64
V. K. Kannaujiya et al.
Liotenberg, S., Campbell, D., Rippka, R., Houmard, J., & Tandeu de Marsac, N. (1996). Effect of
the nitrogen source on phycobiliprotein synthesis and cell reserves in a chromatically adapting
filamentous cyanobacterium. Microbiology, 142, 611–622.
Liu, Y., Jovcevski, B., & Pukala, T. L. (2019). C-Phycocyanin from Spirulina inhibits α-synuclein
and amyloid-β fibril formation but not amorphous aggregation. Journal of Natural Products.
https://doi.org/10.1021/acs.jnatprod.8b00610.
Lobo, S. A., Scott, A., Videira, M. A., Winpenny, D., Gardner, M., Palmer, M. J., et al. (2015).
Staphylococcus aureus haem biosynthesis: characterisation of the enzymes involved in final steps
of the pathway. Molecular Microbiology, 97, 472–487.
Lonneborg, A., Lind, A. K., Kalia, S. R., Gustafsson, P., & Oquist, G. (1985). Acclimation process
in the light-harvesting system of the cyanobacterium Anacystis nidulans following a light shift
from white to red light. Plant Physiology, 78, 110–114.
Lu, C., Torzilo, G., & Vonshak, A. (1999). Kinetic response of photosystem II photochemistry
in cyanobacterium Spirulina platensis to high salinity is characterized by two distinct phases.
Australian Journal of Plant Physiology, 26, 283–292.
Lu, C., & Vonshak, A. (2002). Effects of salinity on photosystem II function in cyanobacterial
Spirulina platensis cells. Physiologia Plantarum, 114, 405–413.
Martiny, A. C., Coleman, M. L., & Chisholm, S. W. (2006). Phosphate acquisition genes in
Prochlorococcus ecotypes: Evidence for genome wide adaptation. Proceedings of the National
Academy of Sciences USA, 103, 12552–12557.
Mayfield, J. A., Dehner, C. A., & DuBois, J. L. (2011). Recent advances in bacterial heme protein
biochemistry. Current Opinion in Chemical Biology, 15, 260–266.
Mihova, S. G., Georgiev, D. I., Minkova, K. M., & Tchernov, A. A. (1996). Phycobiliproteins in
Rhodella reticulate and photoregulatory effects on their content. Joournal of Biotechnology, 48,
251–257.
Minkova, K. M., Tchernov, A. A., Tchorbadjieva, M. I., Fournadjieva, S. T., Antova, R. E., &
Busheva, M. C. (2003). Purification of C-phycocyanin from Spirulina (Arthrospira) fusiformis.
Journal of Biotechnology, 102, 55–59.
Mishra, S. K., Shrivastav, A., Maurya, R. R., Patidar, S. K., Haldar, S., & Mishra, S. (2012). Effect
of light quality on the C-phycoerythrin production in marine cyanobacteria Pseudanabaena sp.
isolated from Gujarat coast, India. Protein Expression Purification, 81, 5–10.
Moody, S. C., & Loveridge, E. J. (2014). CYP105—diverse structures, functions and roles in an
intriguing family of enzymes in Streptomyces. Journal of Applied Microbiology, 117, 1549–1563.
Morimoto, K., Sato, S., Tabata, S., & Nakai, M. (2003). A HEAT-repeats containing protein, IaiH,
stabilizes the iron-sulfur cluster bound to the cyanobacterial IscA homologue, IscA2. Journal of
Biochemistry (Tokyo), 134, 211–217.
Muramatsu, M., & Hihara, Y. (2012). Acclimation to high-light conditions in cyanobacteria: From
gene expression to physiological responses. Journal of Plant Research, 125, 11–39.
Murthy, S. D. S., & Mohanty, P. (1991). Mercury induces alteration of energy transfer in Phycobilisomes by selectively affecting the pigment protein, phycocyanin in the cyanobacterium Spirulina
platensis. Plant and Cell Physiology, 32, 231–237.
Nakamoto, H., & Honma, D. (2006). Interaction of a small heat shock protein with light-harvesting
cyanobacterial phycocyanins under stress conditions. FEBS Letters, 580, 3029–3034.
Nakamoto, H., Suzuki, N., & Roy, S. K. (2000). Constitutive expression of a small heat-shock
protein confers cellular thermotolerance and thermal protection to the photosynthetic apparatus
in cyanobacteria. FEBS letters, 483, 169–174.
Overkamp, K. E., Gasper, R., Kock, K., Herrmann, C., Hofmann, E., & Frankenberg-Dinkel, N.
(2014). Insights into the biosynthesis and assembly of cryptophycean phycobiliproteins. Journal
of Biological Chemistry, 289, 26691–26707.
Pagels, F., Guedes, A. C., Amaro, H. M., Kijjoa, A., & Vasconcelos, V. (2019). Phycobiliproteins from cyanobacteria: Chemistry and biotechnological applications. Biotechnology Advances,
37(3), 422–443.
