Valorization of Grape Pomace: A Review of Phenolic Composition, Bioactivity, and Therapeutic Potential
Abstract
:1. Introduction
Component | Amount |
---|---|
Moisture (water) | 50–60% |
Dietary fiber | 20–30% |
Carbohydrates | 5–15% |
Protein | 8–15% |
Polyphenols | 5–10% |
Lipids | 3–7% |
Organic acids | 3–6% |
Ash | 3–5% |
2. Review Conceptualization
3. Grape Pomace Phenolic Composition
3.1. Flavonoids
3.1.1. Flavan-3-ols
3.1.2. Anthocyanins
3.1.3. Flavonols
3.2. Non-Flavonoids
3.2.1. Phenolic Acids
3.2.2. Stilbenes
4. Extraction Techniques for Polyphenols
4.1. Solid–Liquid Extraction
4.2. Ultrasound-Assisted Extraction
4.3. Microwave-Assisted Extraction
4.4. Pressurized Liquid Extraction
4.5. Supercritical Fluid Extraction
4.6. Enzyme-Assisted Extraction
4.7. Natural Deep Eutectic Solvents Extraction
4.8. Combined Techniques
4.9. Post-Extraction Purification and Isolation of Phenolic Compounds
5. Analysis of Grape Pomace Polyphenols
6. Grape Pomace Polyphenols’ Health Benefits
6.1. Antioxidant Properties
6.2. Anti-Inflammatory Properties
6.3. Metabolism of Grape Pomace Polyphenols
Study | System Studied | Quantity of Grape Pomace Administered | Main Results |
---|---|---|---|
Martínez-Maqueda et al., 2018 [28] | Human subjects with cardiometabolic risk | 8 g/day of dried GP for 6 weeks | Improved insulin sensitivity (reduction in fasting insulin), with no significant effect on other cardiometabolic risk factors. |
Calabriso et al., 2022 [145] | Caco-2/HMEC-1 co-culture model (intestinal epithelial and endothelial cells) | 1, 5, and 10 µg/mL of GP extract (gallic acid equivalent) | GP extract attenuated the expression of inflammatory markers such as IL-6 and TNF-α in a concentration-dependent manner. It also reduced endothelial cell adhesion molecule expression (VCAM-1, ICAM-1) and leukocyte adhesion under pro-inflammatory conditions. |
Chedea et al., 2019 [161] | Piglets (TOPIG hybrid) | 5% dried GP in feed for 36 days | Significant increase in antioxidant enzyme activity (SOD, CAT, GPx) in the liver, spleen, and kidneys, along with improved total antioxidant status and reduced lipid peroxidation in key organs. No significant effects on body weight or feed-to-gain ratio. |
Ayuda-Durán et al., 2019 [162] | In vivo model using Caenorhabditis elegans | 100 to 1000 µg/mL of GP extract | GP extracts rich in polyphenols increased lifespan and stress resistance in C. elegans at lower concentrations, with hormetic effects observed at higher concentrations. Improved resistance to thermally induced oxidative stress and decreased ROS accumulation. |
Annunziata et al., 2021 [163] | Ex vivo study on human neutrophils from subjects with metabolic syndrome | 1 mg/mL of Taurisolo® (GP extract) | Taurisolo® significantly reduced oxidative stress markers (ROS levels) and inflammatory cytokines (COX-2, TNF-α) while enhancing intracellular antioxidant enzyme activity (CAT, MPO). Reduced MDA levels indicate protection against lipid peroxidation. |
Recinella et al., 2022 [187] | SW-480 human colorectal cancer cells and isolated mouse colon | 1–1000 µg/mL of GP water extract | Significant reduction in SW-480 cell viability, downregulation of pro-inflammatory markers (NF-κB, COX-2, TNF-α, IL-6), increase in BAX/BCL-2 proteins ratio indicating apoptosis, and modulation of antioxidant and inflammatory response in mouse colon. |
Abbasi-Parizad et al., 2021 [188] | In vitro study using Caco-2 cells | 15 µg/mL and 25 µg/mL of GP extract | GP extract demonstrated significant anti-inflammatory properties by inhibiting IL-8 expression, with a dose-dependent response. The higher concentration (25 µg/mL) resulted in 85.6% inhibition of cytokine IL-8 expression. |
Taladrid et al., 2021 [189] | In vitro Caco-2 cell model of intestinal barrier | 1:40 diluted GP extract | GP extract reduced paracellular permeability by enhancing tight junction proteins, such as ZO-1 and occludin. Colonic digested extracts also showed protective effects on gut permeability. |
Ramos-Romero et al., 2021 [190] | Human subjects with cardiometabolic risk | 8 g/day of dried GP for 6 weeks | Responders exhibited lower Firmicutes and Prevotella levels and higher microRNA-222 levels, suggesting impaired glycaemic control improvement. Responders showed better insulin sensitivity while non-responders had no significant changes. |
Rasines-Perea et al., 2018 [191] | Spontaneously hypertensive rats (SHR) | 21 mg/kg/day of GP extract for 6 weeks | GP extract showed a “rebound effect” on systolic blood pressure, particularly in Grenache seed extract, Syrah seed extract and Alicante skin extract groups, suggesting a potential antihypertensive effect. |
Castello et al., 2018 [192] | Human subjects (10 healthy volunteers) | 250 mL of red grape pomace drink (625 mg/100 mL of total polyphenols) | Phenyl-γ-valerolactones were the most abundant and bioavailable metabolites, peaking 4–10 h post ingestion. (Epi)catechin conjugates and hydroxybenzoic acids were also bioavailable, though cleared more quickly. Metabolites remained detectable in plasma for several hours and in urine for up to 48 h. Significant inter-individual variability was observed in both plasma and urinary metabolite levels. |
7. Conclusions and Future Perspectives
Author Contributions
Funding
Conflicts of Interest
Abbreviations
References
- International Organisation of Vine and Wine. State of the World Vine and Wine Sector in 2023; OIV: Dijon, France, 2024. [Google Scholar]
- Perra, M.; Bacchetta, G.; Muntoni, A.; De Gioannis, G.; Castangia, I.; Rajha, H.N.; Manca, M.L.; Manconi, M. An Outlook on Modern and Sustainable Approaches to the Management of Grape Pomace by Integrating Green Processes, Biotechnologies and Advanced Biomedical Approaches. J. Funct. Foods 2022, 98, 105276. [Google Scholar] [CrossRef]
- Mérillon, J.-M.; Arora, J.; Ramawat, K.G. Agricultural Waste: Environmental Impact, Useful Metabolites and Energy Production; Sustainable Development and Biodiversity; Springer Nature: Singapore, 2023; Volume 31. [Google Scholar] [CrossRef]
- Lisičar Vukušić, J.; Millenautzki, T.; Reichert, L.; Saaid, A.M.; Müller, L.; Clavijo, L.; Hof, J.; Mösche, M.; Barbe, S. Conversion of Problematic Winery Waste into Valuable Substrate for Baker’s Yeast Production and Solid Biofuel: A Circular Economy Approach. Food Technol. Biotechnol. 2023, 61, 430–438. [Google Scholar] [CrossRef] [PubMed]
- Oliveira, M.; Duarte, E. Integrated Approach to Winery Waste: Waste Generation and Data Consolidation. Front. Environ. Sci. Eng. 2016, 10, 168–176. [Google Scholar] [CrossRef]
- Abreu, T.; Sousa, P.; Gonçalves, J.; Hontman, N.; Teixeira, J.; Câmara, J.S.; Perestrelo, R. Grape Pomace as a Renewable Natural Biosource of Value-Added Compounds with Potential Food Industrial Applications. Beverages 2024, 10, 45. [Google Scholar] [CrossRef]
- Moutinho, J.; Gouvinhas, I.; Domínguez-Perles, R.; Barros, A. Optimization of the Extraction Methodology of Grape Pomace Polyphenols for Food Applications. Molecules 2023, 28, 3885. [Google Scholar] [CrossRef] [PubMed]
- Pintać, D.; Majkić, T.; Torović, L.; Orčić, D.; Beara, I.; Simin, N.; Mimica–Dukić, N.; Lesjak, M. Solvent Selection for Efficient Extraction of Bioactive Compounds from Grape Pomace. Ind. Crop. Prod. 2018, 111, 379–390. [Google Scholar] [CrossRef]
- Peixoto, C.M.; Dias, M.I.; Alves, M.J.; Calhelha, R.C.; Barros, L.; Pinho, S.P.; Ferreira, I.C.F.R. Grape Pomace as a Source of Phenolic Compounds and Diverse Bioactive Properties. Food Chem. 2018, 253, 132–138. [Google Scholar] [CrossRef]
