114
M. Scarsini et al.
Cherdchukeattisak, P., Fraser, P., Purton, S., & Brocklehurst, T. (2018). Detection and enhancement of ketocarotenoid accumulation in the newly isolated sarcinoid green microalga Chlorosarcinopsis PY02. Biology, 7, 17.
Choi, S. K., Harada, H., Matsuda, S., & Misawa, N. (2007). Characterization of two β-carotene
ketolases, CrtO and CrtW, by complementation analysis in Escherichia coli. Applied Microbiology
and Biotechnology, 75, 1335–1341.
Christaki, E., Bonos, E., Giannenas, I., & Florou-Paneri, P. (2013). Functional properties of
carotenoids originating from algae. Journal of the Science of Food and Agriculture, 93, 5–11.
Chronopoulou, L., dal Bosco, C., di Caprio, F., Prosini, L., Gentili, A., Pagnanelli, F., et al. (2019).
Extraction of carotenoids and fat-soluble vitamins from Tetradesmus obliquus microalgae: An
optimized approach by using supercritical CO 2 . Molecules, 24, 2581.
Coesel, S., Oborník, M., Varela, J., Falciatore, A., & Bowler, C. (2008). Evolutionary origins and
functions of the carotenoid biosynthetic pathway in marine diatoms. PLoS ONE, 3, e2896.
Cordero, B. F., Obraztsova, I., Couso, I., Leon, R., Vargas, M. A., & Rodriguez, H. (2011). Enhancement of lutein production in Chlorella sorokiniana (Chorophyta) by improvement of culture
conditions and random mutagenesis. Marine Drugs, 9, 1607–1624.
Couso, I., Vila, M., Rodriguez, H., Vargas, M. A., & Léon, R. (2011). Overexperssion of an exogenous phytoene synthase gene in the unicellular alga Chlamydomonas reinhardtii leads to an
increase in the content of carotenoids. Biotechnology Progress, 27, 54–60.
Cuaresma, M., Bejarano, C., Forján, E., & Vílchez, C. (2011). Productivity and selective accumulation of carotenoids of the novel extremophile microalga Chlamydomonas acidophila grown with
different carbon sources in batch systems. Journal of Industrial Microbiology and Biotechnology,
38, 167–177.
Cui, H. L., Yu, X. N., Wang, Y., Cui, Y. L., Li, X. Q., Liu, Z. P., et al. (2013). Evolutionary origins,
molecular cloning and expression of carotenoid hydroxylases in eukaryotic photosynthetic algae.
BMC Genomics, 14, 457.
Cui, H., Yu, X., Wang, Y., Cui, Y., Li, X., Liu, Z., et al. (2014). Gene cloning and expression profile of
a novel carotenoid hydroxylase (CYP97C) from the green alga Haematococcus pluvialis. Journal
of Applied Phycology, 26, 91–103.
Cui, J. Y., Diao, J. J., Sun, T., Shi, M. L., Liu, L. S., Wang, F. Z., Chen, L. et al. (2018). C-13 metabolic
flux analysis of enhanced lipid accumulation modulated by ethanolamine in Crypthecodinium
cohnii. Frontiers in Microbiology, 9.
Cui, H., Ma, H., Cui, Y., Zhu, X., Qin, S., & Li, R. (2019). Cloning, identification and functional characterization of two cytochrome P450 carotenoids hydroxylases from the diatom Phaeodactylum
tricornutum. Journal of Bioscience and Bioengineering, 128, 755–765.
Cunningham, F. X., Lafond, T. P., & Gantt, E. (2000). Evidence of a role for LytB in the
nonmevalonate pathway of isoprenoid biosynthesis. Journal of Bacteriology, 182, 5841–5848.
Cveji´ c, J. H., & Rohmer, M. (2000). CO 2 as main carbon source for isoprenoid biosynthesis
via the mevalonate-independent methylerythritol 4-phosphate route in the marine diatoms
Phaeodactylum tricornutum and Nitzschia ovalis. Phytochemistry, 53, 21–28.
Darko, E., Heydarizadeh, P., Schoefs, B., & Sabzalian, M. R. (2014). Photosynthesis under artificial
light: the shift in primary and secondary metabolites. Philosophical Transactions of the Royal
Society of London. B: Biology, 369, #20130243.
Del Campo, J. A., Moreno, J., Rodriguez, H., Vargas, M. A., Rivas, J., & Guerrero, M. G. (2000).
Carotenoid content of chlorophycean microalgae: Factors determining lutein accumulation in
Muriellopsis sp. (Chlorophyta). Journal of Biotechnology, 76, 51–59.
Del Campo, J. A., Rodriguez, H., Moreno, J., Vargas, M. A., Rivas, J., & Guerrezo, M. G.
(2004). Accumulation of astaxanthin and lutein in Chlorella zofingiensis (Chlorophya). Applied
Microbiology and Biotechnology, 64, 848–854.
Del Campo, J. A., Garcia-Gonzalez, M., & Guerrero, M. G. (2007). Outdoor cultivation of
microalgae for carotenoid production: Current state and perspectives. Applied Microbiology and
Biotechnology, 74, 1163–1174.
