L. T. Bach, K. G. Schulz, and U. Riebesell, Distinguishing between the effects of ocean acidification and ocean carbonation in the coccolithophore Emiliania huxleyi, Limnol. Oceanogr, vol.55, 2011.

L. T. Bach, C. Bauke, K. J. Meier, U. Riebesell, and K. G. Schulz, Influence of changing carbonate chemistry on morphology and weight of coccoliths formed by Emiliania huxleyi, Biogeosciences, vol.9, pp.3449-3463, 2012.

J. Barcelos-e-ramos, M. N. Müller, and U. Riebesell, Shortterm response of the coccolithophore Emiliania huxleyi to an abrupt change in seawater carbon dioxide concentrations, Biogeosciences, vol.7, pp.177-186, 2010.

L. Beaufort, Weight estimates of coccoliths using the optical properties (birefringence) of calcite, Micropaleontology, vol.51, pp.289-298, 2005.
URL : https://hal.archives-ouvertes.fr/hal-01460378

L. Beaufort, I. Probert, and N. Buchet, Effects of acidification and primary production on coccolith weight: Implications for carbonate transfer from the surface to the deep ocean, 2007.
URL : https://hal.archives-ouvertes.fr/hal-01458328

L. Beaufort, I. Probert, T. De-garidel-thoron, E. M. Bendif, D. Ruiz-pino et al., Sensitivity of coccolithophores to carbonate chemistry and ocean acidification, Nature, vol.476, pp.80-83, 2011.
URL : https://hal.archives-ouvertes.fr/hal-00866853

C. Borchard, A. V. Borges, N. Händel, and A. Engel, Biogeochemical response of Emiliania huxleyi (PML B92/11) to elevated CO 2 and temperature under phosphorous limitation: A chemostat study, J. Exp. Mar. Biol. Ecol, vol.410, pp.61-71, 2011.

E. T. Buitenhuis, T. Pangerc, D. J. Franklin, C. Le-quere, and G. Malin, Growth rates of six coccolithophorid strains as a funtion of temperature, Limnol. Oceanogr, vol.53, pp.1181-1185, 2008.

J. C. Cubillos, S. W. Wright, G. Nash, M. F. De-salas, B. Griffiths et al., Calcification morphotypes of the coccolithophorid Emiliania huxleyi in the Southern Ocean: changes in 2001 to 2006 compared to historical data, vol.348, pp.47-54, 2007.
URL : https://hal.archives-ouvertes.fr/hal-01245622

J. C. Cubillos, J. Henderiks, L. Beaufort, W. R. Howard, and G. M. Hallegraeff, Reconstructing calcification in ancient coccolithophores: Individual coccolith weight and morphology of Coccolithus pelagicus (sensu lato), Mar. Micropaleontol, pp.29-39, 2012.
URL : https://hal.archives-ouvertes.fr/hal-01458309

M. Davey, G. A. Tarran, M. M. Mills, C. Ridame, R. J. Geider et al., Nutrient limitation of picophytoplankton photosynthesis and growth in the tropical North Atlantic, Limnol. Oceanogr, vol.53, pp.1722-1733, 2008.
URL : https://hal.archives-ouvertes.fr/hal-01491957

C. De-bodt, N. Van-oostende, J. Harlay, K. Sabbe, and L. Chou, Individual and interacting effects of pCO 2 and temperature on Emiliania huxleyi calcification: study of the calcite production, the coccolith morphology and the coccosphere size, Biogeosciences, vol.7, pp.1401-1412, 2010.

A. Dickson, An exact definition of total alkalinity and a procedure for the estimation of alkalinity and total inorganic carbon from tritration data, Deep Sea Res, vol.28, pp.609-623, 1981.

M. Ehrhardt, W. Koeve, K. Grasshoff, K. Kremling, M. Erhardt et al., Determination of particulate organic carbon and nitrogen, Methods of seawater analysis, 1999.

A. Engel, I. Zondervan, K. Aerts, L. Beaufort, A. Benthien et al., Testing the direct effect of CO 2 concentration on a bloom of the coccolithophorid Emiliania huxleyi in mesocosm experiments, Limnol. Oceanogr, vol.50, pp.493-504, 2005.
URL : https://hal.archives-ouvertes.fr/hal-01460377

A. Engel, K. G. Schulz, U. Riebesell, R. Bellerby, B. Delille et al., Effects of CO 2 on particle size distribution and phytoplankton abundance during a mesocosm bloom experiment (PeECE II), Biogeosciences, vol.5, pp.509-521, 2008.
URL : https://hal.archives-ouvertes.fr/hal-00297937

Y. Feng, M. Warner, Y. Zhang, J. Sun, F. Fu et al., Interactive effects of increased pCO 2 , temperature and irradiance on the marine coccolithophore Emiliania huxleyi (Prymnesiophyceae), Eur. J. Phycol, vol.43, pp.87-98, 2008.