- Milinčić, D.D.; Stanisavljević, N.S.; Kostić, A.Ž.; Soković Bajić, S.; Kojić, M.O.; Gašić, U.M.; Barać, M.B.; Stanojević, S.P.; Lj Tešić, Ž.; Pešić, M.B. Phenolic Compounds and Biopotential of Grape Pomace Extracts from Prokupac Red Grape Variety. LWT 2021, 138, 110739. [Google Scholar] [CrossRef]
- Castellanos-Gallo, L.; Ballinas-Casarrubias, L.; Espinoza-Hicks, J.C.; Hernández-Ochoa, L.R.; Muñoz-Castellanos, L.N.; Zermeño-Ortega, M.R.; Borrego-Loya, A.; Salas, E. Grape Pomace Valorization by Extraction of Phenolic Polymeric Pigments: A Review. Processes 2022, 10, 469. [Google Scholar] [CrossRef]
- Fontana, A.; Antoniolli, A.; Fernández, M.A.D.; Bottini, R. Phenolics Profiling of Pomace Extracts from Different Grape Varieties Cultivated in Argentina. RSC Adv. 2017, 7, 29446–29457. [Google Scholar] [CrossRef]
- Onache, P.A.; Geana, E.-I.; Ciucure, C.T.; Florea, A.; Sumedrea, D.I.; Ionete, R.E.; Tița, O. Bioactive Phytochemical Composition of Grape Pomace Resulted from Different White and Red Grape Cultivars. Separations 2022, 9, 395. [Google Scholar] [CrossRef]
- Almanza-Oliveros, A.; Bautista-Hernández, I.; Castro-López, C.; Aguilar-Zárate, P.; Meza-Carranco, Z.; Rojas, R.; Michel, M.R.; Martínez-Ávila, G.C.G. Grape Pomace—Advances in Its Bioactivity, Health Benefits, and Food Applications. Foods 2024, 13, 580. [Google Scholar] [CrossRef] [PubMed]
- Antonić, B.; Jančíková, S.; Dordević, D.; Tremlová, B. Grape Pomace Valorization: A Systematic Review and Meta-Analysis. Foods 2020, 9, 1627. [Google Scholar] [CrossRef]
- Kokkinomagoulos, E.; Kandylis, P. Grape Pomace, an Undervalued by-Product: Industrial Reutilization within a Circular Economy Vision. Rev. Environ. Sci. Biotechnol. 2023, 22, 739–773. [Google Scholar] [CrossRef]
- Caponio, G.R.; Minervini, F.; Tamma, G.; Gambacorta, G.; De Angelis, M. Promising Application of Grape Pomace and Its Agri-Food Valorization: Source of Bioactive Molecules with Beneficial Effects. Sustainability 2023, 15, 9075. [Google Scholar] [CrossRef]
- Ghani, U. Chapter Three—Polyphenols. In Alpha-Glucosidase Inhibitors; Ghani, U., Ed.; Elsevier: Amsterdam, The Netherlands, 2020; pp. 61–100. [Google Scholar] [CrossRef]
- Rudrapal, M.; Khairnar, S.J.; Khan, J.; Dukhyil, A.B.; Ansari, M.A.; Palai, S.; Devi, R. Dietary Polyphenols and Their Role in Oxidative Stress-Induced Human Diseases: Insights Into Protective Effects, Antioxidant Potentials and Mechanism(s) of Action. Front. Pharmacol. 2022, 13, 806470. [Google Scholar] [CrossRef]
- Corso, M.; Perreau, F.; Mouille, G.; Lepiniec, L. Specialized Phenolic Compounds in Seeds: Structures, Functions, and Regulations. Plant Sci. 2020, 296, 110471. [Google Scholar] [CrossRef]
- Zagoskina, N.V.; Zubova, M.Y.; Nechaeva, T.L.; Kazantseva, V.V.; Goncharuk, E.A.; Katanskaya, V.M.; Baranova, E.N.; Aksenova, M.A. Polyphenols in Plants: Structure, Biosynthesis, Abiotic Stress Regulation, and Practical Applications (Review). Int. J. Mol. Sci. 2023, 24, 13874. [Google Scholar] [CrossRef]
- Naomi, R.; Yazid, M.D.; Teoh, S.H.; Balan, S.S.; Shariff, H.; Kumar, J.; Bahari, H.; Embong, H. Dietary Polyphenols as a Protection against Cognitive Decline: Evidence from Animal Experiments; Mechanisms and Limitations. Antioxidants 2023, 12, 1054. [Google Scholar] [CrossRef]
- Chen, S.; Wang, X.; Cheng, Y.; Gao, H.; Chen, X. A Review of Classification, Biosynthesis, Biological Activities and Potential Applications of Flavonoids. Molecules 2023, 28, 4982. [Google Scholar] [CrossRef]
- Vuolo, M.M.; Lima, V.S.; Maróstica Junior, M.R. Chapter 2—Phenolic Compounds: Structure, Classification, and Antioxidant Power. In Bioactive Compounds; Campos, M.R.S., Ed.; Woodhead Publishing: Sawston, UK, 2019; pp. 33–50. [Google Scholar] [CrossRef]
- Castro, L.E.N.; Sganzerla, W.G.; Silva, A.P.G.; John, O.D.; Barroso, T.L.C.T.; Rostagno, M.A.; Forster-Carneiro, T. Sustainable Extraction Methods for the Recovery of Polyphenolic Compounds from Grape Pomace and Its Biological Properties: A Comprehensive Review. Phytochem. Rev. 2024, 1–28. [Google Scholar] [CrossRef]
- Hegedüs, I.; Andreidesz, K.; Szentpéteri, J.L.; Kaleta, Z.; Szabó, L.; Szigeti, K.; Gulyás, B.; Padmanabhan, P.; Budan, F.; Máthé, D. The Utilization of Physiologically Active Molecular Components of Grape Seeds and Grape Marc. Int. J. Mol. Sci. 2022, 23, 11165. [Google Scholar] [CrossRef]
- Taladrid, D.; Rebollo-Hernanz, M.; Martin-Cabrejas, M.A.; Moreno-Arribas, M.V.; Bartolomé, B. Grape Pomace as a Cardiometabolic Health-Promoting Ingredient: Activity in the Intestinal Environment. Antioxidants 2023, 12, 979. [Google Scholar] [CrossRef]
- Martínez-Maqueda, D.; Zapatera, B.; Gallego-Narbón, A.; Vaquero, M.P.; Saura-Calixto, F.; Pérez-Jiménez, J. A 6-Week Supplementation with Grape Pomace to Subjects at Cardiometabolic Risk Ameliorates Insulin Sensitivity, without Affecting Other Metabolic Syndrome Markers. Food Funct. 2018, 9, 6010–6019. [Google Scholar] [CrossRef] [PubMed]
- Annunziata, G.; Maisto, M.; Schisano, C.; Ciampaglia, R.; Narciso, V.; Hassan, S.T.S.; Tenore, G.C.; Novellino, E. Effect of Grape Pomace Polyphenols with or without Pectin on TMAO Serum Levels Assessed by LC/MS-Based Assay: A Preliminary Clinical Study on Overweight/Obese Subjects. Front. Pharmacol. 2019, 10, 575. [Google Scholar] [CrossRef]
- He, J.; Giusti, M.M. Anthocyanins: Natural Colorants with Health-Promoting Properties. Annu. Rev. Food Sci. Technol. 2010, 1, 163–187. [Google Scholar] [CrossRef] [PubMed]
- Lorrain, B.; Chira, K.; Teissedre, P.-L. Phenolic Composition of Merlot and Cabernet-Sauvignon Grapes from Bordeaux Vineyard for the 2009-Vintage: Comparison to 2006, 2007 and 2008 Vintages. Food Chem. 2011, 126, 1991–1999. [Google Scholar] [CrossRef]
- Cheynier, V. Polyphenols in Foods Are More Complex than Often Thought. Am. J. Clin. Nutr. 2005, 81 (Suppl. S1), 223S–229S. [Google Scholar] [CrossRef]
- Vauzour, D.; Rodriguez-Mateos, A.; Corona, G.; Oruna-Concha, M.J.; Spencer, J.P.E. Polyphenols and Human Health: Prevention of Disease and Mechanisms of Action. Nutrients 2010, 2, 1106–1131. [Google Scholar] [CrossRef]
- Burns, J.; Yokota, T.; Ashihara, H.; Lean, M.E.J.; Crozier, A. Plant Foods and Herbal Sources of Resveratrol. J. Agric. Food Chem. 2002, 50, 3337–3340. [Google Scholar] [CrossRef]
- de Oliveira, J.B.; Egipto, R.; Laureano, O.; de Castro, R.; Pereira, G.E.; Ricardo-da-Silva, J.M. Climate Effects on Physicochemical Composition of Syrah Grapes at Low and High Altitude Sites from Tropical Grown Regions of Brazil. Food Res. Int. 2019, 121, 870–879. [Google Scholar] [CrossRef] [PubMed]
- Bocsan, I.C.; Măgureanu, D.C.; Pop, R.M.; Levai, A.M.; Macovei, Ș.O.; Pătrașca, I.M.; Chedea, V.S.; Buzoianu, A.D. Antioxidant and Anti-Inflammatory Actions of Polyphenols from Red and White Grape Pomace in Ischemic Heart Diseases. Biomedicines 2022, 10, 2337. [Google Scholar] [CrossRef] [PubMed]
- Amaya-Chantaca, D.; Flores-Gallegos, A.C.; Iliná, A.; Aguilar, C.N.; Sepúlveda-Torre, L.; Ascacio-Vadlés, J.A.; Chávez-González, M.L. Comparative Extraction Study of Grape Pomace Bioactive Compounds by Submerged and Solid-State Fermentation. J. Chem. Technol. Biotechnol. 2022, 97, 1494–1505. [Google Scholar] [CrossRef]
- Chedea, V.S.; Macovei, Ș.O.; Bocsan, I.C.; Măgureanu, D.C.; Levai, A.M.; Buzoianu, A.D.; Pop, R.M. Grape Pomace Polyphenols as a Source of Compounds for Management of Oxidative Stress and Inflammation—A Possible Alternative for Non-Steroidal Anti-Inflammatory Drugs? Molecules 2022, 27, 6826. [Google Scholar] [CrossRef]
