Extraction of Flavonoids From Natural Sources Using Modern Techniques
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Ana Paula da Fonseca Machado | Gerardo Fernández Barbero | Mauricio Ariel Rostagno | Jaísa Oliveira Chaves | Mariana Corrêa de Souza | Laise Capelasso da Silva | Daniel Lachos-Perez | Paulo César Torres-Mayanga | Tânia Forster-Carneiro | Mercedes Vázquez-Espinosa | Ana Velasco González-de-Peredo | G. F. Barbero | T. Forster‐Carneiro | Mercedes Vázquez-Espinosa | A. V. González-de-Peredo | M. Rostagno | D. Lachos‐Perez | P. C. Torres-Mayanga | Mariana C. de Souza | J. Chaves | L. C. da Silva
[1] Alejandro Cifuentes,et al. Supercritical fluid extraction: Recent advances and applications. , 2010, Journal of chromatography. A.
[2] F. Sahena,et al. Application of supercritical CO2 in lipid extraction – A review , 2009 .
[3] Chunzhao Liu,et al. Comparison of Techniques for the Extraction of Flavonoids from Cultured Cells of Saussurea medusa Maxim , 2005 .
[4] Hui Teng,et al. Optimization of microwave-assisted extraction for anthocyanins, polyphenols, and antioxidants from raspberry (Rubus Coreanus Miq.) using response surface methodology. , 2013, Journal of separation science.
[5] A. Segura‐Carretero,et al. Optimization of microwave‐assisted extraction and pressurized liquid extraction of phenolic compounds from Moringa oleifera leaves by multiresponse surface methodology , 2016, Electrophoresis.
[6] J. H. Christensen,et al. Pressurised liquid extraction of flavonoids in onions. Method development and validation. , 2009, Talanta.
[7] P. Tu,et al. Simultaneous determination of 15 flavonoids in Epimedium using pressurized liquid extraction and high-performance liquid chromatography. , 2007, Journal of chromatography. A.
[8] Ana Paula da Fonseca Machado,et al. Extraction of polyphenols and antioxidants from pomegranate peel using ultrasound: influence of temperature, frequency and operation mode , 2019, International Journal of Food Science & Technology.
[9] F. Chau,et al. Ultrasound-assisted extraction of ginseng saponins from ginseng roots and cultured ginseng cells. , 2001, Ultrasonics sonochemistry.
[10] F. Barba,et al. Optimization of microwave-assisted extraction of polyphenols from Quercus bark , 2015 .
[11] Hua-Bin Li,et al. Microwave-Assisted Extraction of Phenolic Compounds from Melastoma sanguineum Fruit: Optimization and Identification , 2018, Molecules.
[12] S. Samuel,et al. Flavonoids in Cancer and Apoptosis , 2018, Cancers.
[13] J. V. García-Pérez,et al. Ultrasound-Assisted Extraction of Natural Products , 2011 .
[14] B. Aliakbarian,et al. Extraction of phenolics from Vitis vinifera wastes using non-conventional techniques , 2010 .
[15] S. Chirumbolo,et al. Targeting Cancer with Phytochemicals via Their Fine Tuning of the Cell Survival Signaling Pathways , 2018, International journal of molecular sciences.
[16] Joong-Ho Kwon,et al. Green Extraction Methods for Polyphenols from Plant Matrices and Their Byproducts: A Review. , 2017, Comprehensive reviews in food science and food safety.
[17] David Arráez-Román,et al. Microwave‐assisted extraction for Hibiscus sabdariffa bioactive compounds , 2018, Journal of pharmaceutical and biomedical analysis.
[18] Jae-Won Lee,et al. Ultrasound-assisted extraction and antioxidant activity of phenolic and flavonoid compounds and ascorbic acid from rugosa rose (Rosa rugosa Thunb.) fruit , 2017, Food Science and Biotechnology.
[19] I. Jerković,et al. Extraction of bioactive phenolics from black poplar (Populus nigra L.) buds by supercritical CO2 and its optimization by response surface methodology , 2018, Journal of pharmaceutical and biomedical analysis.
[20] Xiao-hua Xiao,et al. Application of ionic liquids in the microwave-assisted extraction of trans-resveratrol from Rhizma Polygoni Cuspidati. , 2007, Journal of chromatography. A.
[21] P. A. Mello,et al. Chapter 2 – Microwave Heating , 2014 .
[22] Shirish H. Sonawane,et al. Intensification of extraction of natural products using ultrasonic irradiations—A review of current status , 2012 .
[23] P. Su,et al. Microwave-assisted extraction of rutin and quercetin from the stalks of Euonymus alatus (Thunb.) Sieb. , 2009, Phytochemical analysis : PCA.
[24] Md. Mokhlesur Rahman,et al. Techniques for extraction of bioactive compounds from plant materials: A review , 2013 .
[25] Mário Roberto Maróstica,et al. Subcritical water extraction of flavanones from defatted orange peel , 2018, The Journal of Supercritical Fluids.
[26] Farid Chemat,et al. Ultrasound-assisted extraction of polyphenols (flavanone glycosides) from orange (Citrus sinensis L.) peel , 2010 .
[27] Chunzhao Liu,et al. Microwave-assisted extraction of solanesol from tobacco leaves. , 2006, Journal of chromatography. A.
