11 Microalgae-Based Processes for Pigments Production
261
Eriksen, N. T. (2008). Production of phycocyanin—A pigment with applications in biology,
biotechnology, foods and medicine. Applied Microbiology and Biotechnology, 80, 1–14.
Fernandes, A. S., do Nascimento, T. C., Jacob-Lopes, E., De Rosso, V. V., & Zepka, L. Q. (2018).
Carotenoids: A brief overview on its structure, biosynthesis, synthesis, and applications. Progress
in Carotenoid Research (pp. 1–15).
Fernandes, A. S., Pinheiro, P. N., Deprá, M. C., Jacob-Lopes, E., & Zepka, L. Q. (2017). Carotenoids:
Biosynthesis, properties and Physiological Effects. In H. Leif & F. Ulrik (Eds.), Carotenoids in
microalgae (pp. 19–38).
Galarza, J. I., Gimpel, J. A., Rojas, V., Arredondo-Vega, B. O., & Henríquez, V. (2018). Overaccumulation of astaxanthin in Haematococcus pluvialis through chloroplast genetic engineering.
Algal Research, 31, 291–297.
Gao, Z., Meng, C., Chen, Y. C., Ahmed, F., Mangott, A., Schenk, P. M., et al. (2015). Comparison
of astaxanthin accumulation and biosynthesis gene expression of three Haematococcus pluvialis
strains upon salinity stress. Journal of Applied Phycology, 27(5), 1853–1860.
García-González, M., Moreno, J., Canavate, J., Anguis, V., Prieto, A., Manzano, C., et al. (2003).
Conditions for open-air outdoor culture of Dunaliella salina in southern Spain. Journal of Applied
Phycology, 15, 177–184.
García-López, D. A., Olguín, E. J., González-Portela, R. E., Sánchez-Galván, G., De Philippis,
R., Lovitt, R. W., et al. (2020). A novel two-phase bioprocess for the production of Arthrospira
(Spirulina) maxima LJGR1 at pilot plant scale during different seasons and for phycocyanin
induction under controlled conditions. Bioresource Technology, 298, 122548.
Gong, M., & Bassi, A. (2016). Carotenoids from microalgae: A review of recent developments.
Biotechnology Advances, 34, 1396–1412.
Gudin, C., & Chaumont, D. (1983). Solar biotechnology study and development of tubular solar
receptors for controlled production of photosynthetic cellular biomass. In W. Palz & D. Pirrwitz
(Eds.), Proceedings of the Workshop and E.C. Contractor’s Meeting in Capri. D. Reidel Publishing
Co. (pp. 184–193).
Han, D., Li, Y., & Hu, Q. (2013). Astaxanthin in microalgae: pathways, functions and biotechnological implications. Algae, 28, 131–147.
Henríquez, V., Escobar, C., Galarza, J., & Gimpel, J. (2016). Carotenoids in microalgae. SubCellular
Biochemistry, 79, 219–237.
Holdmann, C., Schmid-Staiger, U., & Hirth, T. (2019). Outdoor microalgae cultivation at different
biomass concentrations—Assessment of different daily and seasonal light scenarios by modeling.
Algal Research, 38, 101405–101414.
Hu, I. C. (2019). Production of potential coproducts from microalgae. In A. Pandey, J. -C. Chang,
C. R. Soccol, D. -J. Lee, & Y. Chisti (Eds.), Biofuels from Algae (2nd ed, pp. 345–358).
Huang, J. J., Lin, S., Xu, W., & Cheung, P. C. K. (2017). Occurrence and biosynthesis of carotenoids
in phytoplankton. Biotechnology Advances, 35, 597–618.
Inhoffen, H. H., Pommer, H., & Bohlmann, F. (1950). Synthesen in der Carotinoid-Reihe, XIV.
Aufbau des β-Carotins. Liebigs Ann Chem, 569, 237–246.
Jacob-Lopes, E., Maroneze, M. M., Deprá, M. C., Sartori, R. B., Dias, R. R., & Zepka, L. Q. (2019).
Bioactive food compounds from microalgae: An innovative framework on industrial biorefineries.
Current Opinion in Food Science, 25, 1–7.
Jayappriyan, K. R., Rajkumar, R., Venkatakrishnan, V., Nagaraj, S., & Rengasamy, R. (2013). In
vitro anticancer activity of natural β-carotene from Dunaliella salina EU5891199 in PC-3 cells.
Biomedicine & Preventive Nutrition, 3, 99–105.
Kang, C. D., Lee, J. S., Park, T. H., & Sim, S. J. (2005). Comparison of heterotrophic and photoautotrophic induction on astaxanthin production by Haematococcus pluvialis. Applied Microbiology
and Biotechnology, 68, 237–241.
Karrer, P., & Eugster, C. H. (1950). Synthesis of carotenoids. Helvetica Chimica Acta, 33, 1172–
1174.