- Panche, A.N.; Diwan, A.D.; Chandra, S.R. Flavonoids: An Overview. J. Nutr. Sci. 2016, 5, e47. [Google Scholar] [CrossRef]
- Dzah, C.S.; Duan, Y.; Zhang, H.; Serwah Boateng, N.A.; Ma, H. Latest Developments in Polyphenol Recovery and Purification from Plant By-Products: A Review. Trends Food Sci. Technol. 2020, 99, 375–388. [Google Scholar] [CrossRef]
- Abouelenein, D.; Mustafa, A.M.; Caprioli, G.; Ricciutelli, M.; Sagratini, G.; Vittori, S. Phenolic and Nutritional Profiles, and Antioxidant Activity of Grape Pomaces and Seeds from Lacrima Di Morro d’Alba and Verdicchio Varieties. Food Biosci. 2023, 53, 102808. [Google Scholar] [CrossRef]
- Pantelić, M.M.; Dabić Zagorac, D.Č.; Davidović, S.M.; Todić, S.R.; Bešlić, Z.S.; Gašić, U.M.; Tešić, Ž.L.; Natić, M.M. Identification and Quantification of Phenolic Compounds in Berry Skin, Pulp, and Seeds in 13 Grapevine Varieties Grown in Serbia. Food Chem. 2016, 211, 243–252. [Google Scholar] [CrossRef]
- Viñas, P.; Campillo, N. Chapter 17—Gas Chromatography: Mass Spectrometry Analysis of Polyphenols in Foods. In Polyphenols in Plants, 2nd ed.; Watson, R.R., Ed.; Academic Press: Cambridge, MA, USA, 2019; pp. 285–316. [Google Scholar] [CrossRef]
- Loarce, L.; Oliver-Simancas, R.; Marchante, L.; Díaz-Maroto, M.C.; Alañón, M.E. Implementation of Subcritical Water Extraction with Natural Deep Eutectic Solvents for Sustainable Extraction of Phenolic Compounds from Winemaking By-Products. Food Res. Int. 2020, 137, 109728. [Google Scholar] [CrossRef]
- Jia, M.-Z.; Fu, X.-Q.; Deng, L.; Li, Z.-L.; Dang, Y.-Y. Phenolic Extraction from Grape (Vitis vinifera) Seed via Enzyme and Microwave Co-Assisted Salting-out Extraction. Food Biosci. 2021, 40, 100919. [Google Scholar] [CrossRef]
- Gerardi, C.; Pinto, L.; Baruzzi, F.; Giovinazzo, G. Comparison of Antibacterial and Antioxidant Properties of Red (Cv. Negramaro) and White (Cv. Fiano) Skin Pomace Extracts. Molecules 2021, 26, 5918. [Google Scholar] [CrossRef]
- Guaita, M.; Motta, S.; Messina, S.; Casini, F.; Bosso, A. Polyphenolic Profile and Antioxidant Activity of Green Extracts from Grape Pomace Skins and Seeds of Italian Cultivars. Foods 2023, 12, 3880. [Google Scholar] [CrossRef] [PubMed]
- Sinrod, A.J.G.; Li, X.; Bhattacharya, M.; Paviani, B.; Wang, S.C.; Barile, D. A Second Life for Wine Grapes: Discovering Potentially Bioactive Oligosaccharides and Phenolics in Chardonnay Marc and Its Processing Fractions. LWT 2021, 144, 111192. [Google Scholar] [CrossRef]
- Allcca-Alca, E.E.; León-Calvo, N.C.; Luque-Vilca, O.M.; Martínez-Cifuentes, M.; Pérez-Correa, J.R.; Mariotti-Celis, M.S.; Huamán-Castilla, N.L. Hot Pressurized Liquid Extraction of Polyphenols from the Skin and Seeds of Vitis vinifera L. Cv. Negra Criolla Pomace a Peruvian Native Pisco Industry Waste. Agronomy 2021, 11, 866. [Google Scholar] [CrossRef]
- Huamán-Castilla, N.L.; Gajardo-Parra, N.; Pérez-Correa, J.R.; Canales, R.I.; Martínez-Cifuentes, M.; Contreras-Contreras, G.; Mariotti-Celis, M.S. Enhanced Polyphenols Recovery from Grape Pomace: A Comparison of Pressurized and Atmospheric Extractions with Deep Eutectic Solvent Aqueous Mixtures. Antioxidants 2023, 12, 1446. [Google Scholar] [CrossRef]
- Huamán-Castilla, N.L.; Campos, D.; García-Ríos, D.; Parada, J.; Martínez-Cifuentes, M.; Mariotti-Celis, M.S.; Pérez-Correa, J.R. Chemical Properties of Vitis vinifera Carménère Pomace Extracts Obtained by Hot Pressurized Liquid Extraction, and Their Inhibitory Effect on Type 2 Diabetes Mellitus Related Enzymes. Antioxidants 2021, 10, 472. [Google Scholar] [CrossRef]
- Ayvaz, H.; Cabaroglu, T.; Akyildiz, A.; Pala, C.U.; Temizkan, R.; Ağçam, E.; Ayvaz, Z.; Durazzo, A.; Lucarini, M.; Direito, R.; et al. Anthocyanins: Metabolic Digestion, Bioavailability, Therapeutic Effects, Current Pharmaceutical/Industrial Use, and Innovation Potential. Antioxidants 2022, 12, 48. [Google Scholar] [CrossRef]
- Lorrain, B.; Ky, I.; Pechamat, L.; Teissedre, P.-L. Evolution of Analysis of Polyhenols from Grapes, Wines, and Extracts. Molecules 2013, 18, 1076–1100. [Google Scholar] [CrossRef]
- de Freitas, V.A.P.; Fernandes, A.; Oliveira, J.; Teixeira, N.; Mateus, N. A Review of the Current Knowledge of Red Wine Colour. OENO One 2017, 51. [Google Scholar] [CrossRef]
- Pazir, F.; Koçak, E.; Turan, F.; Ova, G. Extraction of Anthocyanins from Grape Pomace by Using Supercritical Carbon Dioxide. J. Food Process Preserv. 2021, 45. [Google Scholar] [CrossRef]
- Loarce, L.; Oliver-Simancas, R.; Marchante, L.; Díaz-Maroto, M.C.; Alañón, M.E. Modifiers Based on Natural Deep Eutectic Mixtures to Enhance Anthocyanins Isolation from Grape Pomace by Pressurized Hot Water Extraction. LWT 2021, 149, 111889. [Google Scholar] [CrossRef]
- Lianza, M.; Antognoni, F. Green Method Comparison and Optimization of Anthocyanin Recovery from “Sangiovese” Grape Pomace: A Critical Evaluation of the Design of Experiments Approach. Molecules 2024, 29, 2679. [Google Scholar] [CrossRef] [PubMed]
- Oliveira, J.; Alhinho Da Silva, M.; Teixeira, N.; De Freitas, V.; Salas, E. Screening of Anthocyanins and Anthocyanin-Derived Pigments in Red Wine Grape Pomace Using LC-DAD/MS and MALDI-TOF Techniques. J. Agric. Food Chem. 2015, 63, 7636–7644. [Google Scholar] [CrossRef] [PubMed]
- Azman, E.M.; Yusof, N.; Chatzifragkou, A.; Charalampopoulos, D. Stability Enhancement of Anthocyanins from Blackcurrant (Ribes nigrum L.) Pomace through Intermolecular Copigmentation. Molecules 2022, 27, 5489. [Google Scholar] [CrossRef]
- Cataldo, E.; Eichmeier, A.; Mattii, G.B. Effects of Global Warming on Grapevine Berries Phenolic Compounds—A Review. Agronomy 2023, 13, 2192. [Google Scholar] [CrossRef]
- Yang, C.; Han, Y.; Tian, X.; Sajid, M.; Mehmood, S.; Wang, H.; Li, H. Phenolic Composition of Grape Pomace and Its Metabolism. Crit. Rev. Food Sci. Nutr. 2024, 64, 4865–4881. [Google Scholar] [CrossRef]
- Garrido, T.; Gizdavic-Nikolaidis, M.; Leceta, I.; Urdanpilleta, M.; Guerrero, P.; de la Caba, K.; Kilmartin, P.A. Optimizing the Extraction Process of Natural Antioxidants from Chardonnay Grape Marc Using Microwave-Assisted Extraction. Waste Manag. 2019, 88, 110–117. [Google Scholar] [CrossRef]
- Michailidis, D.; Angelis, A.; Nikolaou, P.E.; Mitakou, S.; Skaltsounis, A.L. Exploitation of Vitis vinifera, Foeniculum vulgare, Cannabis sativa and Punica granatum By-Product Seeds as Dermo-Cosmetic Agents. Molecules 2021, 26, 731. [Google Scholar] [CrossRef]
- Bruno Romanini, E.; Misturini Rodrigues, L.; Finger, A.; Perez Cantuaria Chierrito, T.; Regina da Silva Scapim, M.; Scaramal Madrona, G. Ultrasound Assisted Extraction of Bioactive Compounds from BRS Violet Grape Pomace Followed by Alginate-Ca2+ Encapsulation. Food Chem. 2021, 338, 128101. [Google Scholar] [CrossRef] [PubMed]
- Perra, M.; Cuena-Lombraña, A.; Bacchetta, G.; Manca, M.L.; Manconi, M.; Maroun, R.G.; Muntoni, A.; Tuberoso, C.I.G.; Gil, K.A.; De Gioannis, G. Combining Different Approaches for Grape Pomace Valorization: Polyphenols Extraction and Composting of the Exhausted Biomass. Sustainability 2022, 14, 10690. [Google Scholar] [CrossRef]
- Zeb, A. Phenolic Antioxidants in Foods: Chemistry, Biochemistry and Analysis; Springer International Publishing: Cham, Switzerland, 2021. [Google Scholar] [CrossRef]
- Rashmi, H.B.; Negi, P.S. Phenolic Acids from Vegetables: A Review on Processing Stability and Health Benefits. Food Res. Int. 2020, 136, 109298. [Google Scholar] [CrossRef] [PubMed]
- da Silva, R.F.; Carneiro, C.N.; de Sousa, C.B.d.C.; Gomez, F.J.; Espino, M.; Boiteux, J.; de los Á. Fernández, M.; Silva, M.F.; de S. Dias, F. Sustainable Extraction Bioactive Compounds Procedures in Medicinal Plants Based on the Principles of Green Analytical Chemistry: A Review. Microchem. J. 2022, 175, 107184. [Google Scholar] [CrossRef]