Y. Feng, C. E. Hare, K. Leblanc, J. M. Rose, Y. Zhang et al., Effects of increased pCO 2 and temperature on the North Atlantic spring bloom. I. The phytoplankton community and biogeochemical response, Mar. Ecol. Prog. Ser, vol.388, pp.13-25, 2009.
URL : https://hal.archives-ouvertes.fr/hal-00700399

H. S. Findlay, P. Calosi, and K. Crawfurd, Determinants of the PIC:POC response in the coccolithophore Emiliania huxleyi under future ocean acidification scenarios, Limnol. Oceanogr, vol.56, pp.1168-1178, 2011.

Z. V. Finkel, J. Beardall, K. J. Flynn, A. Quigg, T. A. Rees et al., Phytoplankton in a changing world: cell size and elemental stoichiometry, J. Plankton Res, vol.32, pp.119-137, 2010.

R. Fukuda, H. Ogawa, T. Nagata, and I. Koike, Direct determination of carbon and nitrogen contents environments, Appl. Environ. Microbiol, vol.64, pp.3352-3358, 1998.

R. R. Guillard, Culture of phytoplankton for feeding marine invertebrates, Culture of marine invertebrates, 1975.

H. P. Hansen and F. Koroleff, Determination of nutrients, Methods of seawater analysis, 1999.

J. Henderiks, Coccolithophore size rules -Reconstructing ancient cell geometry and cellular calcite quota from fossil coccoliths, Mar. Micropaleontol, vol.67, pp.143-154, 2008.

J. Henderiks, A. Winter, M. Elbrächter, R. Feistel, A. Van-der-plas et al., Environmental controls on Emiliania huxleyi morphotypes in the Benguela coastal upwelling system (SE Atlantic), vol.448, pp.51-66, 2012.

S. Herrmann, A. F. Weller, J. Henderiks, and H. R. Thierstein, Global coccolith size variability in Holocene deep-sea sediments, Mar. Micropaleontol, pp.1-12, 2012.

C. J. Hoppe, G. Langer, and B. Rost, Emiliania huxleyi shows identical responses to elevated pCO 2 in TA and DIC manipulations, J. Exp. Mar. Biol. Ecol, vol.406, pp.54-62, 2011.

M. D. Iglesias-rodriguez, E. T. Buitenhuis, J. A. Raven, O. Schofield, A. J. Poultan et al., Phytoplankton Calcification, vol.2

, Science, vol.322, 1466.

C. A. Klausmeier, E. Litchman, T. Daufresne, and S. A. Levin, Phytoplankton stoichiometry, vol.23, pp.479-485, 2008.
URL : https://hal.archives-ouvertes.fr/hal-00297833

F. Koroleff, Determination of total phosphorus, 1999.

S. A. Krug, K. G. Schulz, and U. Riebesell, Effects of changes in carbonate chemistry speciation on Coccolithus braarudii: a discussion of coccolithophorid sensitivities, Biogeosciences, vol.8, pp.771-777, 2011.

G. Langer, M. Geisen, K. Baumann, J. Kläs, U. Riebesell et al., Species-specific responses of calcifying algae to changing seawater carbonate chemistry, vol.7, p.9006, 2006.

G. Langer, G. Nehrke, I. Probert, J. Ly, and P. Ziveri, Strain-specific responses of Emiliania huxleyi to changing seawater carbonate chemistry, Biogeosciences, vol.6, pp.2637-2646, 2009.

N. Leonardos and R. J. Geider, Elevated atmospheric carbon dioxide increases organic carbon fixation by Emiliania huxleyi (Haptophyta), under nutrient-limited high-light conditions, J. Phycol, vol.41, pp.1196-1203, 2005.

G. Malara and A. Sciandra, A multiparameter phytoplanktonic culture system driven by microcomputer, J. Appl. Phycol, vol.3, pp.235-241, 1991.

I. Marinov, S. C. Doney, and I. D. Lima, Response of ocean phytoplankton community structure to climate change over the 21st century: partitioning the effects of nutrients, temperature and light, Biogeosciences, vol.7, pp.3941-3959, 2010.

C. M. Moore, M. M. Mills, R. Langlois, A. Milne, E. P. Achterberg et al., Relative influence of nitrogen and phosphorus availability on phytoplankton physiology and productivity in the oligotrophic sub-tropical North Atlantic Ocean, Limnol. Oceanogr, vol.53, pp.291-305, 2008.

