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Supercritical Carbon Dioxide (scCO) Extraction of Phenolic Compounds from Lavender () Flowers: A Box-Behnken Experimental Optimization

Overview
Journal Molecules
Publisher MDPI
Specialty Biology
Date 2019 Sep 22
PMID 31540149
Citations 11
Authors
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Abstract

Due to their numerous health benefits associated with various diseases and anti-oxidation properties, the phenolic compounds collectively referred to as phytochemicals have attracted a lot of interest, however, a single extraction method for polyphenols has not been developed yet. Supercritical fluid extraction, a green extraction method, provides the final product without organic solvent residues. In this work the extraction of lavender was performed using supercritical carbon dioxide. A statistical experimental design based on the Box-Behnken (B-B) method was planned, and the extraction yields and total phenolic contents were measured for three different variables: pressure, temperature and extraction time. The ranges were 200-300 bar, 40-60 °C and 15-45 min. The extracts yields from scCO extraction were in the range of 4.3-9.2 wt.%. The highest yield (9.2 wt.%) was achieved at a temperature of 60 °C under the pressure of 250 bar after 45 min. It also corresponded to the highest total phenolic content (10.17 mg GAE/g extract). Based on the study, the statistically generated optimal extraction conditions to obtain the highest total phenolic compounds concentration from flowers of were a temperature of 54.5 °C, pressure of 297.9 bar, and the time of 45 min. Based on the scavenging activity percentage (AA%) of scCO extracts, it is concluded that the increase of extraction pressure had a positive influence on the increase of AA% values.

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References
1.
Zheljazkov V, Cantrell C, Astatkie T, Jeliazkova E . Distillation time effect on lavender essential oil yield and composition. J Oleo Sci. 2013; 62(4):195-9. DOI: 10.5650/jos.62.195. View

2.
Cavanagh H, Wilkinson J . Biological activities of lavender essential oil. Phytother Res. 2002; 16(4):301-8. DOI: 10.1002/ptr.1103. View

3.
Adaszynska-Skwirzynska M, Dzieciol M . Comparison of phenolic acids and flavonoids contents in various cultivars and parts of common lavender (Lavandula angustifolia) derived from Poland. Nat Prod Res. 2017; 31(21):2575-2580. DOI: 10.1080/14786419.2017.1320792. View

4.
Tyskiewicz K, Konkol M, Roj E . The Application of Supercritical Fluid Extraction in Phenolic Compounds Isolation from Natural Plant Materials. Molecules. 2018; 23(10). PMC: 6222308. DOI: 10.3390/molecules23102625. View

5.
Jerkovic I, Molnar M, Vidovic S, Vladic J, Jokic S . Supercritical CO Extraction of Lavandula angustifolia Mill. Flowers: Optimisation of Oxygenated Monoterpenes, Coumarin and Herniarin Content. Phytochem Anal. 2017; 28(6):558-566. DOI: 10.1002/pca.2705. View