- Hornedo-Ortega, R.; González-Centeno, M.R.; Chira, K.; Jourdes, M.; Teissedre, P.-L.; Hornedo-Ortega, R.; González-Centeno, M.R.; Chira, K.; Jourdes, M.; Teissedre, P.-L. Phenolic Compounds of Grapes and Wines: Key Compounds and Implications in Sensory Perception. In Chemistry and Biochemistry of Winemaking, Wine Stabilization and Aging; IntechOpen: London, UK, 2020. [Google Scholar] [CrossRef]
- He, Z.; Yang, C.; Yuan, Y.; He, W.; Wang, H.; Li, H. Basic Constituents, Bioactive Compounds and Health-Promoting Benefits of Wine Skin Pomace: A Comprehensive Review. Crit. Rev. Food Sci. Nutr. 2023, 64, 8073–8090. [Google Scholar] [CrossRef] [PubMed]
- Rockenbach, I.I.; Rodrigues, E.; Gonzaga, L.V.; Caliari, V.; Genovese, M.I.; Gonçalves, A.E.d.S.S.; Fett, R. Phenolic Compounds Content and Antioxidant Activity in Pomace from Selected Red Grapes (Vitis vinifera L. and Vitis labrusca L.) Widely Produced in Brazil. Food Chem. 2011, 127, 174–179. [Google Scholar] [CrossRef]
- Antoniolli, A.; Fontana, A.R.; Piccoli, P.; Bottini, R. Characterization of Polyphenols and Evaluation of Antioxidant Capacity in Grape Pomace of the Cv. Malbec. Food Chem. 2015, 178, 172–178. [Google Scholar] [CrossRef] [PubMed]
- Benbouguerra, N.; Hornedo-Ortega, R.; Garcia, F.; Khawand, T.E.; Saucier, C.; Richard, T. Stilbenes in Grape Berries and Wine and Their Potential Role as Anti-Obesity Agents: A Review. Trends Food Sci. Technol. 2021, 112, 362. [Google Scholar] [CrossRef]
- Mollica, A.; Scioli, G.; Della Valle, A.; Cichelli, A.; Novellino, E.; Bauer, M.; Kamysz, W.; Llorent-Martínez, E.J.; Fernández-de Córdova, M.L.; Castillo-López, R.; et al. Phenolic Analysis and In Vitro Biological Activity of Red Wine, Pomace and Grape Seeds Oil Derived from Vitis vinifera L. Cv. Montepulciano d’Abruzzo. Antioxidants 2021, 10, 1704. [Google Scholar] [CrossRef]
- Caponio, G.R.; Noviello, M.; Calabrese, F.M.; Gambacorta, G.; Giannelli, G.; De Angelis, M. Effects of Grape Pomace Polyphenols and In Vitro Gastrointestinal Digestion on Antimicrobial Activity: Recovery of Bioactive Compounds. Antioxidants 2022, 11, 567. [Google Scholar] [CrossRef]
- Anna Malinowska, M.; Billet, K.; Drouet, S.; Munsch, T.; Unlubayir, M.; Tungmunnithum, D.; Giglioli-Guivarc’h, N.; Hano, C.; Lanoue, A. Grape Cane Extracts as Multifunctional Rejuvenating Cosmetic Ingredient: Evaluation of Sirtuin Activity, Tyrosinase Inhibition and Bioavailability Potential. Molecules 2020, 25, 2203. [Google Scholar] [CrossRef]
- Noviello, M.; Caputi, A.F.; Squeo, G.; Paradiso, V.M.; Gambacorta, G.; Caponio, F. Vine Shoots as a Source of Trans-Resveratrol and ε-Viniferin: A Study of 23 Italian Varieties. Foods 2022, 11, 553. [Google Scholar] [CrossRef]
- Jara-Palacios, M.J.; Gonçalves, S.; Heredia, F.J.; Hernanz, D.; Romano, A. Extraction of Antioxidants from Winemaking Byproducts: Effect of the Solvent on Phenolic Composition, Antioxidant and Anti-Cholinesterase Activities, and Electrochemical Behaviour. Antioxidants 2020, 9, 675. [Google Scholar] [CrossRef] [PubMed]
- Ky, I.; Lorrain, B.; Kolbas, N.; Crozier, A.; Teissedre, P.-L. Wine By-Products: Phenolic Characterization and Antioxidant Activity Evaluation of Grapes and Grape Pomaces from Six Different French Grape Varieties. Molecules 2014, 19, 482–506. [Google Scholar] [CrossRef] [PubMed]
- Daniela, T.-R.; del Socorro, L.-C.M.; Fortunata, S.-T.; Patricia, R.-M.; Felipe, G.-O.; Teresa, H.-B.M.; de la Paz, S.-C.M. Optimization of the Extraction of Bioactive Compounds from Cabernet Sauvignon Grape Pomace from Querétaro, Mexico, Using MSPD. Separations 2024, 11, 13. [Google Scholar] [CrossRef]
- Montagner, G.E.; Wingert, N.R.; Stein, C.d.S.; Moresco, R.N.; Fogaça, A.d.O.; Gomes, P. Optimization of the Extraction of Antioxidant Compounds from Grape Seed from Winemaking Waste. Sustain. Chem. Pharm. 2022, 30, 100856. [Google Scholar] [CrossRef]
- Da Porto, C.; Natolino, A. Optimization of the Extraction of Phenolic Compounds from Red Grape Marc (Vitis vinifera L.) Using. Response Surface Methodology. J. Wine Res. 2018, 29, 26–36. [Google Scholar] [CrossRef]
- Rodrigues, R.P.; Sousa, A.M.; Gando-Ferreira, L.M.; Quina, M.J. Grape Pomace as a Natural Source of Phenolic Compounds: Solvent Screening and Extraction Optimization. Molecules 2023, 28, 2715. [Google Scholar] [CrossRef]
- Chiriac, E.R.; Chiţescu, C.L.; Geană, E.-I.; Gird, C.E.; Socoteanu, R.P.; Boscencu, R. Advanced Analytical Approaches for the Analysis of Polyphenols in Plants Matrices—A Review. Separations 2021, 8, 65. [Google Scholar] [CrossRef]
- Kumar, K.; Srivastav, S.; Sharanagat, V.S. Ultrasound Assisted Extraction (UAE) of Bioactive Compounds from Fruit and Vegetable Processing by-Products: A Review. Ultrason. Sonochem. 2020, 70, 105325. [Google Scholar] [CrossRef]
- Drevelegka, I.; Goula, A.M. Recovery of Grape Pomace Phenolic Compounds through Optimized Extraction and Adsorption Processes. Chem. Eng. Process.-Process Intensif. 2020, 149, 107845. [Google Scholar] [CrossRef]
- Lama-Muñoz, A.; Contreras, M.d.M. Extraction Systems and Analytical Techniques for Food Phenolic Compounds: A Review. Foods 2022, 11, 3671. [Google Scholar] [CrossRef]
- González-Centeno, M.R.; Knoerzer, K.; Sabarez, H.; Simal, S.; Rosselló, C.; Femenia, A. Effect of Acoustic Frequency and Power Density on the Aqueous Ultrasonic-Assisted Extraction of Grape Pomace (Vitis vinifera L.)—A Response Surface Approach. Ultrason. Sonochem. 2014, 21, 2176–2184. [Google Scholar] [CrossRef] [PubMed]
- Mazza, K.E.L.; Santiago, M.C.P.A.; do Nascimento, L.S.M.; Godoy, R.L.O.; Souza, E.F.; Brígida, A.I.S.; Borguini, R.G.; Tonon, R.V. Syrah Grape Skin Valorisation Using Ultrasound-Assisted Extraction: Phenolic Compounds Recovery, Antioxidant Capacity and Phenolic Profile. Int. J. Food Sci. Technol. 2019, 54, 641–650. [Google Scholar] [CrossRef]
- González, M.; Barrios, S.; Budelli, E.; Pérez, N.; Lema, P.; Heinzen, H. Ultrasound Assisted Extraction of Bioactive Compounds in Fresh and Freeze-Dried Vitis vinifera Cv Tannat Grape Pomace. Food Bioprod. Process. 2020, 124, 378–386. [Google Scholar] [CrossRef]
- Oreopoulou, A.; Tsimogiannis, D.; Oreopoulou, V. Chapter 15—Extraction of Polyphenols From Aromatic and Medicinal Plants: An Overview of the Methods and the Effect of Extraction Parameters. In Polyphenols in Plants, 2nd ed.; Watson, R.R., Ed.; Academic Press: Cambridge, MA, USA, 2019; pp. 243–259. [Google Scholar] [CrossRef]
- Chaves, J.O.; de Souza, M.C.; da Silva, L.C.; Lachos-Perez, D.; Torres-Mayanga, P.C.; Machado, A.P.d.F.; Forster-Carneiro, T.; Vázquez-Espinosa, M.; González-de-Peredo, A.V.; Barbero, G.F.; et al. Extraction of Flavonoids From Natural Sources Using Modern Techniques. Front. Chem. 2020, 8, 507887. [Google Scholar] [CrossRef]
- Alara, O.R.; Abdurahman, N.H.; Ukaegbu, C.I. Extraction of Phenolic Compounds: A Review. Curr. Res. Food Sci. 2021, 4, 200–214. [Google Scholar] [CrossRef]
- Azaroual, L.; Liazid, A.; Mansouri, F.E.; Brigui, J.; Ruíz-Rodriguez, A.; Barbero, G.F.; Palma, M. Optimization of the Microwave-Assisted Extraction of Simple Phenolic Compounds from Grape Skins and Seeds. Agronomy 2021, 11, 1527. [Google Scholar] [CrossRef]
- Ćurko, N.; Kelšin, K.; Dragović-Uzelac, V.; Valinger, D.; Tomašević, M.; Ganić, K.K. Microwave-Assisted Extraction of Different Groups of Phenolic Compounds from Grape Skin Pomaces: Modeling and Optimization. Pol. J. Food Nutr. Sci. 2019, 69, 235–246. [Google Scholar] [CrossRef]
