66
V. K. Kannaujiya et al.
Runyen-Janecky, L. J. (2013). Role and regulation of heme iron acquisition in Gram-negative
pathogens. Front Cell Infection Microbiology, 3, 55.
Sah, J. F., Krishna, K. B., Srivastava, M., & Mohanty, P. (1998). Effects of ultraviolet-B radiation on
Phycobilisomes of Synechococcus PCC 7942: Alterations in conformation and energy transfer
characteristics. IUBMB Life, 44, 245–257.
Sakamoto, T., & Bryant, D. A. (1998). Growth at low temperature causes nitrogen limitation in the
cyanobacterium Synechococcus sp. PCC 7002. Archives of Microbiology, 169, 10–19.
Saunée, N. A., Williams, S. R., Bryant, D. A., & Schluchter, W. M. (2008). Biogenesis of phycobiliproteins. II. CpcS-I and CpcU comprise the heterodimeric bilin lyase that attaches phycocyanobilin to Cys-82 of β-phycocyanin and Cys-81 of allophycocyanin subunits in Synechococcus
sp. PCC 7002. Journal of Biological Chemistry, 283, 7513–7522.
Scheer, H., Yang, X., & Zhao, K.-H. (2015). Biliproteins and their applications in bioimaging.
Procedia Chemistry, 14, 176–185.
Scheer, H., & Zhao, K. H. (2008). Biliprotein maturation: The chromophore attachment. Molecular
Microbiology, 68, 1263–1276.
Sekar, S., & Chandramohan, M. (2008). Phycobiliproteins as a commodity: Trends in applied
research, patents and commercialization. Journal of Applied Physiology, 20, 113–136.
Sersen, F., & Kralova, K. (2001). New facts about CdCl 2 action on the photosynthetic apparatus of
spinach chloroplast and its comparison with HgCl 2 action. Photosynthetica, 39, 575–580.
Shen, G., Saunee, N. A., Williams, S. R., Gallo, E. F., Schluchter, W. M., & Bryant, D. A.
(2006). Identification and characterization of a new class of bilin lyase: The cpcT gene
encodes a bilin lyase responsible for attachment of phycocyanobilin to Cys-153 on the beta
subunit of phycocyanin in Synechococcus sp. PCC 7002. Journal of Biological Chemistry, 281,
17768–17778.
Shen, G., Schluchter, W. M., & Bryant, D. A. (2008). Biogenesis of phycobiliproteins I. CpcS-I and
CpcU mutants of the cyanobacterium Synechococcus sp. PCC 7002 define a heterodimeric phycocyanobilin lyase specific for β-phycocyanin and allophycocyanin subunits. Journal of Biological
Chemistry, 283, 7503–7512.
Shukla, A., Biswas, A., Blot, N., Partensky, F., Karty, J. A., Hammad, L. A., et al. (2012).
Phycoerythrin-specific bilin lyaseisomerase controls blue-green chromatic acclimation in marine
Synechococcus. Proceedings of the National academy of Sciences of the United States of America,
109, 20136–20141.
Sidler, W. A. (1994). Phycobilisome and phycobiliprotein structures. In D. A. Bryant (Ed.), The
molecular biology of cyanobacteria (pp. 139–216). Netherlands: Kluwer Academic Publication.
Singh, N. K., Parmar, A., Sonani, R. R., & Madamwar, D. (2012). Isolation, identification and
characterization of novel thermotolerant Oscillatoria sp. N9DM: Change in pigmentation profile
in response to temperature. Process Biochemistry, 47, 2472–2479.
Singh, S. P., Häder, D.-P., & Sinha, R. P. (2010). Cyanobacteria and ultraviolet radiation (UVR)
stress: Mitigation strategies. Ageing Research Review, 9, 79–90.
Singh, S. P., & Montgomery, B. L. (2013). Distinct salt-dependent effects impair Fremyella
diplosiphon pigmentation and cellular shape. Plant signaling & behavior, 8, 24713.
Singh, S. P., Rastogi, R. P., Häder, D.-P., & Sinha, R. P. (2014). Temporal dynamics of ROS
biogenesis under simulated solar radiation in the cyanobacterium Anabaena variabilis PCC 7937.
Protoplasma, 251, 1223–1230.
Singh, S. P., Rastogi, R. P., Sinha, R. P., & Häder, D.-P. (2013). Photosynthetic performance of
Anabaena variabilis PCC 7937 under simulated solar radiation. Photosynthetica, 51, 259–266.
Sinha, R. P., Lebert, M., Kumar, A., Kumar, H. D., & Häder, D.-P. (1995). Spectroscopic and
biochemical analyses of UV effects of phycobilisomes of Anabaena sp. and Nostoc carmium.
Botanica Acta, 108, 87–92.
Sinha, R. P., Richter, P., Faddoul, J., Braun, M., & Häder, D.-P. (2002). Effects of UV and visible light
on cyanobacteria at the cellular level. Photochemical & Photobiological Sciences, 1, 553–559.
