Microalgal Metabolism and their Utilisation 57
Chrismadha, T. and M.A. Borowitzka. 1994. Effect of cell density and irradiance on growth, proximate composition and
eicosapentaenoic acid production of Phaeodactylum tricornutum grown in a tubular photobioreactor. J. Appl. Phycol.
6: 67–74.
Chu, W.-L., S.-M. Phang and S.-H. Goh. 1995. Influence of carbon source on growth, biochemical composition and pigmentation
of Ankistrodesmus convolutus. J. Appl. Phycol. 7: 59–64.
Cohen, Z., A. Vonshak and A. Richmond. 1988. Effect of environmental conditions on fatty acid composition of the red alga
Porphyridium cruentum: correlation to growth rate. J. Phycol. 24: 328–332.
Cohen, Z. and I. Khozin-Goldberg. 2010. Searching for polyunsaturated fatty acid-rich microalgae. pp. 201–224. In: Z. Cohen
and C. Ratledge (eds.). Single Cell Oils. Microbial and Algal Oils. AOCS Publihing, Urbana.
Cohen, Z. and C. Ratledge (eds.). 2010. Single Cell Oils. microbial and Algal Oils. AOCS Press, Urbana.
Colman, B., I.E. Huertas, S. Bhatti and J.S. Dason. 2002. The diversity of inorganic carbon acquisition mechanisms in
eukaryotic microalgae. Funct. Plant Biol. 29: 261–270.
Cysewski, G.R. and R.T. Lorenz. 2004. Industrial production of microalgal cell-mass and secondary products—species of
high potential: Haematococcus. pp. 281–288. In: A. Richmond (ed.). Microalgal Culture: Biotechnology and Applied
Phycology. Blackwell Science, Oxford.
Darley, W.M. and B.E. Volcani. 1969. Role of silicon in diatom metabolism. A silicon requirement for DNA synthesis in the
diatom Cylindrotheca fusiformis. Exp. Cell Res. 58: 334–342.
De Godos, I., V.A. Vargas, S. Blanco, M.C. Garcia Gonzalez, R. Soto, P.A. Garcia-Encina, E. Becares and R. Munoz. 2010.
A comparative evaluation of microalgae for the degradation of piggery wastewater under photosynthetic oxygenation.
Bioresour. Technol. 101: 5150–5158.
de Oliveira Dal’Molin, C.G., L.-E. Quek, R. Palfreyman and L. Nielsen. 2011. AlgaGEM—a genome-scale metabolic
reconstruction of algae based on the Chlamydomonas reinhardtii genome. BMC Genomics 12: S5.
de Swaaf, M.E., L. Sijtsma and J.T. Pronk. 2003. High-cell-density fed-batch cultivation of the docosahexaenoic acid producing
marine alga Crypthecodinium cohnii. Biotechnol. Bioeng. 81: 666–672.
Del Rio, E., F.G. Acién, M.C. García-Malena, J. Rivas, E. Molina Grima and M.G. Guerrero. 2005. Efficient one-step production
of astaxanthin by the microalga Haematococcus pluvialis in continuous culture. Biotechnol. Bioeng. 91: 808–815.
Demmig-Adams, B. and W.W. Adams. 1992. Photoprotection and other responses of plants to high light stress. Annu. Rev.
Plant Physiol. Plant Mol. Biol. 43: 599–626.
Dimier, C., F. Corato, F. Tramontano and C. Brunet. 2007. Photoprotection and xanthophyll-cycle activity in three marine
diatoms. J. Phycol. 43: 937–947.
Doucha, J. and K. Lívanský. 2012. Production of high-density Chlorella culture grown in fermenters. J. Appl. Phycol. 24: 35–43.
Droop, M.R. 1955. Carotogenesis in Haematococcus pluvialis. Nature 175: 42.
Dyhrman, S.T. 2016. Nutrients and their acquisition: Phosphorus physiology in microalgae. pp. 155–183. In: M.A. Borowitzka,
J. Beardall and J.A. Raven (eds.). The Physiology of Microalgae. Springer, Dordrecht.
Eisele, R. and W.R. Ullrich. 1977. Effect of glucose and CO 2 on nitrate uptake and coupled OH
−
flux in Ankistrodesmus
braunii. Plant Physiol. 59: 18–21.
Eixler, S., U. Karsten and U. Selig. 2006. Phosphorus storage in Chlorella vulgaris (Trebouxiophyceae, Chlorophyta) cells
and its dependence on phosphate supply. Phycologia 45: 53–60.
Eriksen, N.T. 2008. Production of phycocyanin—a pigment with applications in biology, biotechnology, foods and medicine.
Appl. Microbiol. Biotechnol. 80: 1–14.
Falkowski, P.G. 2000. Rationalising elemental ratios in unicellular algae. J. Phycol. 36: 3–6.