- Chen, J.; Thilakarathna, W.P.D.W.; Astatkie, T.; Rupasinghe, H.P.V. Optimization of Catechin and Proanthocyanidin Recovery from Grape Seeds Using Microwave-Assisted Extraction. Biomolecules 2020, 10, 243. [Google Scholar] [CrossRef]
- Vian, M.A.; Fernandez, X.; Visinoni, F.; Chemat, F. Microwave Hydrodiffusion and Gravity, a New Technique for Extraction of Essential Oils. J. Chromatogr. A 2008, 1190, 14–17. [Google Scholar] [CrossRef]
- Gomez, L.; Tiwari, B.; Garcia-Vaquero, M. Chapter 9—Emerging Extraction Techniques: Microwave-Assisted Extraction. In Sustainable Seaweed Technologies; Torres, M.D., Kraan, S., Dominguez, H., Eds.; Advances in Green and Sustainable Chemistry; Elsevier: Amsterdam, The Netherlands, 2020; pp. 207–224. [Google Scholar] [CrossRef]
- Moraes, D.P.; Farias, C.A.A.; Barin, J.S.; Ballus, C.A.; Barcia, M.T. Application of Microwave Hydrodiffusion and Gravity for Phenolic Compounds Extraction from Fruits. Food Bioprocess. Technol. 2022, 15, 1936–1947. [Google Scholar] [CrossRef]
- Moro, K.I.B.; Bender, A.B.B.; Ferreira, D.D.F.; Speroni, C.S.; Barin, J.S.; Da Silva, L.P.; Penna, N.G. Recovery of Phenolic Compounds from Grape Pomace (Vitis vinifera L.) by Microwave Hydrodiffusion and Gravity. LWT 2021, 150, 112066. [Google Scholar] [CrossRef]
- Crescente, G.; Cascone, G.; Petruzziello, A.; Bouymajane, A.; Volpe, M.G.; Russo, G.L.; Moccia, S. A Comparative Study between Microwave Hydrodiffusion and Gravity (MHG) and Ultrasound-Assisted Extraction (UAE): Chemical and Biological Characterization of Polyphenol-Enriched Extracts from Aglianico Grape Pomace. Foods 2023, 12, 2678. [Google Scholar] [CrossRef] [PubMed]
- Khataei, M.M.; Epi, S.B.H.; Lood, R.; Spégel, P.; Yamini, Y.; Turner, C. A Review of Green Solvent Extraction Techniques and Their Use in Antibiotic Residue Analysis. J. Pharm. Biomed. Anal. 2022, 209, 114487. [Google Scholar] [CrossRef] [PubMed]
- Machado, T.d.O.X.; Portugal, I.; Kodel, H.d.A.C.; Fathi, A.; Fathi, F.; Oliveira, M.B.P.P.; Dariva, C.; Souto, E.B. Pressurized Liquid Extraction as an Innovative High-Yield Greener Technique for Phenolic Compounds Recovery from Grape Pomace. Sustain. Chem. Pharm. 2024, 40, 101635. [Google Scholar] [CrossRef]
- Pereira, D.T.V.; Tarone, A.G.; Cazarin, C.B.B.; Barbero, G.F.; Martínez, J. Pressurized Liquid Extraction of Bioactive Compounds from Grape Marc. J. Food Eng. 2019, 240, 105–113. [Google Scholar] [CrossRef]
- Pedras, B.M.; Regalin, G.; Sá-Nogueira, I.; Simões, P.; Paiva, A.; Barreiros, S. Fractionation of Red Wine Grape Pomace by Subcritical Water Extraction/Hydrolysis. J. Supercrit. Fluids 2020, 160, 104793. [Google Scholar] [CrossRef]
- Silva, J.T.d.P.; Borges, M.H.; de Souza, C.A.C.; Fávaro-Trindade, C.S.; Sobral, P.J.d.A.; de Oliveira, A.L.; Martelli-Tosi, M. Grape Pomace Rich-Phenolics and Anthocyanins Extract: Production by Pressurized Liquid Extraction in Intermittent Process and Encapsulation by Spray-Drying. Foods 2024, 13, 279. [Google Scholar] [CrossRef] [PubMed]
- Huamán-Castilla, N.L.; Mariotti-Celis, M.S.; Martínez-Cifuentes, M.; Pérez-Correa, J.R. Glycerol as Alternative Co-Solvent for Water Extraction of Polyphenols from Carménère Pomace: Hot Pressurized Liquid Extraction and Computational Chemistry Calculations. Biomolecules 2020, 10, 474. [Google Scholar] [CrossRef] [PubMed]
- Ray, A.; Dubey, K.K.; Marathe, S.J.; Singhal, R. Supercritical Fluid Extraction of Bioactives from Fruit Waste and Its Therapeutic Potential. Food Biosci. 2023, 52, 102418. [Google Scholar] [CrossRef]
- Hayrapetyan, G.; Trchounian, K.; Buon, L.; Noret, L.; Pinel, B.; Lagrue, J.; Assifaoui, A. Sequential Extraction of High-Value Added Molecules from Grape Pomaces Using Supercritical Fluids with Water as a Co-Solvent. RSC Sustain. 2023, 1, 2014–2023. [Google Scholar] [CrossRef]
- Da Porto, C.; Decorti, D.; Natolino, A. Water and Ethanol as Co-Solvent in Supercritical Fluid Extraction of Proanthocyanidins from Grape Marc: A Comparison and a Proposal. J. Supercrit. Fluids 2014, 87, 1–8. [Google Scholar] [CrossRef]
- Zhabayeva, A.N.; Velyamov, M.T.; Nakypbekova, N.E.; Dolgikh, S.G.; Adekenov, S.M. Supercritical Fluid Extraction in Resveratrol Isolation Technology. Eurasian Chem.-Technol. J. 2021, 23, 119–124. [Google Scholar] [CrossRef]
- Gligor, O.; Mocan, A.; Moldovan, C.; Locatelli, M.; Crișan, G.; Ferreira, I.C.F.R. Enzyme-Assisted Extractions of Polyphenols—A Comprehensive Review. Trends Food Sci. Technol. 2019, 88, 302–315. [Google Scholar] [CrossRef]
- Machado, A.P.d.F.; Geraldi, M.V.; do Nascimento, R.d.P.; Moya, A.M.T.M.; Vezza, T.; Diez-Echave, P.; Gálvez, J.J.; Cazarin, C.B.B.; Maróstica Júnior, M.R. Polyphenols from Food By-Products: An Alternative or Complementary Therapy to IBD Conventional Treatments. Food Res. Int. 2021, 140, 110018. [Google Scholar] [CrossRef]
- Gil-Martín, E.; Forbes-Hernández, T.; Romero, A.; Cianciosi, D.; Giampieri, F.; Battino, M. Influence of the Extraction Method on the Recovery of Bioactive Phenolic Compounds from Food Industry By-Products. Food Chem. 2022, 378, 131918. [Google Scholar] [CrossRef]
- Ferri, M.; Lima, V.; Zappi, A.; Fernando, A.L.; Melucci, D.; Tassoni, A. Phytochemicals Recovery from Grape Pomace: Extraction Improvement and Chemometric Study. Foods 2023, 12, 959. [Google Scholar] [CrossRef]
- Meini, M.-R.; Cabezudo, I.; Boschetti, C.E.; Romanini, D. Recovery of Phenolic Antioxidants from Syrah Grape Pomace through the Optimization of an Enzymatic Extraction Process. Food Chem. 2019, 283, 257–264. [Google Scholar] [CrossRef] [PubMed]
- Choi, Y.H.; Van Spronsen, J.; Dai, Y.; Verberne, M.; Hollmann, F.; Arends, I.W.C.E.; Witkamp, G.-J.; Verpoorte, R. Are Natural Deep Eutectic Solvents the Missing Link in Understanding Cellular Metabolism and Physiology? Plant Physiol. 2011, 156, 1701–1705. [Google Scholar] [CrossRef]
- Palos-Hernández, A.; Gutiérrez Fernández, M.Y.; Escuadra Burrieza, J.; Pérez-Iglesias, J.L.; González-Paramás, A.M. Obtaining Green Extracts Rich in Phenolic Compounds from Underexploited Food By-Products Using Natural Deep Eutectic Solvents. Opportunities and Challenges. Sustain. Chem. Pharm. 2022, 29, 100773. [Google Scholar] [CrossRef]
- González-Laredo, R.F.; Sayago-Monreal, V.I.; Moreno-Jiménez, M.R.; Rocha-Guzmán, N.E.; Gallegos-Infante, J.A.; Landeros-Macías, L.F.; Rosales-Castro, M. Natural Deep Eutectic Solvents (NaDES) as an Emerging Technology for the Valorisation of Natural Products and Agro-Food Residues: A Review. Int. J. Food Sci. Technol. 2023, 58, 6660–6673. [Google Scholar] [CrossRef]
- Neto, R.T.; Santos, S.A.O.; Oliveira, J.; Silvestre, A.J.D. Impact of Eutectic Solvents Utilization in the Microwave Assisted Extraction of Proanthocyanidins from Grape Pomace. Molecules 2021, 27, 246. [Google Scholar] [CrossRef] [PubMed]
- Panić, M.; Gunjević, V.; Cravotto, G.; Radojčić Redovniković, I. Enabling Technologies for the Extraction of Grape-Pomace Anthocyanins Using Natural Deep Eutectic Solvents in up-to-Half-Litre Batches Extraction of Grape-Pomace Anthocyanins Using NADES. Food Chem. 2019, 300, 125185. [Google Scholar] [CrossRef] [PubMed]
- Cvjetko Bubalo, M.; Ćurko, N.; Tomašević, M.; Kovačević Ganić, K.; Radojčić Redovniković, I. Green Extraction of Grape Skin Phenolics by Using Deep Eutectic Solvents. Food Chem. 2016, 200, 159–166. [Google Scholar] [CrossRef]
- Dabetic, N.; Todorovic, V.; Malenovic, A.; Sobajic, S.; Markovic, B. Optimization of Extraction and HPLC–MS/MS Profiling of Phenolic Compounds from Red Grape Seed Extracts Using Conventional and Deep Eutectic Solvents. Antioxidants 2022, 11, 1595. [Google Scholar] [CrossRef] [PubMed]
