<p>C-Phycocyanin (C-PC), a fluorescent photosynthetic protein derived from cyanobacteria, is used in the food, cosmetic, pharmaceutical, and biotechnology industries. Various cyanobacterial sources of C-PC have been studied to harness its biological functions such as antimicrobial, antioxidant, anticancer, and anti-inflammatory properties. <i>Phormidium</i> sp<i>.</i> A02 isolate from the Indian coast was cultured in a mixotrophic static environment to determine the effect of various bioprocess parameters like culture medium and light (photoperiod, light intensity, and light color) on biomass productivity and C-PC content<i>.</i> The C-PC from <i>Phormidium</i> sp. A02 can be used in the food and cosmetic industry as an alternative to synthetic chemical colorants. Carbon-mediated metabolic engineering of C-PC in <i>Phormidium</i> sp. A02 using Guillard’s F/2 seawater medium supplemented with carbon sources like glucose, sucrose, glucose + peptone, and sucrose + peptone was carried out to determine its growth and C-PC enhancement efficiency. Sucrose + peptone with C/N ratio 4.76 increased <i>Phormidium</i> sp. A02 biomass productivity (0.197 ± 0.02&#xa0;g dry weight L<sup>−1</sup>&#xa0;day<sup>−1</sup>) by twofold compared to the autotrophic control (0.105 ± 0.01&#xa0;g dry weight L<sup>−1</sup>&#xa0;day<sup>−1</sup>). An analysis of C-PC content enhancement with glycerol supplementation showed that 0.9&#xa0;g of glycerol L-1 was the optimal concentration. Higher biomass productivity (0.176 ± 0.01&#xa0;g L<sup>−1</sup>&#xa0;day <sup>−1</sup>) was observed in photoperiods of 8/16&#xa0;h light/dark and higher C-PC content (69.91 ± 4.86&#xa0;mg&#xa0;g<sup>−1</sup>) at lower light intensity in <i>Phormidium</i> sp. A02 under mixotrophic conditions. A two-phase static culture strategy was developed, beginning with 5&#xa0;days of initial biomass production under white light, followed by 3&#xa0;days of C-PC enhancement under monochromatic light. The dry biomass production in sucrose + peptone under white, green, and red light was similar in our two-phase static culture strategy, averaging 0.27&#xa0;g L<sup>−1</sup>. In contrast, red light induction increased C-PC more than other lights and by 6.5-fold (52.30 ± 0.002&#xa0;mg&#xa0;g<sup>−1</sup>) over a control with white light (7.76 ± 0.58&#xa0;mg&#xa0;g<sup>−1</sup>). C-PC had thermal stability up to 55&#xa0;°C, pH stability up to 4.00 and a purity of 0.69. <i>Phormidium</i> sp. A02 cultured in a closed system under bioprocess strategies such as red-light induction, glycerol supplementation, and metabolism switchover could enhance C-PC and make it a viable culture technique.</p> Graphical abstract <p></p>

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Carbon source-mediated metabolic and bioprocess optimization for C-phycocyanin enrichment in Phormidium sp. A02 under two-phase static mixotrophic culture

  • Rajagopal Ramya,
  • Seerappalli Aran Shanmugam,
  • Ayyathurai Kathirvelpandian,
  • Ayyaru Gopalakannan,
  • Albin Jemila Thangarani,
  • Jamal Moideen Muthu Mohamed,
  • Rajagopal Ramila,
  • E. Bhavya,
  • Mariappan Balaganesan

摘要

C-Phycocyanin (C-PC), a fluorescent photosynthetic protein derived from cyanobacteria, is used in the food, cosmetic, pharmaceutical, and biotechnology industries. Various cyanobacterial sources of C-PC have been studied to harness its biological functions such as antimicrobial, antioxidant, anticancer, and anti-inflammatory properties. Phormidium sp. A02 isolate from the Indian coast was cultured in a mixotrophic static environment to determine the effect of various bioprocess parameters like culture medium and light (photoperiod, light intensity, and light color) on biomass productivity and C-PC content. The C-PC from Phormidium sp. A02 can be used in the food and cosmetic industry as an alternative to synthetic chemical colorants. Carbon-mediated metabolic engineering of C-PC in Phormidium sp. A02 using Guillard’s F/2 seawater medium supplemented with carbon sources like glucose, sucrose, glucose + peptone, and sucrose + peptone was carried out to determine its growth and C-PC enhancement efficiency. Sucrose + peptone with C/N ratio 4.76 increased Phormidium sp. A02 biomass productivity (0.197 ± 0.02 g dry weight L−1 day−1) by twofold compared to the autotrophic control (0.105 ± 0.01 g dry weight L−1 day−1). An analysis of C-PC content enhancement with glycerol supplementation showed that 0.9 g of glycerol L-1 was the optimal concentration. Higher biomass productivity (0.176 ± 0.01 g L−1 day −1) was observed in photoperiods of 8/16 h light/dark and higher C-PC content (69.91 ± 4.86 mg g−1) at lower light intensity in Phormidium sp. A02 under mixotrophic conditions. A two-phase static culture strategy was developed, beginning with 5 days of initial biomass production under white light, followed by 3 days of C-PC enhancement under monochromatic light. The dry biomass production in sucrose + peptone under white, green, and red light was similar in our two-phase static culture strategy, averaging 0.27 g L−1. In contrast, red light induction increased C-PC more than other lights and by 6.5-fold (52.30 ± 0.002 mg g−1) over a control with white light (7.76 ± 0.58 mg g−1). C-PC had thermal stability up to 55 °C, pH stability up to 4.00 and a purity of 0.69. Phormidium sp. A02 cultured in a closed system under bioprocess strategies such as red-light induction, glycerol supplementation, and metabolism switchover could enhance C-PC and make it a viable culture technique.

Graphical abstract