M. Scarsini et al.
Cherdchukeattisak, P., Fraser, P., Purton, S., & Brocklehurst, T. (2018). Detection and enhancement of ketocarotenoid accumulation in the newly isolated sarcinoid green microalga Chlorosarcinopsis PY02. Biology, 7, 17.
Choi, S. K., Harada, H., Matsuda, S., & Misawa, N. (2007). Characterization of two β-carotene
ketolases, CrtO and CrtW, by complementation analysis in Escherichia coli. Applied Microbiology
and Biotechnology, 75, 1335–1341.
Christaki, E., Bonos, E., Giannenas, I., & Florou-Paneri, P. (2013). Functional properties of
carotenoids originating from algae. Journal of the Science of Food and Agriculture, 93, 5–11.
Chronopoulou, L., dal Bosco, C., di Caprio, F., Prosini, L., Gentili, A., Pagnanelli, F., et al. (2019).
Extraction of carotenoids and fat-soluble vitamins from Tetradesmus obliquus microalgae: An
optimized approach by using supercritical CO 2 . Molecules, 24, 2581.
Coesel, S., Oborník, M., Varela, J., Falciatore, A., & Bowler, C. (2008). Evolutionary origins and
functions of the carotenoid biosynthetic pathway in marine diatoms. PLoS ONE, 3, e2896.
Cordero, B. F., Obraztsova, I., Couso, I., Leon, R., Vargas, M. A., & Rodriguez, H. (2011). Enhancement of lutein production in Chlorella sorokiniana (Chorophyta) by improvement of culture
conditions and random mutagenesis. Marine Drugs, 9, 1607–1624.
Couso, I., Vila, M., Rodriguez, H., Vargas, M. A., & Léon, R. (2011). Overexperssion of an exogenous phytoene synthase gene in the unicellular alga Chlamydomonas reinhardtii leads to an
increase in the content of carotenoids. Biotechnology Progress, 27, 54–60.
Cuaresma, M., Bejarano, C., Forján, E., & Vílchez, C. (2011). Productivity and selective accumulation of carotenoids of the novel extremophile microalga Chlamydomonas acidophila grown with
different carbon sources in batch systems. Journal of Industrial Microbiology and Biotechnology,
38, 167–177.
Cui, H. L., Yu, X. N., Wang, Y., Cui, Y. L., Li, X. Q., Liu, Z. P., et al. (2013). Evolutionary origins,
molecular cloning and expression of carotenoid hydroxylases in eukaryotic photosynthetic algae.
BMC Genomics, 14, 457.
Cui, H., Yu, X., Wang, Y., Cui, Y., Li, X., Liu, Z., et al. (2014). Gene cloning and expression profile of
a novel carotenoid hydroxylase (CYP97C) from the green alga Haematococcus pluvialis. Journal
of Applied Phycology, 26, 91–103.
Cui, J. Y., Diao, J. J., Sun, T., Shi, M. L., Liu, L. S., Wang, F. Z., Chen, L. et al. (2018). C-13 metabolic
flux analysis of enhanced lipid accumulation modulated by ethanolamine in Crypthecodinium
cohnii. Frontiers in Microbiology, 9.
Cui, H., Ma, H., Cui, Y., Zhu, X., Qin, S., & Li, R. (2019). Cloning, identification and functional characterization of two cytochrome P450 carotenoids hydroxylases from the diatom Phaeodactylum
tricornutum. Journal of Bioscience and Bioengineering, 128, 755–765.
Cunningham, F. X., Lafond, T. P., & Gantt, E. (2000). Evidence of a role for LytB in the
nonmevalonate pathway of isoprenoid biosynthesis. Journal of Bacteriology, 182, 5841–5848.
Cveji´ c, J. H., & Rohmer, M. (2000). CO 2 as main carbon source for isoprenoid biosynthesis
via the mevalonate-independent methylerythritol 4-phosphate route in the marine diatoms
Phaeodactylum tricornutum and Nitzschia ovalis. Phytochemistry, 53, 21–28.
Darko, E., Heydarizadeh, P., Schoefs, B., & Sabzalian, M. R. (2014). Photosynthesis under artificial
light: the shift in primary and secondary metabolites. Philosophical Transactions of the Royal
Society of London. B: Biology, 369, #20130243.
Del Campo, J. A., Moreno, J., Rodriguez, H., Vargas, M. A., Rivas, J., & Guerrero, M. G. (2000).
Carotenoid content of chlorophycean microalgae: Factors determining lutein accumulation in
Muriellopsis sp. (Chlorophyta). Journal of Biotechnology, 76, 51–59.
Del Campo, J. A., Rodriguez, H., Moreno, J., Vargas, M. A., Rivas, J., & Guerrezo, M. G.
(2004). Accumulation of astaxanthin and lutein in Chlorella zofingiensis (Chlorophya). Applied
Microbiology and Biotechnology, 64, 848–854.
Del Campo, J. A., Garcia-Gonzalez, M., & Guerrero, M. G. (2007). Outdoor cultivation of
microalgae for carotenoid production: Current state and perspectives. Applied Microbiology and
Biotechnology, 74, 1163–1174.
