5 Carotenoid Overproduction in Microalgae: Biochemical …
117
Gu, W., Xie, X., Gao, S., Zhou, W., Pan, G., & Wang, G. (2013). Comparison of different cells of
Haematococcus pluvialis reveals an extensive acclimation mechanism during its agin process:
From a perspective of photosynthesis. PlosOne, 8, e67028.
Gu, W. H., Li, H., Zhao, P. P., Yu, R. X., Pan, G. H., Gao, S., Xie, X. J., et al. (2014). Quantitative
proteomic analysis of thylakoid from two microalgae (Haematococcus pluvialis and Dunaliella
salina) reveals two different high light-responsive strategies. Scientific Reports, 4.
Guedes, A. C., Amaro, H. M., & Malcata, F. X. (2011). Microalgae as sources of carotenoids.
Marine Drugs, 9, 625–644.
Guiheneuf, F., & Stengel, D. B. (2015). Towards the biorefinery concept: Interaction of light, temperature and nitrogen for optimizing the co-production of high-value compounds in Porphyridium
purpureum. Algal Research-Biomass Biofuels and Bioproducts, 10, 152–163.
Guiry, M. D. (2012). How many species of algae are there? Journal of Phycology, 48, 1057–1063.
Gwak, Y., Hwang, Y. S., Wang, B. B., Kim, M., Jeong, J., Lee, C. G., et al. (2014). Comparative
analyses of lipidomes and transcriptomes reveal a concerted action of multiple defensive systems
against photooxidative stress in Haematococcus pluvialis. Journal of Experimental Botany, 65,
4317–4334.
Hagen, C., Grünewald, K., Schmidt, S., & Müller, J. (2000). Accumulation of secondary carotenoids
in flagellates of Haematococcus pluvialis (Chlorophyta) is accompanied by an increase in per
unit chlorophyll productivity of photosynthesis. European Journal of Phycology, 35, 75–82.
Han, D., Li, Y., & Hu, Q. (2013). Astaxanthin in microalgae: Pathways, functions and biotechnological implications. ALGAE, 28, 131–147.
Harker, M., & Hirschberg, J. (1997). Biosynthesis of ketocarotenoids in transgenic cyanobacteria
expression the algal gene for β-C-4-oxygenase, crtO. FEBS Letters, 404, 129–134.
Haugan, J. A., & Liaaen Jensen, S. (1994). Isolation and characterisation of four allelic (6’S)-isomers
of fucoxanthin. Tetrahedron Letters, 35, 2245–2248.
He, P., Duncan, J., & Barber, J. (2007). Astaxanthin accumulation in the green alga Haematococcus
pluvialis: Effects of cultivation parameters. Journal of Integrative Plant Biology, 49, 447–451.
Hegemann, P. (2008). Algal sensory photoreceptors. Annual Review of Plant Biology, 59, 167–89.
Hemilä, H. 2018. Effect of β-carotene supplementation on the risk of pneumonia is heterogeneous in
males: Effect modification by cigarette smoking. Journal of Nutritional Science and Vitaminology,
64, 374–378.
Heydarizadeh, P., Poirier, I., Loizeau, D., Ulmann, L., Mimouni, V., Schoefs, B., et al. (2013).
Plastids of marine phytoplankton produce bioactive pigments and lipids. Marine Drugs, 11,
3425–3471.
Heydarizadeh, P., Boureba, W., Zahedi, M., Huang, B., Moreau, B., Lukomska, E., et al. (2017).
Response of CO 2 -starved diatom Phaeodactylum tricornutum to light intensity transition.
Philosophical Transactions of the Royal Society B: Biological Sciences, 372, 20160396.
Heydarizadeh, P., Veidl, B., Huang, B., Lukomska, E., Wielgosz-Collin, G., Couzinet-Mossion, A.,
et al. (2019). Carbon orientation in the diatom Phaeodactylum tricornutum: The effects of carbon
limitation and photon flux density. Frontiers in Plant Science, 10, 471.
Higuera-Ciapara, I., Félix-Valenzuela, L., & Goycoolea, F. M. (2006). Astaxanthin: A review of its
chemistry and applications. Critical Reviews in Food Science and Nutrition, 46, 185–196.
Hong, M.-E., Hwang, S. K., Chang, W. S., Kim, B. W., Lee, J., & Sim, S. J. (2015). Enhanced
autotrophic astaxanthin production from Haematococcus pluvialis under high temperature via
heat stress-driven Haber-Weiss reaction. Applied Microbiology and Biotechnology, 99, 5203–
5215.
Hsueh, H. T., Chu, H., & Yu, S. T. (2007). A batch study on the bio-fixation of carbon dioxide in the
absorbed solution from a chemical wet scrubber by hot spring and marine algae. Chemosphere,
66, 878–886.
Hu, C., Cui, D., Sun, X., Shi, J., Song, L., Li, Y., et al. (2019). Transcriptomic analysis unveils
survival strategies of autotrophic Haematococcus pluvialis against high light stress. Aquaculture,
513, 734430.
