Unlocking the Bioactive Potential of Pomegranate Peels: A Green Extraction Approach
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Published:2023-09-23
Issue:10
Volume:12
Page:1796
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ISSN:2076-3921
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Container-title:Antioxidants
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language:en
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Short-container-title:Antioxidants
Author:
Grillo Giorgio1ORCID, Capaldi Giorgio1ORCID, Radošević Kristina2ORCID, Jakopović Željko3ORCID, Markov Ksenija3, Brncic Mladen4ORCID, Gallina Lorenzo1ORCID, Calcio Gaudino Emanuela1ORCID, Cravotto Giancarlo1ORCID
Affiliation:
1. Department of Drug Science and Technology, University of Turin, Via P. Giuria 9, 10235 Turin, Italy 2. Laboratory for Cell Cultures, Applications and Biotransformations, Department of Biochemical Engineering, Faculty of Food Technology and Biotechnology, University of Zagreb, Pierottojeva Ulica 6, 10000 Zagreb, Croatia 3. Laboratory for General Microbiology and Food Microbiology, Department of Biochemical Engineering, Faculty of Food Technology and Biotechnology, University of Zagreb, Pierottojeva Ulica 6, 10000 Zagreb, Croatia 4. Department of Food Engineering, University of Zagreb, Pierottijeva 6, 10000 Zagreb, Croatia
Abstract
Pomegranate (Punica granatum L.) is well known for its high content of bioactives, including polyphenols, flavonoids, and tannins, which have been shown to exhibit a wide range of biological activities, such as antioxidant, antimicrobial, and anticancer effects. It is worth noting that the majority of these molecules are found in the peels, which are usually disposed of after processing, causing a significant amount of waste, amounting to more than 3.6 million t/y. This work investigates microwave-assisted extraction (MAE) in water for the recovery of antioxidants from pomegranate peels (PP), including the optimisation of temperature and extraction times. The total phenolic, anthocyanin, flavonoid, and tannin contents of the recovered extracts were determined, as well as their antioxidant activities, which were found to be 356.35 mgGAE/gExtr, 303.97 µgCy3G/gExtr, 37.28 mgQE/gExtr, 56.48 mgGAE/gExtr, and 5.72 mmolTE/gExtr, respectively (according to the adopted reference). All results were compared with those obtained using a conventional protocol. In addition, the potential for water recycling by means of downstream nanofiltration in optimised MAE was investigated, leading to overall water reuse of approx. 75%. Power consumption (20.92 W/mgGAE) and common green metrics, Reaction Mass Efficiency (RME), E-Factor, and the Process Mass Intensiti/efficiency (PMI, PME), were considered in evaluating the proposed PP valorisation strategy. Finally, the biological activities of the main products were assessed. The antimicrobial properties of the PP extracts against three Gram-positive and three Gram-negative bacteria and their antiproliferative activity towards human cancer cells were tested. S. aureus bacteria was the most susceptible to the PP extracts. All tested products displayed antiproliferative activity against HeLa cells when higher concentrations were tested, with D-PP/NF (obtained from dried PP and sequential nanofiltration) being the most effective. This result was also confirmed via clonogenic analysis, which generally indicated the possible anti-cancer activity of pomegranate peel extracts obtained using this green approach.
Subject
Cell Biology,Clinical Biochemistry,Molecular Biology,Biochemistry,Physiology
Reference66 articles.
1. FAO (2023, May 06). Technical Platform on the Measurement and Reduction of Food Loss and Waste. Available online: https://www.fao.org/platform-food-loss-waste/en/. 2. Food waste generation and industrial uses: A review;Girotto;Waste Manag.,2015 3. Calcio Gaudino, E., Colletti, A., Grillo, G., Tabasso, S., and Cravotto, G. (2020). Emerging Processing Technologies for the Recovery of Valuable Bioactive Compounds from Potato Peels. Foods, 9. 4. Cravotto, C., Grillo, G., Binello, A., Gallina, L., Olivares-Vicente, M., Herranz-López, M., Micol, V., Barrajón-Catalán, E., and Cravotto, G. (2022). Bioactive Antioxidant Compounds from Chestnut Peels through Semi-Industrial Subcritical Water Extraction. Antioxidants, 11. 5. Grillo, G., Boffa, L., Talarico, S., Solarino, R., Binello, A., Cavaglià, G., Bensaid, S., Telysheva, G., and Cravotto, G. (2020). Batch and Flow Ultrasound-Assisted Extraction of Grape Stalks: Process Intensification Design up to a Multi-Kilo Scale. Antioxidants, 9.
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