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Salinity-dependent diatom biosilicification implies an important role of external ionic strength
Author(s) -
Engel G. Vrieling,
Qianyao Sun,
Mingwen Tian,
Patricia J. Kooyman,
W.W.C. Gieskes,
Rutger A. van Santen,
Nico A. J. M. Sommerdijk
Publication year - 2007
Publication title -
proceedings of the national academy of sciences
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.011
H-Index - 771
eISSN - 1091-6490
pISSN - 0027-8424
DOI - 10.1073/pnas.0608980104
Subject(s) - diatom , frustule , ionic strength , silicic acid , thalassiosira weissflogii , salinity , deposition (geology) , chemical engineering , chemistry , thalassiosira pseudonana , ionic bonding , biophysics , environmental chemistry , ion , geology , oceanography , biology , sediment , organic chemistry , phytoplankton , nutrient , paleontology , engineering , aqueous solution
The role of external ionic strength in diatom biosilica formation was assessed by monitoring the nanostructural changes in the biosilica of the two marine diatom species Thalassiosira punctigera and Thalassiosira weissflogii that was obtained from cultures grown at two distinct salinities. Using physicochemical methods, we found that at lower salinity the specific surface area, the fractal dimensions, and the size of mesopores present in the biosilica decreased. Diatom biosilica appears to be denser at the lower salinity that was applied. This phenomenon can be explained by assuming aggregation of smaller coalescing silica particles inside the silica deposition vesicle, which would be in line with principles in silica chemistry. Apparently, external ionic strength has an important effect on diatom biosilica formation, making it tempting to propose that uptake of silicic acid and other external ions may take place simultaneously. Uptake and transport of reactants in the proximity of the expanding silica deposition vesicle, by (macro)pinocytosis, are more likely than intracellular stabilization and transport of silica precursors at the high concentrations that are necessary for the formation of the siliceous frustule components.

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