174
A. Pérez-Gálvez and J. Fontecha
Goto, M., Kanda, H., Wahyudiono, & Machmudah, S. (2015). Extraction of carotenoids and lipids
from algae by supercritical CO 2 and subcritical dimethyl ether. Journal of Supercritical Fluids,
96, 245–251.
Gouveia, L., Batista, A. P., Sousa, I., Raymundo, A., & Bandarra, N. M. (2009). Microalgae in
novel food products. In K. N. Hagen (Ed.), Algae: nutrition, pollution control and energy sources
(pp. 265–300). New York: Nova Science Publishers.
Grimi, N., Dubois, A., Marchal, L., Jubeau, S., Lebovka, N. I., & Vorobiev, E. (2014). Selective extraction from microalgae Nannochloropsis sp. using different methods of cell disruption.
Bioresource Technology, 153, 254–259.
Guaratini, T., Cardozo, K. H. M., Pintoc, E., & Colepicolo, P. (2009). Comparison of diode array and
electrochemical detection in the C 30 reverse phase HPLC analysis of algae carotenoids. Journal
of the Brazilian Chemical Society, 20, 1609–1616.
Guedes, A. C., Giao, M. S., Matias, A. A., Nunes, A. V. M., Pintado, M. E., Duarte, C. M. M.,
et al. (2013). Supercritical fluid extraction of carotenoids and chlorophylls a, b and c, from a wild
strain of Scenedesmus obliquus for use in food processing. Journal of Food Engineering, 116,
478–482.
Guillarme, D., Nguyen, D. T.-T., Rudaz, S., & Veuthey, J.-L. (2007). Method transfer for fast liquid
chromatography in pharmaceutical analysis: Application to short columns packed with small
particle. Part I: Isocratic separation. European Journal of Pharmaceutics and Biopharmaceutics,
66, 475–482.
Guillarme, D., Nguyen, D. T.-T., Rudaz, S., & Veuthey, J.-L. (2008). Method transfer for
fast liquid chromatography inpharmaceutical analysis: Application to short columns packed
with small particle. Part II: Gradient experiments. European Journal of Pharmaceutics and
Biopharmaceutics, 68, 430–440.
Guzman, I., Yousef, G. G., & Brown, A. F. (2012). Simultaneous extraction and quantitation of
carotenoids, chlorophylls, and tocopherols in Brassica vegetables. Journal of Agricultural and
Food Chemistry, 60, 7238–7244.
Halim, R., Rupasinghe, T. W. T., Tull, D. L., & Webley, P. A. (2013). Mechanical cell disruption
for lipid extraction from microalgal biomass. Bioresource Technology, 140, 53–63.
Holtin, K., Kuehnle, M., Rehbein, J., Schuler, P., Nicholson, G., & Albert, K. (2009). Determination
of astaxanthin and astaxanthin esters in the microalgae Haematococcus pluvialis by LC-(APCI)
MS and characterization of predominant carotenoid isomers by NMR spectroscopy. Analytical
and Bioanalytical Chemistry, 395, 1613–1622.
Hu, Y.-R., Wang, F., Wang, S.-K., Liu, C.-Z., & Guo, C. (2013). Efficient harvesting of marine
microalgae Nannochloropsis maritima using magnetic nanoparticles. Bioresource Technology,
138, 387–390.
Huang, J. J., Lin, S., Xu, W., & Cheung, P. C. K. (2017). Occurrence and biosynthesis of carotenoids
in phytoplankton. Biotechnology Advances, 35, 597–618.
Inbaraj, B. S., Chien, J. T., & Chen, B. H. (2006). Improved high performance liquid chromatographic method for determination of carotenoids in the microalga Chlorella pyrenoidosa. Journal
of Chromatography A, 1102, 193–199.
Indriatmoko, Shioi, Y., Brotosudarmo, T. H. P., & Limantara, L. (2015). Separation of photosynthetic
pigments by high-performance liquid chromatography: Comparison of column performance,
mobile phase, and temperature. Procedia Chemistry, 14, 202–210.
Jayaraman, S., Knuth, M. L., Cantwell, M., & Santos, A. (2011). High performance liquid
chromatographic analysis of phytoplankton pigments using a C16-Amide column. Journal of
Chromatography A, 1218, 3432–3438.
Jeffrey, S., & Humphrey, G. (1975). New spectrophotometric equations for determining chlorophylls
a, b, c 1 and c 2 in higher plants, algae and natural phytoplankton. Biochemie und Physiologie der
Pflanzen, 167, 191–194.
Juin, C., Bonnet, A., Nicolau, E., Bérard, J.-B., Devillers, R., Thiéry, V., Cadoret, J.-P., et al. (2015).
UPLC-MS E profiling of phytoplankton metabolites: Application to the identification of pigments
and structural analysis of metabolites in Porphyridium purpureum. Marine Drugs, 13, 2451–2558.