- Dabetić, N.; Todorović, V.; Panić, M.; Radojčić Redovniković, I.; Šobajić, S. Impact of Deep Eutectic Solvents on Extraction of Polyphenols from Grape Seeds and Skin. Appl. Sci. 2020, 10, 4830. [Google Scholar] [CrossRef]
- Cañadas, R.; Sáenz de Miera, B.; Méndez, P.; González, E.J.; González-Miquel, M. Enhanced Recovery of Natural Antioxidants from Grape Waste Using Natural Eutectic Solvents-Based Microwave-Assisted Extraction. Molecules 2023, 28, 1153. [Google Scholar] [CrossRef]
- Radošević, K.; Ćurko, N.; Gaurina Srček, V.; Cvjetko Bubalo, M.; Tomašević, M.; Kovačević Ganić, K.; Radojčić Redovniković, I. Natural Deep Eutectic Solvents as Beneficial Extractants for Enhancement of Plant Extracts Bioactivity. LWT 2016, 73, 45–51. [Google Scholar] [CrossRef]
- Punzo, A.; Porru, E.; Silla, A.; Simoni, P.; Galletti, P.; Roda, A.; Tagliavini, E.; Samorì, C.; Caliceti, C. Grape Pomace for Topical Application: Green NaDES Sustainable Extraction, Skin Permeation Studies, Antioxidant and Anti-Inflammatory Activities Characterization in 3D Human Keratinocytes. Biomolecules 2021, 11, 1181. [Google Scholar] [CrossRef]
- Alibante, A.; Lakka, A.; Bozinou, E.; Chatzilazarou, A.; Lalas, S.; Makris, D.P. Integrated Green Process for the Extraction of Red Grape Pomace Antioxidant Polyphenols Using Ultrasound-Assisted Pretreatment and β-Cyclodextrin. Beverages 2021, 7, 59. [Google Scholar] [CrossRef]
- Da Porto, C.; Natolino, A.; Decorti, D. The Combined Extraction of Polyphenols from Grape Marc: Ultrasound Assisted Extraction Followed by Supercritical CO2 Extraction of Ultrasound-Raffinate. LWT-Food Sci. Technol. 2015, 61, 98–104. [Google Scholar] [CrossRef]
- Dranca, F.; Oroian, M. Kinetic Improvement of Bioactive Compounds Extraction from Red Grape (Vitis vinifera Moldova) Pomace by Ultrasonic Treatment. Foods 2019, 8, 353. [Google Scholar] [CrossRef] [PubMed]
- Cascaes Teles, A.S.; Hidalgo Chávez, D.W.; Zarur Coelho, M.A.; Rosenthal, A.; Fortes Gottschalk, L.M.; Tonon, R.V. Combination of Enzyme-Assisted Extraction and High Hydrostatic Pressure for Phenolic Compounds Recovery from Grape Pomace. J. Food Eng. 2021, 288, 110128. [Google Scholar] [CrossRef]
- Marianne, L.-C.; Lucía, A.-G.; de Jesús, M.-S.M.; Eric Leonardo, H.-M.; Mendoza-Sánchez, M. Optimization of the Green Extraction Process of Antioxidants Derived from Grape Pomace. Sustain. Chem. Pharm. 2024, 37, 101396. [Google Scholar] [CrossRef]
- Drosou, C.; Kyriakopoulou, K.; Bimpilas, A.; Tsimogiannis, D.; Krokida, M. A Comparative Study on Different Extraction Techniques to Recover Red Grape Pomace Polyphenols from Vinification Byproducts. Ind. Crops Prod. 2015, 75, 141–149. [Google Scholar] [CrossRef]
- Caldas, T.W.; Mazza, K.E.L.; Teles, A.S.C.; Mattos, G.N.; Brígida, A.I.S.; Conte-Junior, C.A.; Borguini, R.G.; Godoy, R.L.O.; Cabral, L.M.C.; Tonon, R.V. Phenolic Compounds Recovery from Grape Skin Using Conventional and Non-Conventional Extraction Methods. Ind. Crops Prod. 2018, 111, 86–91. [Google Scholar] [CrossRef]
- Yammine, S.; Delsart, C.; Vitrac, X.; Peuchot, M.M.; Ghidossi, R. Characterisation of Polyphenols and Antioxidant Potential of Red and White Pomace By-Product Extracts Using Subcritical Water Extraction. OENO One 2020, 54, 263–278. [Google Scholar] [CrossRef]
- Kumar, H.; Guleria, S.; Kimta, N.; Nepovimova, E.; Dhalaria, R.; Dhanjal, D.S.; Sethi, N.; Alomar, S.Y.; Kuca, K. Selected Fruit Pomaces: Nutritional Profile, Health Benefits, and Applications in Functional Foods and Feeds. Curr. Res. Food Sci. 2024, 9, 100791. [Google Scholar] [CrossRef]
- Coelho, C.; Bagala, F.; Gougeon, R.D.; Schmitt-Kopplin, P. Capillary Electrophoresis in Wine Science. Methods Mol. Biol. 2016, 1483, 509–523. [Google Scholar] [CrossRef] [PubMed]
- Rockenbach, I.I.; Jungfer, E.; Ritter, C.; Santiago-Schübel, B.; Thiele, B.; Fett, R.; Galensa, R. Characterization of Flavan-3-Ols in Seeds of Grape Pomace by CE, HPLC-DAD-MSn and LC-ESI-FTICR-MS. Food Res. Int. 2012, 48, 848–855. [Google Scholar] [CrossRef]
- Bakota, E.L.; Winkler-Moser, J.K.; Berhow, M.A.; Palmquist, D.E.; Liu, S.X. Antioxidant Activity of Hybrid Grape Pomace Extracts Derived from Midwestern Grapes in Bulk Oil and Oil-in-Water Emulsions. J. Am. Oil Chem. Soc. 2015, 92, 1333–1348. [Google Scholar] [CrossRef]
- Liang, Z.; Pai, A.; Liu, D.; Luo, J.; Wu, J.; Fang, Z.; Zhang, P. Optimizing Extraction Method of Aroma Compounds from Grape Pomace. J. Food Sci. 2020, 85, 4225–4240. [Google Scholar] [CrossRef] [PubMed]
- Abreu, T.; Jasmins, G.; Bettencourt, C.; Teixeira, J.; Câmara, J.S.; Perestrelo, R. Tracing the Volatilomic Fingerprint of Grape Pomace as a Powerful Approach for Its Valorization. Curr. Res. Food Sci. 2023, 7, 100608. [Google Scholar] [CrossRef] [PubMed]
- Zdunić, G.; Gođevac, D.; Šavikin, K.; Krivokuća, D.; Mihailović, M.; Pržić, Z.; Marković, N. Grape Seed Polyphenols and Fatty Acids of Autochthonous Prokupac Vine Variety from Serbia. Chem. Biodivers. 2019, 16, e1900053. [Google Scholar] [CrossRef]
- Gutiérrez-Escobar, R.; Aliaño-González, M.J.; Cantos-Villar, E. Wine Polyphenol Content and Its Influence on Wine Quality and Properties: A Review. Molecules 2021, 26, 718. [Google Scholar] [CrossRef]
- Carpentieri, S.; Ferrari, G.; Pataro, G. Optimization of Pulsed Electric Fields-Assisted Extraction of Phenolic Compounds From White Grape Pomace Using Response Surface Methodology. Front. Sustain. Food Syst. 2022, 6. [Google Scholar] [CrossRef]
- Calabriso, N.; Massaro, M.; Scoditti, E.; Verri, T.; Barca, A.; Gerardi, C.; Giovinazzo, G.; Carluccio, M.A. Grape Pomace Extract Attenuates Inflammatory Response in Intestinal Epithelial and Endothelial Cells: Potential Health-Promoting Properties in Bowel Inflammation. Nutrients 2022, 14, 1175. [Google Scholar] [CrossRef]
- Myrtsi, E.D.; Koulocheri, S.D.; Iliopoulos, V.; Haroutounian, S.A. High-Throughput Quantification of 32 Bioactive Antioxidant Phenolic Compounds in Grapes, Wines and Vinification Byproducts by LC–MS/MS. Antioxidants 2021, 10, 1174. [Google Scholar] [CrossRef]
- Matos, M.S.; Romero-Díez, R.; Álvarez, A.; Bronze, M.R.; Rodríguez-Rojo, S.; Mato, R.B.; Cocero, M.J.; Matias, A.A. Polyphenol-Rich Extracts Obtained from Winemaking Waste Streams as Natural Ingredients with Cosmeceutical Potential. Antioxidants 2019, 8, 355. [Google Scholar] [CrossRef] [PubMed]
- Dreisewerd, K. Recent Methodological Advances in MALDI Mass Spectrometry. Anal. Bioanal. Chem. 2014, 406, 2261–2278. [Google Scholar] [CrossRef]
- Pérez-Ramírez, I.F.; Reynoso-Camacho, R.; Saura-Calixto, F.; Pérez-Jiménez, J. Comprehensive Characterization of Extractable and Nonextractable Phenolic Compounds by High-Performance Liquid Chromatography–Electrospray Ionization–Quadrupole Time-of-Flight of a Grape/Pomegranate Pomace Dietary Supplement. J. Agric. Food Chem. 2018, 66, 661–673. [Google Scholar] [CrossRef]
- Vona, R.; Pallotta, L.; Cappelletti, M.; Severi, C.; Matarrese, P. The Impact of Oxidative Stress in Human Pathology: Focus on Gastrointestinal Disorders. Antioxidants 2021, 10, 201. [Google Scholar] [CrossRef] [PubMed]
- Medrano-Macías, J.; Flores-Gallegos, A.C.; Nava-Reyna, E.; Morales, I.; Tortella, G.; Solís-Gaona, S.; Benavides-Mendoza, A. Reactive Oxygen, Nitrogen, and Sulfur Species (RONSS) as a Metabolic Cluster for Signaling and Biostimulation of Plants: An Overview. Plants 2022, 11, 3203. [Google Scholar] [CrossRef] [PubMed]