Falkowski, P.G. and J.A. Raven. 2007. Aquatic photosynthesis. 2nd edition. Princeton University Press, Princeton, NJ.
Fan, L., A. Vonshak, A. Zarka, and S. Boussiba. 1998. Does astaxanthin protect Haematococcus against light damage? Z.
Naturforsch. 53c: 93–100.
Fisher, M., I. Gokhman, U. Pick and A. Zamir. 1996. A salt-resistant plasma membrane carbonic anhydrase is induced by salt
in Dunaliella salina. J. Biol. Chem. 271: 17718–17723.
Fon Sing, S., A. Isdepsky, M.A. Borowitzka and N.R. Moheimani. 2013. Production of biofuels from microalgae. Mitig.
Adapt. Strat. Global Change 18: 47–72.
Gardner, R.D., K.E. Cooksey, F. Mus, R. Macur, K. Moll, E. Eustance, R.P. Carlson, R. Gerlach, M.W. Fields and B.M. Peyton.
2012. Use of sodium bicarbonate to stimulate triacylglycerol accumulation in the chlorophyte Scenedesmus sp. and the
diatom Phaeodactylum tricornutum. J. Appl. Phycol. 24: 1311–1320.
Geider, R.J. and J.L. Roche. 2002. Redfield revisited: variability of C:N:P in marine microalgae and its biochemical basis.
Eur. J. Phycol. 37: 1–17.
Giordano, M., J. Beardall and J.A. Raven. 2005. CO 2 concentrating mechanisms in algae: mechanisms, environmental
modulation, and evolution. Annu. Rev. Plant Physiol. 56: 99–131.
Gômez Pinchetti, J.L., Z. Ramazanov, A. Fontes and G. Garcia Reina. 1992. Photosynthetic characteristics of Dunaliella salina
(Chlorophyceae, Dunaliellales) in relation to ß-carotene content. J. Appl. Phycol. 4: 11–15.
González, C., J. Marciniak, S. Villaverde, P. García-Encina and R. Muñoz. 2008. Microalgae-based processes for the
biodegradation of pretreated piggery wastewaters. Appl. Microbiol. Biotechnol. 80: 891–898.
Gordillo, F.J.L., M. Goutx, F.L. Figueroa and F.X. Niell. 1998. Effect of light intensity, CO 2 and nitrogen supply on lipid class
composition of Dunaliella viridis. J. Appl. Phycol. 10: 135–144.
Chrismadha, T. and M.A. Borowitzka. 1994. Effect of cell density and irradiance on growth, proximate composition and
eicosapentaenoic acid production of Phaeodactylum tricornutum grown in a tubular photobioreactor. J. Appl. Phycol.
6: 67–74.
Chu, W.-L., S.-M. Phang and S.-H. Goh. 1995. Influence of carbon source on growth, biochemical composition and pigmentation
of Ankistrodesmus convolutus. J. Appl. Phycol. 7: 59–64.
Cohen, Z., A. Vonshak and A. Richmond. 1988. Effect of environmental conditions on fatty acid composition of the red alga
Porphyridium cruentum: correlation to growth rate. J. Phycol. 24: 328–332.
Cohen, Z. and I. Khozin-Goldberg. 2010. Searching for polyunsaturated fatty acid-rich microalgae. pp. 201–224. In: Z. Cohen
and C. Ratledge (eds.). Single Cell Oils. Microbial and Algal Oils. AOCS Publihing, Urbana.
Cohen, Z. and C. Ratledge (eds.). 2010. Single Cell Oils. microbial and Algal Oils. AOCS Press, Urbana.
Colman, B., I.E. Huertas, S. Bhatti and J.S. Dason. 2002. The diversity of inorganic carbon acquisition mechanisms in
eukaryotic microalgae. Funct. Plant Biol. 29: 261–270.
Cysewski, G.R. and R.T. Lorenz. 2004. Industrial production of microalgal cell-mass and secondary products—species of
high potential: Haematococcus. pp. 281–288. In: A. Richmond (ed.). Microalgal Culture: Biotechnology and Applied
Phycology. Blackwell Science, Oxford.
Darley, W.M. and B.E. Volcani. 1969. Role of silicon in diatom metabolism. A silicon requirement for DNA synthesis in the
diatom Cylindrotheca fusiformis. Exp. Cell Res. 58: 334–342.
De Godos, I., V.A. Vargas, S. Blanco, M.C. Garcia Gonzalez, R. Soto, P.A. Garcia-Encina, E. Becares and R. Munoz. 2010.
A comparative evaluation of microalgae for the degradation of piggery wastewater under photosynthetic oxygenation.
