264
M. M. Maroneze et al.
Siqueira, S. F., Queiroz, M. I., Zepka, L. Q., & Jacob-Lopes, E. (2018). Introductory chapter:
Microalgae biotechnology. A brief introduction. In E. Jacob-Lopes, L. Q. Zepka, & M. I. Queiroz
(Eds.), Microalgal biotechnology (p. 1).
Solovchenko, A., & Chekanov, K. (2014). Production of carotenoids using microalgae cultivated
in photobioreactors. In K. Y. Paek, H. N. Murthy, & J. J. Zhong (Eds.), Production of biomass
and bioactive compounds using bioreactor technology (pp. 63–91).
Soni, R. A., Sudhakar, K., & Rana, R. S. (2017). Spirulina-from growth to nutritional product: A
review. Trends in Food Science & Technology, 69, 157–171.
Stanic-Vucinic, D., Minic, S., Nikolic, M. R., & Velickovic, T. C. (2018). Spirulina phycobiliproteins
as food components and complements. In E. Jacob-Lopes, L. Queiroz Zepka, & M. I. Queiroz
(Eds.), Microalgal biotechnology (pp. 129–149).
Sui, Y., & Vlaeminck, S. E. (2020). Dunaliella microalgae for nutritional protein: An undervalued
asset. Trends in Biotechnology, 38, 10–12.
Tamiya, H., Hase, E., Shibata, K., Mituya, A., Iwamura, T., Nihei, T., et al. (1953). Kinetics of
growth of Chlorella, with special reference to its dependence on quantity of available light and on
temperature. In J. S. Burlew (Ed.), Algal Culture from Laboratory to Pilot Plant (pp. 204–232).
Washington DC: Carnegie Institution of Washington.
Torzillo, G., & Chini Zittelli, G. (2015). Tubular photobioreactors. In A. Prokop, R. K. Bajpai, &
M. E. Zappi (Eds.), Algal biorefineries volume 2: Products and refinery design (pp. 187–212).
Tredici, M. R., & Zittelli, G. C. (1998). Efficiency of sunlight utilization: Tubular versus flat
photobioreactors. Biotechnology and Bioengineering, 57, 187–197.
Trediti, M. R. (2004). Mass production of microalgae: Photobioreactors. In A. Richmond (Ed.),
Handbook of microalgal culture: Biotechnology and applied phycology (pp. 178–214).
Ugwu, C. U., Aoyagi, H., & Uchiyama, H. (2008). Photobioreactors for mass cultivation of algae.
Bioresource Technology, 99, 4021–4028.
Ugwu, C. U., Ogbonna, J. C., & Tanaka, H. (2002). Improvement of mass transfer characteristics
and productivities of inclined tubular photobioreactors by installation of internal static mixers.
Applied Microbiology and Biotechnology, 58, 600–607.
Varela, J., Pereira, H., Vila, M., & León, R. (2016). Production of carotenoids by microalgae:
Achievements and challenges. Photosynthesis Research, 127(2), 285–286.
Vernès, L., Granvillain, P., Chemat, F., & Vian, M. (2015). Phycocyanin from Arthrospira platensis.
Production, extraction and analysis. Current Biotechnology, 4, 1–11.
Von Alvensleben, N., & Heimann, K. (2018). The potential of microalgae for biotechnology: A focus
on carotenoids. Blue Biotechnology: Production and Use of Marine Molecules, 1, 117–142.
Watanabe, Y., & Hall, D. O. (1996). Photosynthetic production of the filamentous cyanobacterium
Spirulina platensis in a cone-shaped helical tubular photobioreactor. Applied Microbiology and
Biotechnology, 44, 693–698.
Ye, Z. W., Jiang, J. G., & Wu, G. H. (2008). Biosynthesis and regulation of carotenoids in Dunaliella:
Progresses and prospects. Biotechnology Advances, 26(4), 352–360.
Yen, H. -W., Hu, I. -C., Chen, C. -Y., Nagarajan, D., & Chang, J. -S. (2019). Design of
photobioreactors for algal cultivation. In A. Pandey (Ed.), Biofuels from Algae (pp. 225–256).
Yuan, J.-P., Peng, J., Yin, K., & Wang, J.-H. (2011). Potential health-promoting effects of astaxanthin: A high-value carotenoid mostly from microalgae. Molecular Nutrition & Food Research,
55(1), 150–165.
Zhou, W., Lu, Q., Han, P., & Li, J. (2020). Microalgae cultivation and photobioreactor design.
Microalgae Cultivation for Biofuels Production, 31–50. http://doi.org/10.1016/b978-0-12-817
536-1.00003-5.
Zitelli, G. C., Rodolfi, L., Bassi, N., Biondi, N., & Tredici, M. R. (2013). Photobioreactors for
biofuel production. In M. A. Borowitzka & N. R. Moheimani (Eds.), Algae for biofuels and
energy (pp. 115–131).
