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Updated: Jan 10, 2026

Calcium Carbonate Formation in the Presence of Biopolymeric Additives
Published on: May 14, 2019
Proteins and Water Control the Stability of the Intracellular Amorphous Calcium Carbonate Inclusions Formed by
Neha Mehta1,2, Tristan Georges3,4, Guillaume P Laurent3
1Sorbonne Université, CNRS, Institut de minéralogie, de physique des matériaux et de cosmochimie, F-75005 Paris, France.
None:
The formation of stable intracellular amorphous calcium carbonate (ACC) inclusions is widespread among bacteria, yet the mechanisms underlying their long-term stabilization remain unresolved. In this study, we apply multinuclear solid-state NMR (ssNMR) spectroscopy to dried cells of the ACC-forming cyanobacterium Cyanothece sp. PCC 7425 to probe the molecular environment surrounding cyanobacterial ACC and its role in promoting ACC stability. Our 13C and 43Ca ssNMR analyses confirm that the intracellular carbonate phase is composed exclusively of hydrated ACC, with no detectable crystalline CaCO3 polymorphs. The 1H-13C HETCOR correlations reveal short-range proximity between ACC and water molecules but no direct interactions with organic molecules. The 13C-13C DARR long-range correlations detect organic signals consistent with proteins that interact with ACC indirectly, possibly via water molecules. This finding was further supported by the absence of organic components in the vicinity of ACC in short-range 13C-13C POST-C7 experiments. Taken together, these results are compatible with a model in which cyanobacterial hydrated ACC granules are stabilized by a proteinaceous shell, with some water molecules serving as molecular bridges. This configuration likely restricts water and ion mobility, contributing to the kinetic stabilization of the cyanobacterial ACC.
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