| Literature DB >> 21248860 |
Andrew L King1, Sergio A Sañudo-Wilhelmy, Karine Leblanc, David A Hutchins, Feixue Fu.
Abstract
Phytoplankton growth can be limited by numerous inorganic nutrients and organic growth factors. U<class="Chemical">spaclass="Chemical">n class="Chemical">siclass="Chemical">n>ng the subarctic diatom Attheya class="Chemical">sp. in culture studies, we examined how the availability of <span class="Chemical">vitamin B(12) and <span class="Chemical">carbon dioxide partial pressure (<class="Chemical">span class="Chemical">pCO(2)) influences growth rate, primary productivity, cellular iron (Fe), cobalt (Co), zinc (Zn) and cadmium (Cd) quotas, and the net use efficiencies (NUEs) of these bioactive trace metals (mol C fixed per mol cellular trace metal per day). Under B(12)-replete conditions, cells grown at high pCO(2) had lower Fe, Zn and Cd quotas, and used those trace metals more efficiently in comparison with cells grown at low pCO(2). At high pCO(2), B(12)-limited cells had ~50% lower specific growth and carbon fixation rates, and used Fe ~15-fold less efficiently, and Zn and Cd ~3-fold less efficiently, in comparison with B(12)-replete cells. The observed higher Fe, Zn and Cd NUE under high pCO(2)/B(12)-replete conditions are consistent with predicted downregulation of carbon-concentrating mechanisms. Co quotas of B(12)-replete cells were ∼5- to 14-fold higher in comparison with B(12)-limited cells, suggesting that >80% of cellular Co of B(12)-limited cells was likely from B(12). Our results demonstrate that CO(2) and vitamin B(12) interactively influence growth, carbon fixation, trace metal requirements and trace metal NUE of this diatom. This suggests the need to consider complex feedback interactions between multiple environmental factors for this biogeochemically critical group of phytoplankton in the last glacial maximum as well as the current and future changing ocean.Entities:
Mesh:
Substances:
Year: 2011 PMID: 21248860 PMCID: PMC3146264 DOI: 10.1038/ismej.2010.211
Source DB: PubMed Journal: ISME J ISSN: 1751-7362 Impact factor: 10.302
Mean and one s.d. (in parenthesis) of the seawater carbonate buffer system measurements from all six experimental treatments (n=3)
| B12-limited, 208 p.p.m. | 8.36 (0.03) | 1975 (27) | 208 (15) |
| B12-limited, 380 p.p.m. | 8.13 (0.02) | 2070 (20) | 380 (18) |
| B12-limited, 680 p.p.m. | 7.91 (0.02) | 2208 (13) | 680 (32) |
| B12-replete, 195 p.p.m. | 8.38 (0.02) | 1946 (16) | 195 (10) |
| B12-replete, 353 p.p.m. | 8.15 (0.02) | 2020 (8) | 353 (16) |
| B12-replete, 661 p.p.m. | 7.92 (0.01) | 2197 (12) | 661 (31) |
Abbreviations: DIC, dissolved inorganic carbon; pCO2, carbon dioxide partial pressure.
Seawater medium pCO2 levels were calculated from measurements of pH and DIC from the final sampling day, but were consistent at or near these values throughout most of the experiment after a brief initial equilibration period (data not shown).
Figure 1Growth parameters for Attheya grown at 200, 370 and 670 p.p.m. pCO2 in B12-replete (open bars) and B12-limited cultures (filled bars). (a) Specific growth rates (per day) and (b) 14C-based primary productivity (μg C per μg chl per h). Error bars represent one s.d. (n=3).
Figure 2Particulate organic C and N normalized to P for Attheya grown at 200, 370 and 670 p.p.m. pCO2 in B12-replete (open bars) and B12-limited cultures (filled bars). (a) C:P (mol:mol) and (b) N:P (mol:mol). Error bars represent one s.d. (n=3).
Figure 3Fe, Co, Zn and Cd quotas for Attheya grown at 200, 370 and 670 p.p.m. pCO2 in B12-replete (open bars) and B12-limited cultures (filled bars). (a) Fe:P (mmol:mol), (b) Co:P (mmol:mol), (c) Zn:P (mmol:mol) and (d) Cd:P (mmol:mol). Error bars represent one s.d. (n=3).
Figure 4Trace metal NUEs (mol C fixed per mol metal per day) for Attheya grown at 200, 370 and 670 p.p.m. pCO2 in B12-replete (open bars) and B12-limited cultures (filled bars). (a) FeNUE, (b) CoNUE, (c) ZnNUE and (d) CdNUE. Error bars represent one s.d. (n=3).
Mean cellular Co and s.d. (in parentheses), percent of mean cellular Co from Co–B12 and range (in parentheses), and mean dissolved Co utilization (calculated by difference) for B12-limited cells, assuming B12 is completely bioavailable and utilized
| 200 | 3.8 (1.5) | >100 | — |
| 370 | 8.8 (0.8) | 84 (73–95) | 16 |
| 670 | 9.4 (4.4) | 78 (54–148) | 22 |
Abbreviations: Co, cobalt; pCO2, carbon dioxide partial pressure.
[Co] contained in B12 added to media was 7.4 × 10−12 ; dissolved [Co] added to media was 5 × 10−8 .