Capelli, B., & Cysewski, G. R. (2010). Potential health benefits of spirulina microalgae.
Nutrafoods, 9(2), 19–26.
Cheung, R. C. F., Ng, T. B., & Wong, J. H. (2015). Marine peptides: Bioactivities and
applications. Marine Drugs, 13(7), 4006–4043.
Costa, J. A. V., & De Morais, M. G. (2011). The role of biochemical engineering in the production
of biofuels from microalgae. Bioresource Technology, 102(1), 2–9.
Doan, T. T. Y., Sivaloganathan, B., & Obbard, J. P. (2011). Screening of marine microalgae for
biodiesel feedstock. Biomass and Bioenergy, 35(7), 2534–2544.
Dunahay, T. G., Jarvis, E. E., Dais, S. S., & Roessler, P. G. (1996). Manipulation of microalgae lipid
production using genetic engineering. Applied Biochemistry and Biotechnology, 57(1), 223.
Fish, S. A., & Codd, G. (1994). Bioactive compound production by thermophilic and
thermotolerant cyanobacteria (blue-green algae). World Journal of Microbiology and
Biotechnology, 10(3), 338–341.
Gerwick, W. H., Roberts, M. A., Proteau, P. J., & Chen, J.-L. (1994). Screening cultured marine
microalgae for anticancer-type activity. Journal of Applied Phycology, 6(2), 143–149.
Hong, S. J., & Lee, C. G. (2015). Microalgal systems biology through genome-scale metabolic
reconstructions for industrial applications. In S. K. Kim (Ed.), Handbook of marine
microalgae: Biotechnology advances (pp. 353–370). Oxford, UK: AP.
Hoseini, S., Khosravi-Darani, K., & Mozafari, M. (2013). Nutritional and medical applications of
spirulina microalgae. Mini Reviews in Medicinal Chemistry, 13(8), 1231–1237.
Kang, K. H., Qian, Z. J., Ryu, B., Karadeniz, F., Kim, D., & Kim, S. K. (2012). Antioxidant
peptides from protein hydrolysate of microalgae Navicula incerta and their protective effects in
HepG2/CYP2E1 cells induced by ethanol. Phytotherapy Research, 26(10), 1555–1563.
Kao, C.-Y., Chiu, S.-Y., Huang, T.-T., Dai, L., Hsu, L.-K., & Lin, C.-S. (2012). Ability of a
mutant strain of the microalgae Chlorella sp. to capture carbon dioxide for biogas upgrading.
Applied Energy, 93, 176–183.
Kellam, S. J., & Walker, J. M. (1989). Antibacterial activity from marine microalgae in laboratory
culture. British Phycological Journal, 24(2), 191–194.
Kumar, M. S., Miao, Z. H., & Wyatt, S. K. (2010). Influence of nutrient loads, feeding frequency
and inoculum source on growth of Chlorella vulgaris in digested piggery effluent culture
medium. Bioresource Technology, 101(15), 6012–6018.
Kumazawa, S. (1991). Screening, cultivation of marine microalgae, In S. Miyachi, N. Saga, &
T. Matsunaga (Eds.), Labo-manual marine biotechnology (pp. 18–28). Tokyo, Japan: Shokabo
Publishing Co.
Larkum, A. W., Ross, I. L., Kruse, O., & Hankamer, B. (2012). Selection, breeding and
engineering of microalgae for bioenergy and biofuel production. Trends in Biotechnology,
30(4), 198–205.
Lee, Y.-K. (1997). Commercial production of microalgae in the Asia-Pacific rim. Journal of
Applied Phycology, 9(5), 403–411.
Liu, J., & Hu, Q. (2013). Chlorella: Industrial production of cell mass and chemicals. In Handbook
of microalgae culture: Applied phycology and biotechnology (pp. 327–338).
Maruyama, I., & Ando, Y. (1992). Mass culturing microalgae: Chlorella. In K. Yamaguchi (Ed.),
Utilization of microalgae (pp. 18–30). Yokyo, Japan: Kouseisha Kouseikaku Publishing Co.
Matsunaga, T. (1992). Development of biotechnology, In K. Yamaguchi (Ed.), Utilization of
microalgae (pp. 81–101). Tokyo, Japan: Kouseisha Kouseikaku Publishing Co.
Matsunaga, T., Takeyama, H., Sudo, H., Oyama, N., Ariura, S., Takano, H., et al. (1991).
Glutamate production from CO 2 by Marine Cyanobacterium Synechococcus sp. Applied
Biochemistry and Biotechnology, 28(1), 157.
Matsunaga, T., Takeyama, H., Nakao, T., & Yamazawa, A. (1999). Screening of marine
microalgae for bioremediation of cadmium-polluted seawater. Journal of Biotechnology,
70(1–3), 33–38.
Michalak, I., & Chojnacka, K. (2015). Algae as production systems of bioactive compounds.
Engineering in Life Sciences, 15(2), 160–176.
