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Exploring the Benefits of Phycocyanin: From Spirulina Cultivation to Its Widespread Applications

Large-scale production of microalgae and their bioactive compounds has steadily increased in response to global demand for natural compounds. Spirulina, in particular, has been used due to its high nutritional value, especially its high protein content. Promising biological functions have been assoc...

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Detalles Bibliográficos
Autores principales: Fernandes, Raquel, Campos, Joana, Serra, Mónica, Fidalgo, Javier, Almeida, Hugo, Casas, Ana, Toubarro, Duarte, Barros, Ana I. R. N. A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10144176/
https://www.ncbi.nlm.nih.gov/pubmed/37111349
http://dx.doi.org/10.3390/ph16040592
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author Fernandes, Raquel
Campos, Joana
Serra, Mónica
Fidalgo, Javier
Almeida, Hugo
Casas, Ana
Toubarro, Duarte
Barros, Ana I. R. N. A.
author_facet Fernandes, Raquel
Campos, Joana
Serra, Mónica
Fidalgo, Javier
Almeida, Hugo
Casas, Ana
Toubarro, Duarte
Barros, Ana I. R. N. A.
author_sort Fernandes, Raquel
collection PubMed
description Large-scale production of microalgae and their bioactive compounds has steadily increased in response to global demand for natural compounds. Spirulina, in particular, has been used due to its high nutritional value, especially its high protein content. Promising biological functions have been associated with Spirulina extracts, mainly related to its high value added blue pigment, phycocyanin. Phycocyanin is used in several industries such as food, cosmetics, and pharmaceuticals, which increases its market value. Due to the worldwide interest and the need to replace synthetic compounds with natural ones, efforts have been made to optimize large-scale production processes and maintain phycocyanin stability, which is a highly unstable protein. The aim of this review is to update the scientific knowledge on phycocyanin applications and to describe the reported production, extraction, and purification methods, including the main physical and chemical parameters that may affect the purity, recovery, and stability of phycocyanin. By implementing different techniques such as complete cell disruption, extraction at temperatures below 45 °C and a pH of 5.5–6.0, purification through ammonium sulfate, and filtration and chromatography, both the purity and stability of phycocyanin have been significantly improved. Moreover, the use of saccharides, crosslinkers, or natural polymers as preservatives has contributed to the increased market value of phycocyanin.
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spelling pubmed-101441762023-04-29 Exploring the Benefits of Phycocyanin: From Spirulina Cultivation to Its Widespread Applications Fernandes, Raquel Campos, Joana Serra, Mónica Fidalgo, Javier Almeida, Hugo Casas, Ana Toubarro, Duarte Barros, Ana I. R. N. A. Pharmaceuticals (Basel) Review Large-scale production of microalgae and their bioactive compounds has steadily increased in response to global demand for natural compounds. Spirulina, in particular, has been used due to its high nutritional value, especially its high protein content. Promising biological functions have been associated with Spirulina extracts, mainly related to its high value added blue pigment, phycocyanin. Phycocyanin is used in several industries such as food, cosmetics, and pharmaceuticals, which increases its market value. Due to the worldwide interest and the need to replace synthetic compounds with natural ones, efforts have been made to optimize large-scale production processes and maintain phycocyanin stability, which is a highly unstable protein. The aim of this review is to update the scientific knowledge on phycocyanin applications and to describe the reported production, extraction, and purification methods, including the main physical and chemical parameters that may affect the purity, recovery, and stability of phycocyanin. By implementing different techniques such as complete cell disruption, extraction at temperatures below 45 °C and a pH of 5.5–6.0, purification through ammonium sulfate, and filtration and chromatography, both the purity and stability of phycocyanin have been significantly improved. Moreover, the use of saccharides, crosslinkers, or natural polymers as preservatives has contributed to the increased market value of phycocyanin. MDPI 2023-04-14 /pmc/articles/PMC10144176/ /pubmed/37111349 http://dx.doi.org/10.3390/ph16040592 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Review
Fernandes, Raquel
Campos, Joana
Serra, Mónica
Fidalgo, Javier
Almeida, Hugo
Casas, Ana
Toubarro, Duarte
Barros, Ana I. R. N. A.
Exploring the Benefits of Phycocyanin: From Spirulina Cultivation to Its Widespread Applications
title Exploring the Benefits of Phycocyanin: From Spirulina Cultivation to Its Widespread Applications
title_full Exploring the Benefits of Phycocyanin: From Spirulina Cultivation to Its Widespread Applications
title_fullStr Exploring the Benefits of Phycocyanin: From Spirulina Cultivation to Its Widespread Applications
title_full_unstemmed Exploring the Benefits of Phycocyanin: From Spirulina Cultivation to Its Widespread Applications
title_short Exploring the Benefits of Phycocyanin: From Spirulina Cultivation to Its Widespread Applications
title_sort exploring the benefits of phycocyanin: from spirulina cultivation to its widespread applications
topic Review
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10144176/
https://www.ncbi.nlm.nih.gov/pubmed/37111349
http://dx.doi.org/10.3390/ph16040592
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