M. N. Müller, A. N. Antia, and J. Laroche, Influence of cell cycle phase on calcification in the coccolithophore Emiliania huxleyi, Limnol. Oceanogr, vol.53, pp.506-512, 2008.

M. N. Müller, K. G. Schulz, and U. Riebesell, Effects of long-term high CO 2 exposure on two species of coccolithophores, Biogeosciences, vol.7, pp.1109-1116, 2010.

E. Paasche, Roles of nitrogen and phosphorus in coccolith formation in Emiliania huxleyi (Prymnesiophyceae), Eur. J. Phycol, vol.33, pp.33-42, 1998.

E. Paasche, Reduced coccolith calcite production under lightlimited growth: a comparative study of three clones of Emiliania huxleyi (Prymnesiophyceae), Phycol, vol.38, pp.508-516, 1999.

E. Paasche, A review of the coccolithophorid Emiliania huxleyi (Prymnesiophyceae), with particular reference to growth, coccolith formation, and calcification-photosynthesis interactions, Phycol, vol.40, pp.503-529, 2002.

K. G. Porter and Y. S. Feig, The use of DAPI for identifying and counting aquatic microflora, Limnol. Oceanogr, vol.25, pp.943-948, 1980.

A. J. Poulton, J. R. Young, N. R. Bates, and W. M. Balch, Biometry of detached Emiliania huxleyi coccoliths along the Patagonian Shelf, Mar. Ecol. Prog. Ser, vol.443, pp.1-17, 2011.

A. Ridgwell, D. N. Schmidt, C. Turley, C. Brownlee, M. T. Maldonado et al., From laboratory manipulations to Earth system models: scaling calcification impacts of ocean acidification, Biogeosciences, vol.6, pp.2611-2623, 2009.

U. Riebesell and P. D. Tortell, Effects of ocean acidification on pelagic organisms and ecosystems, 2011.

U. Riebesell, I. Zondervan, B. Rost, P. D. Tortell, R. E. Zeebe et al., Reduced calcification of marine plankton in response to increased atmospheric CO 2, Nature, vol.407, pp.364-367, 2000.

U. Riebesell, R. G. Bellerby, A. Engel, V. J. Fabry, T. B. Reusch et al., Phytoplankton Calcification in a High CO 2 World, vol.322, 1466.

R. Riegmann, A. Noordeloos, C. , and G. , Phaeocystis blooms and eutrophication of the continental coastal zones of the North Sea, Mar. Biol, vol.112, pp.479-484, 1992.

R. Riegmann, W. Stolte, A. Noordeloos, and D. Slezak, Nutrient uptake and alkaline phosphatase (EC 3:1:3:1) activity of Emiliania huxleyi (Prymnesiophyceae), J. Phycol, vol.36, pp.87-96, 2000.

R. Roy, L. Roy, K. Vogel, C. Porter-moore, T. Pearson et al., The dissociation constants of carbonic acid in seawater at salinities 5 to 45 and temperatures 0 to 45 ? C, Mar. Chem, vol.44, pp.249-267, 1993.

K. G. Schulz, U. Riebesell, R. G. Bellerby, H. Biswas, M. Meyerhöfer et al., Build-up and decline of organic matter during PeECE III, Biogeosciences, vol.5, pp.707-718, 2008.
URL : https://hal.archives-ouvertes.fr/hal-00297950

A. Sciandra, J. Harlay, D. Lefèvre, R. Lemée, P. Rimmelin et al., Response of coccolithophorid Emiliania huxleyi to elevated partial pressure of CO 2 under nitrogen limitation, Mar. Ecol. Prog. Ser, vol.261, pp.111-122, 2003.
URL : https://hal.archives-ouvertes.fr/hal-01893858

D. Shi, Y. Xu, and F. M. Morel, Effects of the pH/pCO 2 control method on medium chemistry and phytoplankton growth, Biogeosciences, vol.6, pp.1199-1207, 2009.

M. Triantaphylloua, M. Dimizaa, E. Krasakopouloub, E. Malinvernoc, V. Lianoua et al., Seasonal variation in Emiliania huxleyi coccolith morphology and calcification in the Aegean Sea, Geobios, vol.43, pp.99-110, 2010.

J. R. Young and P. Ziveri, Calculation of coccolith volume and its use in calibration of carbonate flux estimates, Deep Sea Res. II, vol.47, pp.1679-1700, 2000.

I. Zondervan, B. Rost, and U. Riebesell, Effect of CO 2 concentration on the PIC/POC ratio in the coccolithophore Emiliania huxleyi grown under light-limiting conditions and different daylengths, J. Exp. Marine Biol. Ecol, vol.272, pp.55-70, 2002.