A. Pérez-Gálvez and J. Fontecha
Goto, M., Kanda, H., Wahyudiono, & Machmudah, S. (2015). Extraction of carotenoids and lipids
from algae by supercritical CO 2 and subcritical dimethyl ether. Journal of Supercritical Fluids,
96, 245–251.
Gouveia, L., Batista, A. P., Sousa, I., Raymundo, A., & Bandarra, N. M. (2009). Microalgae in
novel food products. In K. N. Hagen (Ed.), Algae: nutrition, pollution control and energy sources
(pp. 265–300). New York: Nova Science Publishers.
Grimi, N., Dubois, A., Marchal, L., Jubeau, S., Lebovka, N. I., & Vorobiev, E. (2014). Selective extraction from microalgae Nannochloropsis sp. using different methods of cell disruption.
Bioresource Technology, 153, 254–259.
Guaratini, T., Cardozo, K. H. M., Pintoc, E., & Colepicolo, P. (2009). Comparison of diode array and
electrochemical detection in the C 30 reverse phase HPLC analysis of algae carotenoids. Journal
of the Brazilian Chemical Society, 20, 1609–1616.
Guedes, A. C., Giao, M. S., Matias, A. A., Nunes, A. V. M., Pintado, M. E., Duarte, C. M. M.,
et al. (2013). Supercritical fluid extraction of carotenoids and chlorophylls a, b and c, from a wild
strain of Scenedesmus obliquus for use in food processing. Journal of Food Engineering, 116,
478–482.
Guillarme, D., Nguyen, D. T.-T., Rudaz, S., & Veuthey, J.-L. (2007). Method transfer for fast liquid
chromatography in pharmaceutical analysis: Application to short columns packed with small
particle. Part I: Isocratic separation. European Journal of Pharmaceutics and Biopharmaceutics,
66, 475–482.
Guillarme, D., Nguyen, D. T.-T., Rudaz, S., & Veuthey, J.-L. (2008). Method transfer for
fast liquid chromatography inpharmaceutical analysis: Application to short columns packed
with small particle. Part II: Gradient experiments. European Journal of Pharmaceutics and
Biopharmaceutics, 68, 430–440.
Guzman, I., Yousef, G. G., & Brown, A. F. (2012). Simultaneous extraction and quantitation of
carotenoids, chlorophylls, and tocopherols in Brassica vegetables. Journal of Agricultural and
Food Chemistry, 60, 7238–7244.
Halim, R., Rupasinghe, T. W. T., Tull, D. L., & Webley, P. A. (2013). Mechanical cell disruption
for lipid extraction from microalgal biomass. Bioresource Technology, 140, 53–63.
Holtin, K., Kuehnle, M., Rehbein, J., Schuler, P., Nicholson, G., & Albert, K. (2009). Determination
of astaxanthin and astaxanthin esters in the microalgae Haematococcus pluvialis by LC-(APCI)
MS and characterization of predominant carotenoid isomers by NMR spectroscopy. Analytical
and Bioanalytical Chemistry, 395, 1613–1622.
Hu, Y.-R., Wang, F., Wang, S.-K., Liu, C.-Z., & Guo, C. (2013). Efficient harvesting of marine
microalgae Nannochloropsis maritima using magnetic nanoparticles. Bioresource Technology,
138, 387–390.
Huang, J. J., Lin, S., Xu, W., & Cheung, P. C. K. (2017). Occurrence and biosynthesis of carotenoids
in phytoplankton. Biotechnology Advances, 35, 597–618.
Inbaraj, B. S., Chien, J. T., & Chen, B. H. (2006). Improved high performance liquid chromatographic method for determination of carotenoids in the microalga Chlorella pyrenoidosa. Journal
of Chromatography A, 1102, 193–199.
Indriatmoko, Shioi, Y., Brotosudarmo, T. H. P., & Limantara, L. (2015). Separation of photosynthetic
pigments by high-performance liquid chromatography: Comparison of column performance,
mobile phase, and temperature. Procedia Chemistry, 14, 202–210.
Jayaraman, S., Knuth, M. L., Cantwell, M., & Santos, A. (2011). High performance liquid
chromatographic analysis of phytoplankton pigments using a C16-Amide column. Journal of
Chromatography A, 1218, 3432–3438.
Jeffrey, S., & Humphrey, G. (1975). New spectrophotometric equations for determining chlorophylls
a, b, c 1 and c 2 in higher plants, algae and natural phytoplankton. Biochemie und Physiologie der
Pflanzen, 167, 191–194.
Juin, C., Bonnet, A., Nicolau, E., Bérard, J.-B., Devillers, R., Thiéry, V., Cadoret, J.-P., et al. (2015).
UPLC-MS E profiling of phytoplankton metabolites: Application to the identification of pigments
and structural analysis of metabolites in Porphyridium purpureum. Marine Drugs, 13, 2451–2558.