- Jomova, K.; Raptova, R.; Alomar, S.Y.; Alwasel, S.H.; Nepovimova, E.; Kuca, K.; Valko, M. Reactive Oxygen Species, Toxicity, Oxidative Stress, and Antioxidants: Chronic Diseases and Aging. Arch. Toxicol. 2023, 97, 2499–2574. [Google Scholar] [CrossRef]
- Santos-Sánchez, N.F.; Salas-Coronado, R.; Villanueva-Cañongo, C.; Hernández-Carlos, B.; Santos-Sánchez, N.F.; Salas-Coronado, R.; Villanueva-Cañongo, C.; Hernández-Carlos, B. Antioxidant Compounds and Their Antioxidant Mechanism. In Antioxidants; IntechOpen: London, UK, 2019. [Google Scholar] [CrossRef]
- Martemucci, G.; Costagliola, C.; Mariano, M.; D’andrea, L.; Napolitano, P.; D’Alessandro, A.G. Free Radical Properties, Source and Targets, Antioxidant Consumption and Health. Oxygen 2022, 2, 48–78. [Google Scholar] [CrossRef]
- Jena, A.B.; Samal, R.R.; Bhol, N.K.; Duttaroy, A.K. Cellular Red-Ox System in Health and Disease: The Latest Update. Biomed. Pharmacother. 2023, 162, 114606. [Google Scholar] [CrossRef]
- Constantin, O.E.; Stoica, F.; Rațu, R.N.; Stănciuc, N.; Bahrim, G.E.; Râpeanu, G. Bioactive Components, Applications, Extractions, and Health Benefits of Winery By-Products from a Circular Bioeconomy Perspective: A Review. Antioxidants 2024, 13, 100. [Google Scholar] [CrossRef]
- Sundaram Sanjay, S.; Shukla, A.K. Mechanism of Antioxidant Activity. In Potential Therapeutic Applications of Nano-antioxidants; Sundaram Sanjay, S., Shukla, A.K., Eds.; Springer: Singapore, 2021; pp. 83–99. [Google Scholar] [CrossRef]
- Zeb, A. Molecular Mechanism of Phenolic Antioxidants. In Phenolic Antioxidants in Foods: Chemistry, Biochemistry and Analysis; Zeb, A., Ed.; Springer International Publishing: Cham, Switzerland, 2021; pp. 413–434. [Google Scholar] [CrossRef]
- Ilyas, T.; Chowdhary, P.; Chaurasia, D.; Gnansounou, E.; Pandey, A.; Chaturvedi, P. Sustainable Green Processing of Grape Pomace for the Production of Value-Added Products: An Overview. Environ. Technol. Innov. 2021, 23, 101592. [Google Scholar] [CrossRef]
- Chedea, V.S.; Tomoiagǎ, L.L.; Macovei, Ş.O.; Mǎgureanu, D.C.; Iliescu, M.L.; Bocsan, I.C.; Buzoianu, A.D.; Voşloban, C.M.; Pop, R.M. Antioxidant/Pro-Oxidant Actions of Polyphenols From Grapevine and Wine By-Products-Base for Complementary Therapy in Ischemic Heart Diseases. Front. Cardiovasc. Med. 2021, 8, 750508. [Google Scholar] [CrossRef] [PubMed]
- Chedea, V.S.; Palade, L.M.; Pelmus, R.S.; Dragomir, C.; Taranu, I. Red Grape Pomace Rich in Polyphenols Diet Increases the Antioxidant Status in Key Organs—Kidneys, Liver, and Spleen of Piglets. Animals 2019, 9, 149. [Google Scholar] [CrossRef]
- Ayuda-Durán, B.; González-Manzano, S.; Gil-Sánchez, I.; Moreno-Arribas, M.V.; Bartolomé, B.; Sanz-Buenhombre, M.; Guadarrama, A.; Santos-Buelga, C.; González-Paramás, A.M. Antioxidant Characterization and Biological Effects of Grape Pomace Extracts Supplementation in Caenorhabditis Elegans. Foods 2019, 8, 75. [Google Scholar] [CrossRef]
- Annunziata, G.; Capó, X.; Quetglas-Llabrés, M.M.; Monserrat-Mesquida, M.; Tejada, S.; Tur, J.A.; Ciampaglia, R.; Guerra, F.; Maisto, M.; Tenore, G.C.; et al. Ex Vivo Study on the Antioxidant Activity of a Winemaking By-Product Polyphenolic Extract (Taurisolo®) on Human Neutrophils. Antioxidants 2021, 10, 1009. [Google Scholar] [CrossRef] [PubMed]
- Christodoulou, M.C.; Orellana Palacios, J.C.; Hesami, G.; Jafarzadeh, S.; Lorenzo, J.M.; Domínguez, R.; Moreno, A.; Hadidi, M. Spectrophotometric Methods for Measurement of Antioxidant Activity in Food and Pharmaceuticals. Antioxidants 2022, 11, 2213. [Google Scholar] [CrossRef]
- Xu, Y.; Burton, S.; Kim, C.; Sismour, E. Phenolic Compounds, Antioxidant, and Antibacterial Properties of Pomace Extracts from Four Virginia-grown Grape Varieties. Food Sci. Nutr. 2015, 4, 125–133. [Google Scholar] [CrossRef] [PubMed]
- Hoyos-Arbeláez, J.; Vázquez, M.; Contreras-Calderón, J. Electrochemical Methods as a Tool for Determining the Antioxidant Capacity of Food and Beverages: A Review. Food Chem. 2017, 221, 1371–1381. [Google Scholar] [CrossRef] [PubMed]
- Vasyliev, G.S.; Vorobyova, V.I.; Linyucheva, O.V. Evaluation of Reducing Ability and Antioxidant Activity of Fruit Pomace Extracts by Spectrophotometric and Electrochemical Methods. J. Anal. Methods Chem. 2020, 2020, 8869436. [Google Scholar] [CrossRef]
- José Jara-Palacios, M.; Hernanz, D.; Luisa Escudero-Gilete, M.; Heredia, F.J. Antioxidant Potential of White Grape Pomaces: Phenolic Composition and Antioxidant Capacity Measured by Spectrophotometric and Cyclic Voltammetry Methods. Food Res. Int. 2014, 66, 150–157. [Google Scholar] [CrossRef]
- José Jara-Palacios, M.; Luisa Escudero-Gilete, M.; Miguel Hernández-Hierro, J.; Heredia, F.J.; Hernanz, D. Cyclic Voltammetry to Evaluate the Antioxidant Potential in Winemaking By-Products. Talanta 2017, 165, 211–215. [Google Scholar] [CrossRef]
- Cotoras, M.; Vivanco, H.; Melo, R.; Aguirre, M.; Silva, E.; Mendoza, L. In Vitro and in Vivo Evaluation of the Antioxidant and Prooxidant Activity of Phenolic Compounds Obtained from Grape (Vitis vinifera) Pomace. Molecules 2014, 19, 21154–21167. [Google Scholar] [CrossRef]
- Spissu, Y.; Gil, K.A.; Dore, A.; Sanna, G.; Palmieri, G.; Sanna, A.; Cossu, M.; Belhadj, F.; Gharbi, B.; Pinna, M.B.; et al. Anti- and Pro-Oxidant Activity of Polyphenols Extracts of Syrah and Chardonnay Grapevine Pomaces on Melanoma Cancer Cells. Antioxidants 2022, 12, 80. [Google Scholar] [CrossRef]
- Chen, L.; Deng, H.; Cui, H.; Fang, J.; Zuo, Z.; Deng, J.; Li, Y.; Wang, X.; Zhao, L. Inflammatory Responses and Inflammation-Associated Diseases in Organs. Oncotarget 2017, 9, 7204–7218. [Google Scholar] [CrossRef]
- Kishore, N.; Kumar, P.; Shanker, K.; Verma, A.K. Human Disorders Associated with Inflammation and the Evolving Role of Natural Products to Overcome. Eur. J. Med. Chem. 2019, 179, 272–309. [Google Scholar] [CrossRef] [PubMed]
- Zhao, H.; Wu, L.; Yan, G.; Chen, Y.; Zhou, M.; Wu, Y.; Li, Y. Inflammation and Tumor Progression: Signaling Pathways and Targeted Intervention. Sig Transduct. Target. Ther. 2021, 6, 263. [Google Scholar] [CrossRef]
- Hannoodee, S.; Nasuruddin, D.N. Acute Inflammatory Response. In StatPearls; StatPearls Publishing: Treasure Island, FL, USA, 2024. [Google Scholar]
- Mosser, D.M.; Hamidzadeh, K.; Goncalves, R. Macrophages and the Maintenance of Homeostasis. Cell Mol. Immunol. 2021, 18, 579–587. [Google Scholar] [CrossRef]
- Basheer, A.S.; Abas, F.; Othman, I.; Naidu, R. Role of Inflammatory Mediators, Macrophages, and Neutrophils in Glioma Maintenance and Progression: Mechanistic Understanding and Potential Therapeutic Applications. Cancers 2021, 13, 4226. [Google Scholar] [CrossRef]
- Pérez, S.; Rius-Pérez, S. Macrophage Polarization and Reprogramming in Acute Inflammation: A Redox Perspective. Antioxidants 2022, 11, 1394. [Google Scholar] [CrossRef]
- Furman, D.; Campisi, J.; Verdin, E.; Carrera-Bastos, P.; Targ, S.; Franceschi, C.; Ferrucci, L.; Gilroy, D.W.; Fasano, A.; Miller, G.W.; et al. Chronic Inflammation in the Etiology of Disease across the Life Span. Nat. Med. 2019, 25, 1822–1832. [Google Scholar] [CrossRef] [PubMed]
- Pahwa, R.; Goyal, A.; Jialal, I. Chronic Inflammation. In StatPearls; StatPearls Publishing: Treasure Island, FL, USA, 2024. [Google Scholar]
- Yasir, M.; Goyal, A.; Sonthalia, S. Corticosteroid Adverse Effects. In StatPearls; StatPearls Publishing: Treasure Island, FL, USA, 2024. [Google Scholar]
- Scarpa, E.-S.; Antonelli, A.; Balercia, G.; Sabatelli, S.; Maggi, F.; Caprioli, G.; Giacchetti, G.; Micucci, M. Antioxidant, Anti-Inflammatory, Anti-Diabetic, and Pro-Osteogenic Activities of Polyphenols for the Treatment of Two Different Chronic Diseases: Type 2 Diabetes Mellitus and Osteoporosis. Biomolecules 2024, 14, 836. [Google Scholar] [CrossRef]