M. M. Maroneze et al.
Siqueira, S. F., Queiroz, M. I., Zepka, L. Q., & Jacob-Lopes, E. (2018). Introductory chapter:
Microalgae biotechnology. A brief introduction. In E. Jacob-Lopes, L. Q. Zepka, & M. I. Queiroz
(Eds.), Microalgal biotechnology (p. 1).
Solovchenko, A., & Chekanov, K. (2014). Production of carotenoids using microalgae cultivated
in photobioreactors. In K. Y. Paek, H. N. Murthy, & J. J. Zhong (Eds.), Production of biomass
and bioactive compounds using bioreactor technology (pp. 63–91).
Soni, R. A., Sudhakar, K., & Rana, R. S. (2017). Spirulina-from growth to nutritional product: A
review. Trends in Food Science & Technology, 69, 157–171.
Stanic-Vucinic, D., Minic, S., Nikolic, M. R., & Velickovic, T. C. (2018). Spirulina phycobiliproteins
as food components and complements. In E. Jacob-Lopes, L. Queiroz Zepka, & M. I. Queiroz
(Eds.), Microalgal biotechnology (pp. 129–149).
Sui, Y., & Vlaeminck, S. E. (2020). Dunaliella microalgae for nutritional protein: An undervalued
asset. Trends in Biotechnology, 38, 10–12.
Tamiya, H., Hase, E., Shibata, K., Mituya, A., Iwamura, T., Nihei, T., et al. (1953). Kinetics of
growth of Chlorella, with special reference to its dependence on quantity of available light and on
temperature. In J. S. Burlew (Ed.), Algal Culture from Laboratory to Pilot Plant (pp. 204–232).
Washington DC: Carnegie Institution of Washington.
Torzillo, G., & Chini Zittelli, G. (2015). Tubular photobioreactors. In A. Prokop, R. K. Bajpai, &
M. E. Zappi (Eds.), Algal biorefineries volume 2: Products and refinery design (pp. 187–212).
Tredici, M. R., & Zittelli, G. C. (1998). Efficiency of sunlight utilization: Tubular versus flat
photobioreactors. Biotechnology and Bioengineering, 57, 187–197.
Trediti, M. R. (2004). Mass production of microalgae: Photobioreactors. In A. Richmond (Ed.),
Handbook of microalgal culture: Biotechnology and applied phycology (pp. 178–214).
Ugwu, C. U., Aoyagi, H., & Uchiyama, H. (2008). Photobioreactors for mass cultivation of algae.
Bioresource Technology, 99, 4021–4028.
Ugwu, C. U., Ogbonna, J. C., & Tanaka, H. (2002). Improvement of mass transfer characteristics
and productivities of inclined tubular photobioreactors by installation of internal static mixers.
Applied Microbiology and Biotechnology, 58, 600–607.
Varela, J., Pereira, H., Vila, M., & León, R. (2016). Production of carotenoids by microalgae:
Achievements and challenges. Photosynthesis Research, 127(2), 285–286.
Vernès, L., Granvillain, P., Chemat, F., & Vian, M. (2015). Phycocyanin from Arthrospira platensis.
Production, extraction and analysis. Current Biotechnology, 4, 1–11.
Von Alvensleben, N., & Heimann, K. (2018). The potential of microalgae for biotechnology: A focus
on carotenoids. Blue Biotechnology: Production and Use of Marine Molecules, 1, 117–142.
Watanabe, Y., & Hall, D. O. (1996). Photosynthetic production of the filamentous cyanobacterium
Spirulina platensis in a cone-shaped helical tubular photobioreactor. Applied Microbiology and
Biotechnology, 44, 693–698.
Ye, Z. W., Jiang, J. G., & Wu, G. H. (2008). Biosynthesis and regulation of carotenoids in Dunaliella:
Progresses and prospects. Biotechnology Advances, 26(4), 352–360.
Yen, H. -W., Hu, I. -C., Chen, C. -Y., Nagarajan, D., & Chang, J. -S. (2019). Design of
photobioreactors for algal cultivation. In A. Pandey (Ed.), Biofuels from Algae (pp. 225–256).
Yuan, J.-P., Peng, J., Yin, K., & Wang, J.-H. (2011). Potential health-promoting effects of astaxanthin: A high-value carotenoid mostly from microalgae. Molecular Nutrition & Food Research,
55(1), 150–165.
Zhou, W., Lu, Q., Han, P., & Li, J. (2020). Microalgae cultivation and photobioreactor design.
Microalgae Cultivation for Biofuels Production, 31–50. http://doi.org/10.1016/b978-0-12-817
536-1.00003-5.
Zitelli, G. C., Rodolfi, L., Bassi, N., Biondi, N., & Tredici, M. R. (2013). Photobioreactors for
biofuel production. In M. A. Borowitzka & N. R. Moheimani (Eds.), Algae for biofuels and
energy (pp. 115–131).
