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The characteristics and biological relevance of inorganic Amorphous Calcium Carbonate (ACC) precipitated from seawater

The characteristics and biological relevance of inorganic Amorphous Calcium Carbonate (ACC) precipitated from seawater
The characteristics and biological relevance of inorganic Amorphous Calcium Carbonate (ACC) precipitated from seawater
The importance of amorphous calcium carbonate (ACC) as a precursor phase in the biomineralization of marine calcifiers is increasingly being reported, particularly as the presence of ACC has been observed or inferred in several major groups. Here, we investigate the structure of ACC and the conditions required for its precipitation from seawater-based solutions, with an emphasis on the coinfluence of the carbonate system (pH, dissolved inorganic carbon (DIC) concentration), seawater Mg/Ca ratio, and presence of amino acids. We find that Mg2+ and the presence of aspartic acid, glutamic acid, and glycine strongly inhibit ACC precipitation. Moreover, we were unable to precipitate ACC from seawater with a carbonate chemistry within the range of that thought to characterize the calcification site of certain marine calcifiers (i.e., DIC < 6 mM, pH < 9.3), although substantial modification of the seawater Mg/Ca ratio (Mg/Casw) allowed precipitation at a reduced DIC with the implication that this could be an important component of utilizing an ACC pathway. In addition, the degree to which Mg/Casw and the presence of amino acids influences the structure of ACC and the necessary seawater [CO32–] for precipitation is strongly pH dependent. At lower, more biologically relevant pH than that typical of much inorganic work, decreasing Mg/Casw can result in greater long-range order and less water of crystallization but facilitates precipitation at a considerably lower [CO32–] than at higher pH.
1528-7483
4300–4313
Evans, David
878c65c7-eab9-4362-896b-166e165eb94b
Webb, Paul B.
6e355225-72bb-4cbd-895a-ff6dea05c93d
Penkman, Kirsty
f94c1369-265e-4ddb-8578-80d6d6cdc616
Kröger, Roland
81d45bb6-2855-46e5-8d8b-7436ca668238
Allison, Nicola
f62c8053-72de-4197-a094-722a39998e94
Evans, David
878c65c7-eab9-4362-896b-166e165eb94b
Webb, Paul B.
6e355225-72bb-4cbd-895a-ff6dea05c93d
Penkman, Kirsty
f94c1369-265e-4ddb-8578-80d6d6cdc616
Kröger, Roland
81d45bb6-2855-46e5-8d8b-7436ca668238
Allison, Nicola
f62c8053-72de-4197-a094-722a39998e94

Evans, David, Webb, Paul B., Penkman, Kirsty, Kröger, Roland and Allison, Nicola (2019) The characteristics and biological relevance of inorganic Amorphous Calcium Carbonate (ACC) precipitated from seawater. Crystal Growth & Design, 19 (8), 4300–4313. (doi:10.1021/acs.cgd.9b00003).

Record type: Article

Abstract

The importance of amorphous calcium carbonate (ACC) as a precursor phase in the biomineralization of marine calcifiers is increasingly being reported, particularly as the presence of ACC has been observed or inferred in several major groups. Here, we investigate the structure of ACC and the conditions required for its precipitation from seawater-based solutions, with an emphasis on the coinfluence of the carbonate system (pH, dissolved inorganic carbon (DIC) concentration), seawater Mg/Ca ratio, and presence of amino acids. We find that Mg2+ and the presence of aspartic acid, glutamic acid, and glycine strongly inhibit ACC precipitation. Moreover, we were unable to precipitate ACC from seawater with a carbonate chemistry within the range of that thought to characterize the calcification site of certain marine calcifiers (i.e., DIC < 6 mM, pH < 9.3), although substantial modification of the seawater Mg/Ca ratio (Mg/Casw) allowed precipitation at a reduced DIC with the implication that this could be an important component of utilizing an ACC pathway. In addition, the degree to which Mg/Casw and the presence of amino acids influences the structure of ACC and the necessary seawater [CO32–] for precipitation is strongly pH dependent. At lower, more biologically relevant pH than that typical of much inorganic work, decreasing Mg/Casw can result in greater long-range order and less water of crystallization but facilitates precipitation at a considerably lower [CO32–] than at higher pH.

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Published date: 7 August 2019

Identifiers

Local EPrints ID: 502465
URI: http://eprints.soton.ac.uk/id/eprint/502465
ISSN: 1528-7483
PURE UUID: 66d881db-d708-4b23-b980-a1c4c60b41dc
ORCID for David Evans: ORCID iD orcid.org/0000-0002-8685-671X

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Date deposited: 26 Jun 2025 17:07
Last modified: 28 Jun 2025 04:05

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Contributors

Author: David Evans ORCID iD
Author: Paul B. Webb
Author: Kirsty Penkman
Author: Roland Kröger
Author: Nicola Allison

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