts of ocean acidification in an ecologically critical foundation species.海洋酸化对生态关键基础物种的功能影响。
J Exp Biol. 2011 Aug 1;214(Pt 15):2586-94. doi: 10.1242/jeb.055939.
10
Ocean acidification: the other CO2 problem.海洋酸化:另一个 CO2 问题。
Ann Rev Mar Sci. 2009;1:169-92. doi: 10.1146/annurev.marine.010908.163834.

海洋酸化改变了紫贻贝贝壳的材料特性。

Ocean acidification alters the material properties of Mytilus edulis shells.

作者信息

Fitzer Susan C, Zhu Wenzhong, Tanner K Elizabeth, Phoenix Vernon R, Kamenos Nicholas A, Cusack Maggie

机构信息

School of Geographical and Earth Sciences, University of Glasgow, Glasgow G12 8QQ, UK

School of Engineering, University of the West of Scotland, Paisley PA1 2BE, UK.

出版信息

J R Soc Interface. 2015 Feb 6;12(103). doi: 10.1098/rsif.2014.1227.

DOI:10.1098/rsif.2014.1227
PMID:25540244
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4305426/
Abstract

Ocean acidification (OA) and the resultant changing carbonate saturation states is threatening the formation of calcium carbonate shells and exoskeletons of marine organisms. The production of biominerals in such organisms relies on the availability of carbonate and the ability of the organism to biomineralize in changing environments. To understand how biomineralizers will respond to OA the common blue mussel, Mytilus edulis, was cultured at projected levels of pCO2 (380, 550, 750, 1000 µatm) and increased temperatures (ambient, ambient plus 2°C). Nanoindentation (a single mussel shell) and microhardness testing were used to assess the material properties of the shells. Young's modulus (E), hardness (H) and toughness (KIC) were measured in mussel shells grown in multiple stressor conditions. OA caused mussels to produce shell calcite that is stiffer (higher modulus of elasticity) and harder than shells grown in control conditions. The outer shell (calcite) is more brittle in OA conditions while the inner shell (aragonite) is softer and less stiff in shells grown under OA conditions. Combining increasing ocean pCO2 and temperatures as projected for future global ocean appears to reduce the impact of increasing pCO2 on the material properties of the mussel shell. OA may cause changes in shell material properties that could prove problematic under predation scenarios for the mussels; however, this may be partially mitigated by increasing temperature.

摘要

海洋酸化(OA)以及由此导致的碳酸盐饱和度状态变化,正威胁着海洋生物碳酸钙外壳和外骨骼的形成。此类生物中生物矿物质的产生依赖于碳酸盐的可利用性以及生物在不断变化的环境中进行生物矿化的能力。为了解生物矿化者对海洋酸化的反应,将常见的蓝贻贝(Mytilus edulis)在预计的pCO2水平(380、550、750、1000微大气压)和升高的温度(环境温度、环境温度加2°C)下进行培养。使用纳米压痕法(单个贻贝壳)和显微硬度测试来评估贝壳的材料特性。在多种应激条件下生长的贻贝壳中测量了杨氏模量(E)、硬度(H)和韧性(KIC)。海洋酸化导致贻贝产生的贝壳方解石比在对照条件下生长的贝壳更硬(弹性模量更高)且更坚硬。在海洋酸化条件下,外壳(方解石)更脆,而在海洋酸化条件下生长的贝壳中内壳(文石)更软且硬度更低。将未来全球海洋预计的海洋pCO2升高和温度升高相结合,似乎会降低pCO2升高对贻贝壳材料特性的影响。海洋酸化可能会导致贝壳材料特性发生变化,这在贻贝的捕食场景下可能会带来问题;然而,温度升高可能会部分缓解这种情况。