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Eicosapentaenoic acid extraction from nannochloropsis gaditana using carbon dioxide at supercritical conditions

Authors :
Dino Musmarra
Tiziana Marino
Giuseppe Di Sanzo
Antonio Molino
Despina Karatza
Angela Iovine
Anna Spagnoletta
Vincenzo Larocca
Sanjeet Mehariya
Maria Martino
Molino, Antonio
Martino, Maria
Larocca, Vincenzo
Di Sanzo, Giuseppe
Spagnoletta, Anna
Marino, Tiziana
Karatza, Despina
Iovine, Angela
Mehariya, Sanjeet
Musmarra, Dino
Molino, A.
Martino, M.
Larocca, V.
Di Sanzo, G.
Spagnoletta, A.
Marino, T.
Karatza, D.
Iovine, A.
Mehariya, S.
Musmarra, D.
Source :
Marine Drugs, Vol 17, Iss 2, p 132 (2019), Marine Drugs, Volume 17, Issue 2
Publication Year :
2019

Abstract

This research shows that carbon dioxide supercritical fluid (CO2-SF) is an emerging technology for the extraction of high interest compounds for applications in the manufacturing of pharmaceuticals, nutraceuticals, and cosmetics from microalgae. The purpose of this study is to recover fatty acids (FAs) and, more precisely, eicosapentaenoic acid (EPA) from Nannochloropsis gaditana biomass by CO2-SF extraction. In the paper, the effect of mechanical pre-treatment was evaluated with the aim of increasing FAs recovery. Extraction was performed at a pressure range of 250&ndash<br />550 bars and a CO2 flow rate of 7.24 and 14.48 g/min, while temperature was fixed at 50 or 65 &deg<br />C. The effect of these parameters on the extraction yield was assessed at each extraction cycle, 20 min each, for a total extraction time of 100 min. Furthermore, the effect of biomass loading on EPA recovery was evaluated. The highest EPA extraction yield, i.e., 11.50 mg/g, corresponding to 27.4% EPA recovery, was obtained at 65 &deg<br />C and 250 bars with a CO2 flow rate of 7.24 g/min and 1.0 g biomass loading. The increased CO2 flow rate from 7.24 to 14.48 g/min enhanced the cumulative EPA recovery at 250 bars. The purity of EPA could be improved by biomass loading of 2.01 g, even if recovery was reduced.

Details

Language :
English
Database :
OpenAIRE
Journal :
Marine Drugs, Vol 17, Iss 2, p 132 (2019), Marine Drugs, Volume 17, Issue 2
Accession number :
edsair.doi.dedup.....d7de8f84c6725fdab6ab85d59b6d962a