V. K. Kannaujiya et al.
Runyen-Janecky, L. J. (2013). Role and regulation of heme iron acquisition in Gram-negative
pathogens. Front Cell Infection Microbiology, 3, 55.
Sah, J. F., Krishna, K. B., Srivastava, M., & Mohanty, P. (1998). Effects of ultraviolet-B radiation on
Phycobilisomes of Synechococcus PCC 7942: Alterations in conformation and energy transfer
characteristics. IUBMB Life, 44, 245–257.
Sakamoto, T., & Bryant, D. A. (1998). Growth at low temperature causes nitrogen limitation in the
cyanobacterium Synechococcus sp. PCC 7002. Archives of Microbiology, 169, 10–19.
Saunée, N. A., Williams, S. R., Bryant, D. A., & Schluchter, W. M. (2008). Biogenesis of phycobiliproteins. II. CpcS-I and CpcU comprise the heterodimeric bilin lyase that attaches phycocyanobilin to Cys-82 of β-phycocyanin and Cys-81 of allophycocyanin subunits in Synechococcus
sp. PCC 7002. Journal of Biological Chemistry, 283, 7513–7522.
Scheer, H., Yang, X., & Zhao, K.-H. (2015). Biliproteins and their applications in bioimaging.
Procedia Chemistry, 14, 176–185.
Scheer, H., & Zhao, K. H. (2008). Biliprotein maturation: The chromophore attachment. Molecular
Microbiology, 68, 1263–1276.
Sekar, S., & Chandramohan, M. (2008). Phycobiliproteins as a commodity: Trends in applied
research, patents and commercialization. Journal of Applied Physiology, 20, 113–136.
Sersen, F., & Kralova, K. (2001). New facts about CdCl 2 action on the photosynthetic apparatus of
spinach chloroplast and its comparison with HgCl 2 action. Photosynthetica, 39, 575–580.
Shen, G., Saunee, N. A., Williams, S. R., Gallo, E. F., Schluchter, W. M., & Bryant, D. A.
(2006). Identification and characterization of a new class of bilin lyase: The cpcT gene
encodes a bilin lyase responsible for attachment of phycocyanobilin to Cys-153 on the beta
subunit of phycocyanin in Synechococcus sp. PCC 7002. Journal of Biological Chemistry, 281,
17768–17778.
Shen, G., Schluchter, W. M., & Bryant, D. A. (2008). Biogenesis of phycobiliproteins I. CpcS-I and
CpcU mutants of the cyanobacterium Synechococcus sp. PCC 7002 define a heterodimeric phycocyanobilin lyase specific for β-phycocyanin and allophycocyanin subunits. Journal of Biological
Chemistry, 283, 7503–7512.
Shukla, A., Biswas, A., Blot, N., Partensky, F., Karty, J. A., Hammad, L. A., et al. (2012).
Phycoerythrin-specific bilin lyaseisomerase controls blue-green chromatic acclimation in marine
Synechococcus. Proceedings of the National academy of Sciences of the United States of America,
109, 20136–20141.
Sidler, W. A. (1994). Phycobilisome and phycobiliprotein structures. In D. A. Bryant (Ed.), The
molecular biology of cyanobacteria (pp. 139–216). Netherlands: Kluwer Academic Publication.
Singh, N. K., Parmar, A., Sonani, R. R., & Madamwar, D. (2012). Isolation, identification and
characterization of novel thermotolerant Oscillatoria sp. N9DM: Change in pigmentation profile
in response to temperature. Process Biochemistry, 47, 2472–2479.
Singh, S. P., Häder, D.-P., & Sinha, R. P. (2010). Cyanobacteria and ultraviolet radiation (UVR)
stress: Mitigation strategies. Ageing Research Review, 9, 79–90.
Singh, S. P., & Montgomery, B. L. (2013). Distinct salt-dependent effects impair Fremyella
diplosiphon pigmentation and cellular shape. Plant signaling & behavior, 8, 24713.
Singh, S. P., Rastogi, R. P., Häder, D.-P., & Sinha, R. P. (2014). Temporal dynamics of ROS
biogenesis under simulated solar radiation in the cyanobacterium Anabaena variabilis PCC 7937.
Protoplasma, 251, 1223–1230.
Singh, S. P., Rastogi, R. P., Sinha, R. P., & Häder, D.-P. (2013). Photosynthetic performance of
Anabaena variabilis PCC 7937 under simulated solar radiation. Photosynthetica, 51, 259–266.
Sinha, R. P., Lebert, M., Kumar, A., Kumar, H. D., & Häder, D.-P. (1995). Spectroscopic and
biochemical analyses of UV effects of phycobilisomes of Anabaena sp. and Nostoc carmium.
Botanica Acta, 108, 87–92.
Sinha, R. P., Richter, P., Faddoul, J., Braun, M., & Häder, D.-P. (2002). Effects of UV and visible light
on cyanobacteria at the cellular level. Photochemical & Photobiological Sciences, 1, 553–559.