261
Eriksen, N. T. (2008). Production of phycocyanin—A pigment with applications in biology,
biotechnology, foods and medicine. Applied Microbiology and Biotechnology, 80, 1–14.
Fernandes, A. S., do Nascimento, T. C., Jacob-Lopes, E., De Rosso, V. V., & Zepka, L. Q. (2018).
Carotenoids: A brief overview on its structure, biosynthesis, synthesis, and applications. Progress
in Carotenoid Research (pp. 1–15).
Fernandes, A. S., Pinheiro, P. N., Deprá, M. C., Jacob-Lopes, E., & Zepka, L. Q. (2017). Carotenoids:
Biosynthesis, properties and Physiological Effects. In H. Leif & F. Ulrik (Eds.), Carotenoids in
microalgae (pp. 19–38).
Galarza, J. I., Gimpel, J. A., Rojas, V., Arredondo-Vega, B. O., & Henríquez, V. (2018). Overaccumulation of astaxanthin in Haematococcus pluvialis through chloroplast genetic engineering.
Algal Research, 31, 291–297.
Gao, Z., Meng, C., Chen, Y. C., Ahmed, F., Mangott, A., Schenk, P. M., et al. (2015). Comparison
of astaxanthin accumulation and biosynthesis gene expression of three Haematococcus pluvialis
strains upon salinity stress. Journal of Applied Phycology, 27(5), 1853–1860.
García-González, M., Moreno, J., Canavate, J., Anguis, V., Prieto, A., Manzano, C., et al. (2003).
Conditions for open-air outdoor culture of Dunaliella salina in southern Spain. Journal of Applied
Phycology, 15, 177–184.
García-López, D. A., Olguín, E. J., González-Portela, R. E., Sánchez-Galván, G., De Philippis,
R., Lovitt, R. W., et al. (2020). A novel two-phase bioprocess for the production of Arthrospira
(Spirulina) maxima LJGR1 at pilot plant scale during different seasons and for phycocyanin
induction under controlled conditions. Bioresource Technology, 298, 122548.
Gong, M., & Bassi, A. (2016). Carotenoids from microalgae: A review of recent developments.
Biotechnology Advances, 34, 1396–1412.
Gudin, C., & Chaumont, D. (1983). Solar biotechnology study and development of tubular solar
receptors for controlled production of photosynthetic cellular biomass. In W. Palz & D. Pirrwitz
(Eds.), Proceedings of the Workshop and E.C. Contractor’s Meeting in Capri. D. Reidel Publishing
Co. (pp. 184–193).
Han, D., Li, Y., & Hu, Q. (2013). Astaxanthin in microalgae: pathways, functions and biotechnological implications. Algae, 28, 131–147.
Henríquez, V., Escobar, C., Galarza, J., & Gimpel, J. (2016). Carotenoids in microalgae. SubCellular
Biochemistry, 79, 219–237.
Holdmann, C., Schmid-Staiger, U., & Hirth, T. (2019). Outdoor microalgae cultivation at different
biomass concentrations—Assessment of different daily and seasonal light scenarios by modeling.
Algal Research, 38, 101405–101414.
Hu, I. C. (2019). Production of potential coproducts from microalgae. In A. Pandey, J. -C. Chang,
C. R. Soccol, D. -J. Lee, & Y. Chisti (Eds.), Biofuels from Algae (2nd ed, pp. 345–358).
Huang, J. J., Lin, S., Xu, W., & Cheung, P. C. K. (2017). Occurrence and biosynthesis of carotenoids
in phytoplankton. Biotechnology Advances, 35, 597–618.
Inhoffen, H. H., Pommer, H., & Bohlmann, F. (1950). Synthesen in der Carotinoid-Reihe, XIV.
Aufbau des β-Carotins. Liebigs Ann Chem, 569, 237–246.
Jacob-Lopes, E., Maroneze, M. M., Deprá, M. C., Sartori, R. B., Dias, R. R., & Zepka, L. Q. (2019).
Bioactive food compounds from microalgae: An innovative framework on industrial biorefineries.
Current Opinion in Food Science, 25, 1–7.
Jayappriyan, K. R., Rajkumar, R., Venkatakrishnan, V., Nagaraj, S., & Rengasamy, R. (2013). In
vitro anticancer activity of natural β-carotene from Dunaliella salina EU5891199 in PC-3 cells.
Biomedicine & Preventive Nutrition, 3, 99–105.
Kang, C. D., Lee, J. S., Park, T. H., & Sim, S. J. (2005). Comparison of heterotrophic and photoautotrophic induction on astaxanthin production by Haematococcus pluvialis. Applied Microbiology
and Biotechnology, 68, 237–241.
Karrer, P., & Eugster, C. H. (1950). Synthesis of carotenoids. Helvetica Chimica Acta, 33, 1172–
1174.
