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Abstract

Green-Extraction Methodologies for Recovering Bioactive Compounds from Endemic Fruits: Corcolen (Azara dentata) †

by
Lucia Cuesta Ramos
1,
Joanna Jastrzębska
1,2,
Katarzyna Dawidowicz
1,2,
Mario Juan Simirgiotis
3,
Yuthana Phimolsiripol
1,4,
Francisco J. Barba
1 and
Juan Manuel Castagnini
1,*
1
Preventive Medicine and Public Health, Food Science, Toxicology and Forensic Medicine Department, Faculty of Pharmacy, Universitat de València, 46100 Valencia, Spain
2
Faculty of Pharmacy, Medical University of Lodz, 90-151 Lodz, Poland
3
Institute of Pharmacy, Faculty of Sciences, Campus Isla Teja, Universidad Austral de Chile, Valdivia 5090000, Chile
4
Faculty of Agro-Industry, Chiang Mai University, Chiang Mai 50200, Thailand
*
Author to whom correspondence should be addressed.
Presented at the 3rd International Electronic Conference on Foods: Food, Microbiome, and Health—A Celebration of the 10th Anniversary of Foods’ Impact on Our Wellbeing, 1–15 October 2022; Available online: https://sciforum.net/event/Foods2022.
Biol. Life Sci. Forum 2022, 18(1), 45; https://doi.org/10.3390/Foods2022-13007
Published: 30 September 2022

Abstract

:
There is a great demand for the recovery of bioactive compounds from by-products and side streams in the food and cosmetic industries. More sustainable extraction methodologies are being chosen, such as pulsed electric field (PEF) assisted extraction, supercritical fluid extraction (SFE), pressurized liquid extraction (PLE), and ultrasound-assisted extraction. Endemic fruits represent a great and little-explored source of biomolecules that can become potential candidates for the study of new drugs and support the use of native species in functional foods or nutraceuticals. Some phenolics from Chilean fruits proved to have potential in the prevention of non-communicable or chronic diseases. The study aimed to produce polyphenolic-rich extracts from corcolen (Azara dentata Ruiz & Pav) by non-thermal methodologies. Two extracts were obtained by means of SFE, using CO2 and ethanol as co-solvents, and PLE using water as a solvent. The total antioxidant capacity, total phenolic content, carbohydrates, and proteins of both extracts were analyzed. The resulting phenolic content of the extracts obtained by SFE and PLE was 5.37 ± 0.38 and 21.17 ± 0.57 mg GAE/g sample, respectively. The total antioxidant capacity was 3.22 ± 0.47 and 18.05 ± 1.25 mg Trolox/g sample for the SFE and PLE extracts, respectively. Moreover, corcolen composition was characterized by LC-TTOF chromatography, being chrysoeriol 7-O-glucoside, isorhamnetin 7-O-rhamnoside, isorhoifolin, rhoifolin, kaempferol 3-O-feruloyl-sophoroside 7-O-glucoside, kaempferol 3-O-feruloyl-sophorotrioside, spinacetin 3-O-(2-p-coumaroylglucosyl) (1->6)-apiosyl (1->2)-glucoside, cyanidin 3-O-(-xylosyl-(6-caffeoyl-glucosyl)-galactoside), the eight more predominant flavonoids. The different extraction methodologies allowed the obtaining of extracts with an interesting antioxidant capacity, rich in polyphenols, that could potentially find several applications as dietary supplements, ingredients for cosmetic formulations, or additives in food.

Supplementary Materials

The presentation material of this work is available online at https://www.mdpi.com/article/10.3390/Foods2022-13007/s1.

Author Contributions

Conceptualization, F.J.B. and J.M.C.; methodology, L.C.R.; validation, K.D. and J.J.; formal analysis, L.C.R., K.D. and J.J.; investigation, L.C.R., K.D. and J.J.; resources, M.J.S. and F.J.B.; data curation, L.C.R.; writing—original draft preparation, L.C.R.; writing—review and editing, F.J.B., J.M.C., Y.P., M.J.S.; supervision, F.J.B. and J.M.C.; project administration, F.J.B. and J.M.C.; funding acquisition, F.J.B. All authors have read and agreed to the published version of the manuscript.

Funding

University of Valencia, Spain through the project OTR2021-22219SERVI supported by the Universidad Austral de Chile, Chile.

Institutional Review Board Statement

Not applicable.

Informed Consent Statement

Not applicable.

Data Availability Statement

The data presented in this study are available on request from the corresponding author. The data are not publicly available due to privacy.

Acknowledgments

Juan Manuel Castagnini is beneficiary of the grant (ZA21-028) for the requalification of the Spanish university system from the Ministry of Universities of the Government of Spain, modality “Maria Zambrano”, financed by the European Union, NextGeneration EU through the project “Extraction of bioactive compounds from food matrices using innovative and sustainable technologies (EXTRABIO)”. Francisco J. Barba and Mario J. Simirgiotis are members of the CYTED network “P320RT0186—Aprovechamiento sostenible de recursos biomásicos vegetales iberoamericanos en cosmética (BIOLATES)”.

Conflicts of Interest

The authors declare no conflict of interest.
Publisher’s Note: MDPI stays neutral with regard to jurisdictional claims in published maps and institutional affiliations.

Share and Cite

MDPI and ACS Style

Cuesta Ramos, L.; Jastrzębska, J.; Dawidowicz, K.; Simirgiotis, M.J.; Phimolsiripol, Y.; Barba, F.J.; Castagnini, J.M. Green-Extraction Methodologies for Recovering Bioactive Compounds from Endemic Fruits: Corcolen (Azara dentata). Biol. Life Sci. Forum 2022, 18, 45. https://doi.org/10.3390/Foods2022-13007

AMA Style

Cuesta Ramos L, Jastrzębska J, Dawidowicz K, Simirgiotis MJ, Phimolsiripol Y, Barba FJ, Castagnini JM. Green-Extraction Methodologies for Recovering Bioactive Compounds from Endemic Fruits: Corcolen (Azara dentata). Biology and Life Sciences Forum. 2022; 18(1):45. https://doi.org/10.3390/Foods2022-13007

Chicago/Turabian Style

Cuesta Ramos, Lucia, Joanna Jastrzębska, Katarzyna Dawidowicz, Mario Juan Simirgiotis, Yuthana Phimolsiripol, Francisco J. Barba, and Juan Manuel Castagnini. 2022. "Green-Extraction Methodologies for Recovering Bioactive Compounds from Endemic Fruits: Corcolen (Azara dentata)" Biology and Life Sciences Forum 18, no. 1: 45. https://doi.org/10.3390/Foods2022-13007

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