226
7 Microalgae, a Biological Resource for the Future
Nutrafoods, 9(2), 19–26.
Cheung, R. C. F., Ng, T. B., & Wong, J. H. (2015). Marine peptides: Bioactivities and
applications. Marine Drugs, 13(7), 4006–4043.
Costa, J. A. V., & De Morais, M. G. (2011). The role of biochemical engineering in the production
of biofuels from microalgae. Bioresource Technology, 102(1), 2–9.
Doan, T. T. Y., Sivaloganathan, B., & Obbard, J. P. (2011). Screening of marine microalgae for
biodiesel feedstock. Biomass and Bioenergy, 35(7), 2534–2544.
Dunahay, T. G., Jarvis, E. E., Dais, S. S., & Roessler, P. G. (1996). Manipulation of microalgae lipid
production using genetic engineering. Applied Biochemistry and Biotechnology, 57(1), 223.
Fish, S. A., & Codd, G. (1994). Bioactive compound production by thermophilic and
thermotolerant cyanobacteria (blue-green algae). World Journal of Microbiology and
Biotechnology, 10(3), 338–341.
Gerwick, W. H., Roberts, M. A., Proteau, P. J., & Chen, J.-L. (1994). Screening cultured marine
microalgae for anticancer-type activity. Journal of Applied Phycology, 6(2), 143–149.
Hong, S. J., & Lee, C. G. (2015). Microalgal systems biology through genome-scale metabolic
reconstructions for industrial applications. In S. K. Kim (Ed.), Handbook of marine
microalgae: Biotechnology advances (pp. 353–370). Oxford, UK: AP.
Hoseini, S., Khosravi-Darani, K., & Mozafari, M. (2013). Nutritional and medical applications of
spirulina microalgae. Mini Reviews in Medicinal Chemistry, 13(8), 1231–1237.
Kang, K. H., Qian, Z. J., Ryu, B., Karadeniz, F., Kim, D., & Kim, S. K. (2012). Antioxidant
peptides from protein hydrolysate of microalgae Navicula incerta and their protective effects in
HepG2/CYP2E1 cells induced by ethanol. Phytotherapy Research, 26(10), 1555–1563.
Kao, C.-Y., Chiu, S.-Y., Huang, T.-T., Dai, L., Hsu, L.-K., & Lin, C.-S. (2012). Ability of a
mutant strain of the microalgae Chlorella sp. to capture carbon dioxide for biogas upgrading.
Applied Energy, 93, 176–183.
Kellam, S. J., & Walker, J. M. (1989). Antibacterial activity from marine microalgae in laboratory
culture. British Phycological Journal, 24(2), 191–194.
Kumar, M. S., Miao, Z. H., & Wyatt, S. K. (2010). Influence of nutrient loads, feeding frequency
and inoculum source on growth of Chlorella vulgaris in digested piggery effluent culture
medium. Bioresource Technology, 101(15), 6012–6018.
Kumazawa, S. (1991). Screening, cultivation of marine microalgae, In S. Miyachi, N. Saga, &
T. Matsunaga (Eds.), Labo-manual marine biotechnology (pp. 18–28). Tokyo, Japan: Shokabo
Publishing Co.
Larkum, A. W., Ross, I. L., Kruse, O., & Hankamer, B. (2012). Selection, breeding and
engineering of microalgae for bioenergy and biofuel production. Trends in Biotechnology,
30(4), 198–205.
Lee, Y.-K. (1997). Commercial production of microalgae in the Asia-Pacific rim. Journal of
Applied Phycology, 9(5), 403–411.
Liu, J., & Hu, Q. (2013). Chlorella: Industrial production of cell mass and chemicals. In Handbook
of microalgae culture: Applied phycology and biotechnology (pp. 327–338).
Maruyama, I., & Ando, Y. (1992). Mass culturing microalgae: Chlorella. In K. Yamaguchi (Ed.),
Utilization of microalgae (pp. 18–30). Yokyo, Japan: Kouseisha Kouseikaku Publishing Co.
Matsunaga, T. (1992). Development of biotechnology, In K. Yamaguchi (Ed.), Utilization of
microalgae (pp. 81–101). Tokyo, Japan: Kouseisha Kouseikaku Publishing Co.
Matsunaga, T., Takeyama, H., Sudo, H., Oyama, N., Ariura, S., Takano, H., et al. (1991).
Glutamate production from CO 2 by Marine Cyanobacterium Synechococcus sp. Applied
Biochemistry and Biotechnology, 28(1), 157.
Matsunaga, T., Takeyama, H., Nakao, T., & Yamazawa, A. (1999). Screening of marine
microalgae for bioremediation of cadmium-polluted seawater. Journal of Biotechnology,
70(1–3), 33–38.
Michalak, I., & Chojnacka, K. (2015). Algae as production systems of bioactive compounds.
Engineering in Life Sciences, 15(2), 160–176.
226
7 Microalgae, a Biological Resource for the Future
