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      Ultrasound-assisted extraction of polyphenols from avocado residues: Modeling and optimization using response surface methodology and artificial neural networks

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          Abstract

          Abstract Seed and peel avocado (Persea Americana) are agro-industrial residues whose structure presents an important quantity of source of polyphenolic components which can be obtained by various extraction methods. Response surface methodology (RSM) and the artificial neural network (ANN) were used to model and optimize the conditions of ultrasound-assisted extraction (UAE) (25 W/L) with respect to temperature (40 - 60 °C), concentration of ethanol/water (30% - 60%) and extraction time (40 - 80 min) in obtaining phenolic from avocado residues. RSM and ANN allowed finding an optimal phenolic content for seeds (145.170 - 146.569 mg GAE/g; 49 °C, 41.2% and 65.5 - 65.1 min) and peels (124.050 - 125.187 mg GAE/g; 50.9 °C, 49.5% and 61.8 min). The models estimated between predicted and experimental values were significant (p < 0.05), presenting a high correlation (R2> 0.9907) and a low root mean square error for the prediction of phenolics (RMSE < 0.9437 mg GAE/g). The results of this study allow the design of efficient, economic and ecologically friendly extraction procedures in the industry for obtaining bioactive metabolites from avocado residues.

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          Most cited references45

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          Plant Phenolics: Extraction, Analysis and Their Antioxidant and Anticancer Properties

          Phenolics are broadly distributed in the plant kingdom and are the most abundant secondary metabolites of plants. Plant polyphenols have drawn increasing attention due to their potent antioxidant properties and their marked effects in the prevention of various oxidative stress associated diseases such as cancer. In the last few years, the identification and development of phenolic compounds or extracts from different plants has become a major area of health- and medical-related research. This review provides an updated and comprehensive overview on phenolic extraction, purification, analysis and quantification as well as their antioxidant properties. Furthermore, the anticancer effects of phenolics in-vitro and in-vivo animal models are viewed, including recent human intervention studies. Finally, possible mechanisms of action involving antioxidant and pro-oxidant activity as well as interference with cellular functions are discussed.
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            Ultrasonically assisted extraction (UAE) and microwave assisted extraction (MAE) of functional compounds from plant materials

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              Microwave-assisted extraction of phenolics from pomegranate peels: Optimization, kinetics, and comparison with ultrasounds extraction

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                Author and article information

                Journal
                agro
                Scientia Agropecuaria
                Scientia Agropecuaria
                Universidad Nacional de Trujillo. Facultad de Ciencias Agropecuarias (Trujillo, , Peru )
                2077-9917
                January 2021
                : 12
                : 1
                : 33-40
                Affiliations
                [2] Lima Lima orgnameUniversidad Nacional Agraria La Molina orgdiv1Escuela de Posgrado orgdiv2Especialidad de Tecnología de Alimentos Peru
                [1] Chimbote Ancash orgnameUniversidad Nacional del Santa Peru
                Article
                S2077-99172021000100033 S2077-9917(21)01200100033
                10.17268/sci.agropecu.2021.004
                1b51d65d-c118-454d-a84e-22cf16eb3d40

                This work is licensed under a Creative Commons Attribution-NonCommercial 4.0 International License.

                History
                : 23 July 2020
                : 23 December 2020
                Page count
                Figures: 0, Tables: 0, Equations: 0, References: 45, Pages: 8
                Product

                SciELO Peru

                Categories
                Research Articles

                Avocado residues,ultrasound-assisted extraction,phenolic components,response surface methodology,artificial neural network

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