V. K. Kannaujiya et al.
Liotenberg, S., Campbell, D., Rippka, R., Houmard, J., & Tandeu de Marsac, N. (1996). Effect of
the nitrogen source on phycobiliprotein synthesis and cell reserves in a chromatically adapting
filamentous cyanobacterium. Microbiology, 142, 611–622.
Liu, Y., Jovcevski, B., & Pukala, T. L. (2019). C-Phycocyanin from Spirulina inhibits α-synuclein
and amyloid-β fibril formation but not amorphous aggregation. Journal of Natural Products.
https://doi.org/10.1021/acs.jnatprod.8b00610.
Lobo, S. A., Scott, A., Videira, M. A., Winpenny, D., Gardner, M., Palmer, M. J., et al. (2015).
Staphylococcus aureus haem biosynthesis: characterisation of the enzymes involved in final steps
of the pathway. Molecular Microbiology, 97, 472–487.
Lonneborg, A., Lind, A. K., Kalia, S. R., Gustafsson, P., & Oquist, G. (1985). Acclimation process
in the light-harvesting system of the cyanobacterium Anacystis nidulans following a light shift
from white to red light. Plant Physiology, 78, 110–114.
Lu, C., Torzilo, G., & Vonshak, A. (1999). Kinetic response of photosystem II photochemistry
in cyanobacterium Spirulina platensis to high salinity is characterized by two distinct phases.
Australian Journal of Plant Physiology, 26, 283–292.
Lu, C., & Vonshak, A. (2002). Effects of salinity on photosystem II function in cyanobacterial
Spirulina platensis cells. Physiologia Plantarum, 114, 405–413.
Martiny, A. C., Coleman, M. L., & Chisholm, S. W. (2006). Phosphate acquisition genes in
Prochlorococcus ecotypes: Evidence for genome wide adaptation. Proceedings of the National
Academy of Sciences USA, 103, 12552–12557.
Mayfield, J. A., Dehner, C. A., & DuBois, J. L. (2011). Recent advances in bacterial heme protein
biochemistry. Current Opinion in Chemical Biology, 15, 260–266.
Mihova, S. G., Georgiev, D. I., Minkova, K. M., & Tchernov, A. A. (1996). Phycobiliproteins in
Rhodella reticulate and photoregulatory effects on their content. Joournal of Biotechnology, 48,
251–257.
Minkova, K. M., Tchernov, A. A., Tchorbadjieva, M. I., Fournadjieva, S. T., Antova, R. E., &
Busheva, M. C. (2003). Purification of C-phycocyanin from Spirulina (Arthrospira) fusiformis.
Journal of Biotechnology, 102, 55–59.
Mishra, S. K., Shrivastav, A., Maurya, R. R., Patidar, S. K., Haldar, S., & Mishra, S. (2012). Effect
of light quality on the C-phycoerythrin production in marine cyanobacteria Pseudanabaena sp.
isolated from Gujarat coast, India. Protein Expression Purification, 81, 5–10.
Moody, S. C., & Loveridge, E. J. (2014). CYP105—diverse structures, functions and roles in an
intriguing family of enzymes in Streptomyces. Journal of Applied Microbiology, 117, 1549–1563.
Morimoto, K., Sato, S., Tabata, S., & Nakai, M. (2003). A HEAT-repeats containing protein, IaiH,
stabilizes the iron-sulfur cluster bound to the cyanobacterial IscA homologue, IscA2. Journal of
Biochemistry (Tokyo), 134, 211–217.
Muramatsu, M., & Hihara, Y. (2012). Acclimation to high-light conditions in cyanobacteria: From
gene expression to physiological responses. Journal of Plant Research, 125, 11–39.
Murthy, S. D. S., & Mohanty, P. (1991). Mercury induces alteration of energy transfer in Phycobilisomes by selectively affecting the pigment protein, phycocyanin in the cyanobacterium Spirulina
platensis. Plant and Cell Physiology, 32, 231–237.
Nakamoto, H., & Honma, D. (2006). Interaction of a small heat shock protein with light-harvesting
cyanobacterial phycocyanins under stress conditions. FEBS Letters, 580, 3029–3034.
Nakamoto, H., Suzuki, N., & Roy, S. K. (2000). Constitutive expression of a small heat-shock
protein confers cellular thermotolerance and thermal protection to the photosynthetic apparatus
in cyanobacteria. FEBS letters, 483, 169–174.
Overkamp, K. E., Gasper, R., Kock, K., Herrmann, C., Hofmann, E., & Frankenberg-Dinkel, N.
(2014). Insights into the biosynthesis and assembly of cryptophycean phycobiliproteins. Journal
of Biological Chemistry, 289, 26691–26707.
Pagels, F., Guedes, A. C., Amaro, H. M., Kijjoa, A., & Vasconcelos, V. (2019). Phycobiliproteins from cyanobacteria: Chemistry and biotechnological applications. Biotechnology Advances,
37(3), 422–443.