Bioresour. Technol. 101: 5150–5158.
de Oliveira Dal’Molin, C.G., L.-E. Quek, R. Palfreyman and L. Nielsen. 2011. AlgaGEM—a genome-scale metabolic
reconstruction of algae based on the Chlamydomonas reinhardtii genome. BMC Genomics 12: S5.
de Swaaf, M.E., L. Sijtsma and J.T. Pronk. 2003. High-cell-density fed-batch cultivation of the docosahexaenoic acid producing
marine alga Crypthecodinium cohnii. Biotechnol. Bioeng. 81: 666–672.
Del Rio, E., F.G. Acién, M.C. García-Malena, J. Rivas, E. Molina Grima and M.G. Guerrero. 2005. Efficient one-step production
of astaxanthin by the microalga Haematococcus pluvialis in continuous culture. Biotechnol. Bioeng. 91: 808–815.
Demmig-Adams, B. and W.W. Adams. 1992. Photoprotection and other responses of plants to high light stress. Annu. Rev.
Plant Physiol. Plant Mol. Biol. 43: 599–626.
Dimier, C., F. Corato, F. Tramontano and C. Brunet. 2007. Photoprotection and xanthophyll-cycle activity in three marine
diatoms. J. Phycol. 43: 937–947.
Doucha, J. and K. Lívanský. 2012. Production of high-density Chlorella culture grown in fermenters. J. Appl. Phycol. 24: 35–43.
Droop, M.R. 1955. Carotogenesis in Haematococcus pluvialis. Nature 175: 42.
Dyhrman, S.T. 2016. Nutrients and their acquisition: Phosphorus physiology in microalgae. pp. 155–183. In: M.A. Borowitzka,
J. Beardall and J.A. Raven (eds.). The Physiology of Microalgae. Springer, Dordrecht.
Eisele, R. and W.R. Ullrich. 1977. Effect of glucose and CO 2 on nitrate uptake and coupled OH
−
flux in Ankistrodesmus
braunii. Plant Physiol. 59: 18–21.
Eixler, S., U. Karsten and U. Selig. 2006. Phosphorus storage in Chlorella vulgaris (Trebouxiophyceae, Chlorophyta) cells
and its dependence on phosphate supply. Phycologia 45: 53–60.
Eriksen, N.T. 2008. Production of phycocyanin—a pigment with applications in biology, biotechnology, foods and medicine.
Appl. Microbiol. Biotechnol. 80: 1–14.
Falkowski, P.G. 2000. Rationalising elemental ratios in unicellular algae. J. Phycol. 36: 3–6.
Falkowski, P.G. and J.A. Raven. 2007. Aquatic photosynthesis. 2nd edition. Princeton University Press, Princeton, NJ.
Fan, L., A. Vonshak, A. Zarka, and S. Boussiba. 1998. Does astaxanthin protect Haematococcus against light damage? Z.
Naturforsch. 53c: 93–100.
Fisher, M., I. Gokhman, U. Pick and A. Zamir. 1996. A salt-resistant plasma membrane carbonic anhydrase is induced by salt
in Dunaliella salina. J. Biol. Chem. 271: 17718–17723.
Fon Sing, S., A. Isdepsky, M.A. Borowitzka and N.R. Moheimani. 2013. Production of biofuels from microalgae. Mitig.
Adapt. Strat. Global Change 18: 47–72.
Gardner, R.D., K.E. Cooksey, F. Mus, R. Macur, K. Moll, E. Eustance, R.P. Carlson, R. Gerlach, M.W. Fields and B.M. Peyton.
2012. Use of sodium bicarbonate to stimulate triacylglycerol accumulation in the chlorophyte Scenedesmus sp. and the
diatom Phaeodactylum tricornutum. J. Appl. Phycol. 24: 1311–1320.
Geider, R.J. and J.L. Roche. 2002. Redfield revisited: variability of C:N:P in marine microalgae and its biochemical basis.
Eur. J. Phycol. 37: 1–17.
Giordano, M., J. Beardall and J.A. Raven. 2005. CO 2 concentrating mechanisms in algae: mechanisms, environmental
modulation, and evolution. Annu. Rev. Plant Physiol. 56: 99–131.
Gômez Pinchetti, J.L., Z. Ramazanov, A. Fontes and G. Garcia Reina. 1992. Photosynthetic characteristics of Dunaliella salina
(Chlorophyceae, Dunaliellales) in relation to ß-carotene content. J. Appl. Phycol. 4: 11–15.
González, C., J. Marciniak, S. Villaverde, P. García-Encina and R. Muñoz. 2008. Microalgae-based processes for the
biodegradation of pretreated piggery wastewaters. Appl. Microbiol. Biotechnol. 80: 891–898.
Gordillo, F.J.L., M. Goutx, F.L. Figueroa and F.X. Niell. 1998. Effect of light intensity, CO 2 and nitrogen supply on lipid class
composition of Dunaliella viridis. J. Appl. Phycol. 10: 135–144.
