Response of cyanobacterial carbon concentrating system to light intensity: a simulated analysis
Author:
Publisher
Springer Science and Business Media LLC
Subject
Water Science and Technology,Oceanography
Link
http://link.springer.com/content/pdf/10.1007/s00343-010-9046-x.pdf
Reference39 articles.
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3. Chen D X, Coughenour M B. 1996. A mechanistic model for submerged aquatic macrophyte Photosynthesis: Hydrilla in ambient and elevated CO2. Ecol. Modell., 89: 133–146.
4. Espie G S, Miller A G, Canvin D T. 1989. Selective and reversible inhibition of active CO2 transport by hydrogen sulfide in a cyanobacterium. Plant Physio1., 91:387–394.
5. Espie G S, Miller A G, Canvin D T. 1991a. High affinity transport of CO2 in the cyanobacterium Synechococcus UTEX 625. Plant Physiol., 97: 943–953.
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1. Elevated CO2 and associated seawater chemistry do not benefit a model diatom grown with increased availability of light;Aquatic Microbial Ecology;2017-05-12
2. In Synechococcus sp. competition for energy between assimilation and acquisition of C and those of N only occurs when growth is light limited;Journal of Experimental Botany;2017-03-28
3. Exploiting Microalgae and Macroalgae for Production of Biofuels and Biosequestration of Carbon Dioxide—A Review;International Journal of Green Energy;2014-04-16
4. Algal and aquatic plant carbon concentrating mechanisms in relation to environmental change;Photosynthesis Research;2011-02-16
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