Diatoms are major primary producers in productive polar oceans, where cold temperatures and high CO2 solubility raise questions as to whether they rely on the CO2-concentrating mechanism (CCM) to saturate photosynthesis. Knowledge of CCM function will help better predict the sensitivity of diatom primary production to warming and acidifying polar oceans. Here, we characterized the CCM in the polar diatom, Fragilariopsis cylindrus, using membrane inlet mass spectrometry (MIMS) and a numerical model. Quantification of the role of external carbonic anhydrase (eCA) was enabled through the addition of a surface boundary layer to the numerical model. We found that F. cylindrus displayed an active CCM across a wide range of inorganic carbon availability, but that the CCM was not required under air-equilibrated CO2 concentrations. eCA was an essential component of the CCM, facilitating HCO3 - uptake. When eCA was inhibited, CO2 was the primary carbon source. The eCA role in supporting HCO3 - uptake was independent of temperature changes. eCA-supported HCO3 - transport is likely a mechanism for F. cylindrus to cope with fluctuating concentrations of inorganic carbon over a dynamic seasonal cycle in polar oceans. Our work challenges the hypothesis that CCMs are not required at cold temperatures.
Li et al. (Thu,) studied this question.