117
Gu, W., Xie, X., Gao, S., Zhou, W., Pan, G., & Wang, G. (2013). Comparison of different cells of
Haematococcus pluvialis reveals an extensive acclimation mechanism during its agin process:
From a perspective of photosynthesis. PlosOne, 8, e67028.
Gu, W. H., Li, H., Zhao, P. P., Yu, R. X., Pan, G. H., Gao, S., Xie, X. J., et al. (2014). Quantitative
proteomic analysis of thylakoid from two microalgae (Haematococcus pluvialis and Dunaliella
salina) reveals two different high light-responsive strategies. Scientific Reports, 4.
Guedes, A. C., Amaro, H. M., & Malcata, F. X. (2011). Microalgae as sources of carotenoids.
Marine Drugs, 9, 625–644.
Guiheneuf, F., & Stengel, D. B. (2015). Towards the biorefinery concept: Interaction of light, temperature and nitrogen for optimizing the co-production of high-value compounds in Porphyridium
purpureum. Algal Research-Biomass Biofuels and Bioproducts, 10, 152–163.
Guiry, M. D. (2012). How many species of algae are there? Journal of Phycology, 48, 1057–1063.
Gwak, Y., Hwang, Y. S., Wang, B. B., Kim, M., Jeong, J., Lee, C. G., et al. (2014). Comparative
analyses of lipidomes and transcriptomes reveal a concerted action of multiple defensive systems
against photooxidative stress in Haematococcus pluvialis. Journal of Experimental Botany, 65,
4317–4334.
Hagen, C., Grünewald, K., Schmidt, S., & Müller, J. (2000). Accumulation of secondary carotenoids
in flagellates of Haematococcus pluvialis (Chlorophyta) is accompanied by an increase in per
unit chlorophyll productivity of photosynthesis. European Journal of Phycology, 35, 75–82.
Han, D., Li, Y., & Hu, Q. (2013). Astaxanthin in microalgae: Pathways, functions and biotechnological implications. ALGAE, 28, 131–147.
Harker, M., & Hirschberg, J. (1997). Biosynthesis of ketocarotenoids in transgenic cyanobacteria
expression the algal gene for β-C-4-oxygenase, crtO. FEBS Letters, 404, 129–134.
Haugan, J. A., & Liaaen Jensen, S. (1994). Isolation and characterisation of four allelic (6’S)-isomers
of fucoxanthin. Tetrahedron Letters, 35, 2245–2248.
He, P., Duncan, J., & Barber, J. (2007). Astaxanthin accumulation in the green alga Haematococcus
pluvialis: Effects of cultivation parameters. Journal of Integrative Plant Biology, 49, 447–451.
Hegemann, P. (2008). Algal sensory photoreceptors. Annual Review of Plant Biology, 59, 167–89.
Hemilä, H. 2018. Effect of β-carotene supplementation on the risk of pneumonia is heterogeneous in
males: Effect modification by cigarette smoking. Journal of Nutritional Science and Vitaminology,
64, 374–378.
Heydarizadeh, P., Poirier, I., Loizeau, D., Ulmann, L., Mimouni, V., Schoefs, B., et al. (2013).
Plastids of marine phytoplankton produce bioactive pigments and lipids. Marine Drugs, 11,
3425–3471.
Heydarizadeh, P., Boureba, W., Zahedi, M., Huang, B., Moreau, B., Lukomska, E., et al. (2017).
Response of CO 2 -starved diatom Phaeodactylum tricornutum to light intensity transition.
Philosophical Transactions of the Royal Society B: Biological Sciences, 372, 20160396.
Heydarizadeh, P., Veidl, B., Huang, B., Lukomska, E., Wielgosz-Collin, G., Couzinet-Mossion, A.,
et al. (2019). Carbon orientation in the diatom Phaeodactylum tricornutum: The effects of carbon
limitation and photon flux density. Frontiers in Plant Science, 10, 471.
Higuera-Ciapara, I., Félix-Valenzuela, L., & Goycoolea, F. M. (2006). Astaxanthin: A review of its
chemistry and applications. Critical Reviews in Food Science and Nutrition, 46, 185–196.
Hong, M.-E., Hwang, S. K., Chang, W. S., Kim, B. W., Lee, J., & Sim, S. J. (2015). Enhanced
autotrophic astaxanthin production from Haematococcus pluvialis under high temperature via
heat stress-driven Haber-Weiss reaction. Applied Microbiology and Biotechnology, 99, 5203–
5215.
Hsueh, H. T., Chu, H., & Yu, S. T. (2007). A batch study on the bio-fixation of carbon dioxide in the
absorbed solution from a chemical wet scrubber by hot spring and marine algae. Chemosphere,
66, 878–886.
Hu, C., Cui, D., Sun, X., Shi, J., Song, L., Li, Y., et al. (2019). Transcriptomic analysis unveils
survival strategies of autotrophic Haematococcus pluvialis against high light stress. Aquaculture,
513, 734430.
