HR: 16:15h
AN: PP34A-02 [Abstracts]
TI: Aragonite production in calcite seas: effect of seawater Mg/Ca ratio on the calcification and growth of
the calcareous algae {\it Penicillus}, {\it Halimeda} and {\it Udotea}
AU: * Ries, J B
EM: jries@jhu.edu
AF: Morton K. Blaustein Department of Earth and Planetary Sciences
Johns Hopkins University, 301 Olin Hall, Baltimore, MD 21218
United States
AB:
Stanley and Hardie (1998, 1999) have shown that secular variation in the Mg/Ca ratio of seawater throughout the Phanerozoic
would have subjected the aragonite-producing Codiacean algae to three transitions between the so-called calcite (molar Mg/Ca
$<$ 2) and aragonite (molar Mg/Ca $>$ 2) seas, since their origin in the Ordovician (Roux, 1991). They assert that major
sediment production by Codiacean algae in recent tropical seas is permitted by the molar Mg/Ca ratio of modern seawater
($\sim$5.2) remaining within the range of aragonite seas (molar Mg/Ca $>$ 2).
To test this hypothesis, three major sediment producing Codiacean algae, {\it Penicillus capitatus}, {\it Halimeda monile}
and {\it Udotea flabellum}, were grown in three artificial ancient seawaters, corresponding to "calcite seas" (molar Mg/Ca =
1.0), "aragonite seas" (molar Mg/Ca = 5.2) and a boundary composition (molar Mg/Ca = 2.5). Significantly, the {\it
Penicillus} and {\it Udotea} specimens maintained their aragonitic mineralogy in each of the artificial seawaters, suggesting
either that the algae pump cations to create an internal aragonite nucleation field or employ organic templates specifying
the nucleation of the aragonite polymorph (Borowitzka 1984). The {\it Halimeda} specimens also produced aragonite in the
aragonite and boundary seawaters, but failed to grow at all in the calcite seawater. Linear growth rates, primary
productivity and calcification decreased with reductions in ambient Mg/Ca. A stress-strain analysis of the {\it Penicillus}
thalli revealed that their stiffnesses also decreased with Mg/Ca.
The reduced calcification of the algae grown in the calcite and boundary seawaters is probably due to the kinetic difficulty
of precipitating aragonite from seawater which does not favor its nucleation. The decreased rates of linear growth and
primary production were probably caused by reductions in CO$_{2}$ available for photosynthesis (CO$_{2}$ + H$_{2}$O =
CH$_{2}$O + O$_{2}$) due to the reduction in calcification (2HCO$_{3}$ + Ca = CaCO$_{3}$ + CO$_{2}$ + H$_{2}$O). The decrease
in {\it Penicillus} thallus stiffness is probably due to reductions in calcification and primary production.
This study suggests that producing aragonite in seawater outside of the aragonite + high-Mg calcite nucleation field would
have reduced the competitiveness of these algae, made them more susceptible to predation and decreased their contribution to
carbonate sedimentation. These findings support Stanley and Hardie's (1998, 1999) empirical evidence that changing Mg/Ca
ratios in the oceans have had a significant impact on the major calcifying reef builders and sediment producers throughout
the Phanerozoic.
DE: 1030 Geochemical cycles (0330)
DE: 1050 Marine geochemistry (4835, 4850)
DE: 1615 Biogeochemical processes (4805)
DE: 1635 Oceans (4203)
DE: 0400 Biogeosciences
SC: Paleoceanography and Paleoclimatology [PP]
MN: 2004 AGU Fall Meeting