- Bouyahya, A.; Omari, N.E.; EL Hachlafi, N.; Jemly, M.E.; Hakkour, M.; Balahbib, A.; El Menyiy, N.; Bakrim, S.; Naceiri Mrabti, H.; Khouchlaa, A.; et al. Chemical Compounds of Berry-Derived Polyphenols and Their Effects on Gut Microbiota, Inflammation, and Cancer. Molecules 2022, 27, 3286. [Google Scholar] [CrossRef] [PubMed]
- Winiarska-Mieczan, A.; Kwiecień, M.; Jachimowicz-Rogowska, K.; Donaldson, J.; Tomaszewska, E.; Baranowska-Wójcik, E. Anti-Inflammatory, Antioxidant, and Neuroprotective Effects of Polyphenols—Polyphenols as an Element of Diet Therapy in Depressive Disorders. Int. J. Mol. Sci. 2023, 24, 2258. [Google Scholar] [CrossRef]
- Li, Y.; Deng, W.; Wu, L.; Chen, S.; Zheng, Z.; Song, H. Anti-Inflammatory Effects of Polyphenols from Plum (Prunus salicina Lindl) on RAW264.7 Macrophages Induced by Monosodium Urate and Potential Mechanisms. Foods 2023, 12, 254. [Google Scholar] [CrossRef]
- Benbouguerra, N.; Valls-Fonayet, J.; Krisa, S.; Garcia, F.; Saucier, C.; Richard, T.; Hornedo-Ortega, R. Polyphenolic Characterization of Merlot, Tannat and Syrah Skin Extracts at Different Degrees of Maturity and Anti-Inflammatory Potential in RAW 264.7 Cells. Foods 2021, 10, 541. [Google Scholar] [CrossRef] [PubMed]
- Recinella, L.; Chiavaroli, A.; Veschi, S.; Cama, A.; Acquaviva, A.; Libero, M.L.; Leone, S.; Di Simone, S.C.; Pagano, E.; Zengin, G.; et al. A Grape (Vitis vinifera L.) Pomace Water Extract Modulates Inflammatory and Immune Response in SW-480 Cells and Isolated Mouse Colon. Phytother. Res. 2022, 36, 4620–4630. [Google Scholar] [CrossRef] [PubMed]
- Abbasi-Parizad, P.; De Nisi, P.; Scaglia, B.; Scarafoni, A.; Pilu, S.; Adani, F. Recovery of Phenolic Compounds from Agro-Industrial by-Products: Evaluating Antiradical Activities and Immunomodulatory Properties. Food Bioprod. Process. 2021, 127, 338–348. [Google Scholar] [CrossRef]
- Taladrid, D.; González de Llano, D.; Zorraquín-Peña, I.; Tamargo, A.; Silva, M.; Molinero, N.; Moreno-Arribas, M.V.; Bartolomé, B. Gastrointestinal Digestion of a Grape Pomace Extract: Impact on Intestinal Barrier Permeability and Interaction with Gut Microbiome. Nutrients 2021, 13, 2467. [Google Scholar] [CrossRef]
- Ramos-Romero, S.; Léniz, A.; Martínez-Maqueda, D.; Amézqueta, S.; Fernández-Quintela, A.; Hereu, M.; Torres, J.L.; Portillo, M.P.; Pérez-Jiménez, J. Inter-Individual Variability in Insulin Response after Grape Pomace Supplementation in Subjects at High Cardiometabolic Risk: Role of Microbiota and miRNA. Mol. Nutr. Food Res. 2021, 65, 2000113. [Google Scholar] [CrossRef] [PubMed]
- Rasines-Perea, Z.; Ky, I.; Cros, G.; Crozier, A.; Teissedre, P.-L. Grape Pomace: Antioxidant Activity, Potential Effect Against Hypertension and Metabolites Characterization after Intake. Diseases 2018, 6, 60. [Google Scholar] [CrossRef]
- Castello, F.; Costabile, G.; Bresciani, L.; Tassotti, M.; Naviglio, D.; Luongo, D.; Ciciola, P.; Vitale, M.; Vetrani, C.; Galaverna, G.; et al. Bioavailability and Pharmacokinetic Profile of Grape Pomace Phenolic Compounds in Humans. Arch. Biochem. Biophys. 2018, 646, 1–9. [Google Scholar] [CrossRef]
Extraction Method | Raw Material | Main Compounds Identified | Phenolic Content | Reference |
---|---|---|---|---|
UAE (Ethanol, 25 kHz, 20 °C, 60 min) | Agiorgitiko red GP | Delphinidin, Malvidin-3-O-glucoside, Myricetin, Quercetin | TPC: 438,984 ± 4034 ppm GAE | Drosou et al., 2015 [133] |
UAE (Temperature: 80 °C, Time: 4 min) and SFE | Red GP | Proanthocyanidins | TPC: 3493 ± 61 mg GAE/100 g DW | Da Porto et al., 2015 [129] |
UAE (Frequency: 2458 MHz, Power Density: 1000 W/L, Time: 30 min, Temperature: 28 ± 3 °C) | Red skin GP | Malvidin-3-O-glucoside, Quercetin, Catechin, Myricetin | TPC: 104 mg GAE/g | Caldas et al., 2018 [134] |
MAE (Time: 10 min, Power: 93 W, Temperature: 24 ± 1 °C) | Chardonnay GP | Flavanols, Quercetin, Kaempferol, Gallic acid | TPC: 1.21 ± 0.04 mg GAE/mL | Garrido et al., 2019 [62] |
Subcritical Water Extraction (SWE) (Time: 10 min, Pressure: 10.34 MPa) and NaDES | Red GP | Catechin, Epicatechin, Procyanidins, Resveratrol | Catechin and epicatechin: 45.05% and 47.98% increase | Loarce et al., 2020 [44] |
SLE (Ethanol, Ethanol –Water, Water) | White GP (whole, skins, seeds, stems) | Gallic acid, Catechin, Quercetin-3-O-glucoside, Kaempferol-3-O-glucoside | TPC: 2797.67–9839.86 mg GAE/100 g | Jara-Palacios et al., 2020 [78] |
SWE (Temperature: 100–200 °C, Pressure: 25 × 105 Pa) | GP (red and white varieties) | Gallic acid, Procyanidins, Malvidin-3-O-glucoside | TPC: 11.67 ± 1.67–72.52 ± 2.43 mg/g DW | Yammine et al., 2020 [135] |
NaDES and PHWE | Tempranillo GP | Anthocyanins | Total Anthocyanin Content: 19.62–214.57 mg malvidin-3-O-glucoside eq./L | Loarce et al., 2021 [56] |
UAE (Temperature: 80 °C, Time: 30 min) and β-CD | Muscat GP | Gallic acid, Catechin, Quercetin | TPC: 57.47 mg GAE/g DW | Alibante et al., 2021 [128] |
SLE (Ethanol–Water (40/60); 16 h; In Dark) | Negramaro and Fiano whole GP and GP skins | Gallic acid, Caffeic acid, Catechin, Quercetin-3-O-glucoside, Anthocyanins | TPC: 36.8 ± 5.03–127.87 ± 8.03 mg GAE/g DW | Gerardi et al., 2021 [46] |
MHG (Power: 400 W, Temperature: Approx. 80 °C, Time: Less Than 10 min) | Merlot and Cabernet Sauvignon GP | Gallic acid, Syringic acid, Quercetin | TPC: 118.1 mg GAE/g DW | Moro et al., 2021 [100] |
NaDES and MAE | White GP | Gallic acid, p-Coumaric acid, Ferulic acid, Quercetin | TPC: 5.94 ± 0.29–43.73 ± 2.19 mg GAE/g DW | Cañadas et al., 2023 [125] |
SLE (Ethanol–Water (1:1), Sonication: 20 min, Stirring: 2 h) with SPE | White and red GP | Catechin, Gallic acid, t-Caftaric acid, Quercetin, Kaempferol | TPC: 144–298 mg GAE/g DW (skins) and 327–540 mg GAE/g DW (seeds) | Guaita et al., 2023 [47] |
NaDES and ASE (10 MPa, 90 °C) | Carménère red GP | Gallic acid, Caffeic acid, Quercetin | TPC: 33.39 ± 0.59–62.44 ± 1.67 mg GAE/g DW | Huamán-Castilla et al., 2023 [50] |
SLE (Ethanol, HCl) | Touriga Nacional and Sousão GP | 3-O-Caffeoylquinic acid, Quercetin-3-O-glucoside, Malvidin-3-O-glucoside | TPC: 44.93 mg GAE/g | Moutinho et al., 2023 [7] |
UAE (Temperature: 20 °C, Time: 30 min) and MHG (Temperature: 80 °C, Time: 10 min, Power Density: 2 W/g) with SPE | Aglianico red GP | Catechin, Malvidin-3-O-glucoside chloride, Cyanidin chloride | TPC: 6.5 to 8.5 times higher in MHG | Crescente et al., 2023 [101] |
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Karastergiou, A.; Gancel, A.-L.; Jourdes, M.; Teissedre, P.-L. Valorization of Grape Pomace: A Review of Phenolic Composition, Bioactivity, and Therapeutic Potential. Antioxidants 2024, 13, 1131. https://doi.org/10.3390/antiox13091131
Karastergiou A, Gancel A-L, Jourdes M, Teissedre P-L. Valorization of Grape Pomace: A Review of Phenolic Composition, Bioactivity, and Therapeutic Potential. Antioxidants. 2024; 13(9):1131. https://doi.org/10.3390/antiox13091131
Chicago/Turabian StyleKarastergiou, Anna, Anne-Laure Gancel, Michael Jourdes, and Pierre-Louis Teissedre. 2024. "Valorization of Grape Pomace: A Review of Phenolic Composition, Bioactivity, and Therapeutic Potential" Antioxidants 13, no. 9: 1131. https://doi.org/10.3390/antiox13091131
APA StyleKarastergiou, A., Gancel, A. -L., Jourdes, M., & Teissedre, P. -L. (2024). Valorization of Grape Pomace: A Review of Phenolic Composition, Bioactivity, and Therapeutic Potential. Antioxidants, 13(9), 1131. https://doi.org/10.3390/antiox13091131