[28] M. G. Bernardo-Gil,et al. Supercritical fluid extraction vs conventional extraction of myrtle leaves and berries: Comparison of antioxidant activity and identification of bioactive compounds , 2016 .
[29] Jun Liu,et al. Supercritical fluid extraction of flavonoids from Maydis stigma and its nitrite-scavenging ability , 2011 .
[30] Lujia Han,et al. Microwave-assisted extraction of flavonoids from Radix Astragali , 2008 .
[31] Gerardo F. Barbero,et al. Pressurized liquid extraction of bioactive compounds from grape marc , 2019, Journal of Food Engineering.
[32] I. Carvalho,et al. Modelling of Microwave Assisted Extraction (MAE) of Anthocyanins (TMA) , 2017 .
[33] Huizhou Liu,et al. Microwave-assisted extraction of tea polyphenols and tea caffeine from green tea leaves , 2003 .
[34] Y. Zu,et al. Optimization of microwave-assisted extraction of cajaninstilbene acid and pinostrobin from pigeonpea leaves followed by RP-HPLC-DAD determination , 2010 .
[35] Xunyou Tang,et al. Sequential extraction and enrichment of flavonoids from Euonymus alatus by ultrasonic-assisted polyethylene glycol-based extraction coupled to temperature-induced cloud point extraction. , 2020, Ultrasonics sonochemistry.
[36] J. Maran,et al. Box-Behnken design based multi-response analysis and optimization of supercritical carbon dioxide extraction of bioactive flavonoid compounds from tea (Camellia sinensis L.) leaves , 2013, Journal of Food Science and Technology.
[37] Uswatun Hasanah Zaidan,et al. Optimization of an Ultrasound-Assisted Extraction Condition for Flavonoid Compounds from Cocoa Shells (Theobroma cacao) Using Response Surface Methodology , 2019, Molecules.
[38] Vivekananda Mandal,et al. Critical analysis of research trends and issues in microwave assisted extraction of phenolics: Have we really done enough , 2016 .
[39] P. Jha,et al. Optimization of ultrasound and microwave assisted extractions of polyphenols from black rice (Oryza sativa cv. Poireton) husk , 2017, Journal of Food Science and Technology.
[40] A. Hafidi,et al. Cloud point extraction of phenolic compounds from pretreated olive mill wastewater , 2014 .
[41] S. M. Pourmortazavi,et al. Supercritical fluid extraction in plant essential and volatile oil analysis. , 2007, Journal of chromatography. A.
[42] Zhenyu Zhao,et al. Optimization of ultrasound, microwave and Soxhlet extraction of flavonoids from Millettia speciosa Champ. and evaluation of antioxidant activities in vitro , 2017, Journal of Food Measurement and Characterization.
[43] A. L. Nunes,et al. Pressurized liquid extraction of polyphenols from Goldenberry: Influence on antioxidant activity and chemical composition , 2018, Food and Bioproducts Processing.
[44] Chung-Hung Chan,et al. Microwave-assisted extractions of active ingredients from plants. , 2011, Journal of chromatography. A.
[45] Yogita V Chavan,et al. Ultrasound-assisted extraction (UAE) of bioactives from arecanut (Areca catechu L.) and optimization study using response surface methodology , 2013 .
[46] M. Ashokkumar,et al. Ultrasonic Recovery and Modification of Food Ingredients , 2011 .
[47] M. Palma,et al. Microwave assisted extraction of anthocyanins from grape skins , 2011 .
[48] E. Ibáñez,et al. Extraction and Characterization of Bioactive Compounds with Health Benefits from Marine Resources: Macro and Micro Algae, Cyanobacteria, and Invertebrates , 2012 .
[49] Guangyan Pan,et al. Optimization of ultrasound-assisted extraction (UAE) of flavonoids compounds (FC) from hawthorn seed (HS). , 2012, Ultrasonics sonochemistry.
[50] G. Tompsett,et al. Sequential subcritical water process applied to orange peel for the recovery flavanones and sugars , 2020 .
[51] M. Biesaga. Influence of extraction methods on stability of flavonoids. , 2011, Journal of chromatography. A.
[52] Weiyan Chen,et al. Simultaneous Optimization for Ultrasound-Assisted Extraction and Antioxidant Activity of Flavonoids from Sophora flavescens Using Response Surface Methodology , 2018, Molecules.
[53] M. Bronze,et al. Supercritical fluid extraction of Arbutus unedo distillate residues – Impact of process conditions on antiproliferative response of extracts , 2020 .
[54] C. Anandharamakrishnan,et al. Techniques for Extraction of Green Tea Polyphenols: A Review , 2015, Food and Bioprocess Technology.
[55] E. Ibáñez,et al. Response surface methodology to optimize supercritical carbon dioxide/co-solvent extraction of brown onion skin by-product as source of nutraceutical compounds. , 2018, Food chemistry.
[56] S. Sahin,et al. A novel approach for olive leaf extraction through ultrasound technology : Response surface methodology versus artificial neural networks , 2014, Korean Journal of Chemical Engineering.
[57] I. Zaidul,et al. Comparison of different extraction methods for the extraction of major bioactive flavonoid compounds from spearmint (Mentha spicata L.) leaves , 2011 .
[58] Brijesh K. Tiwari,et al. Ultrasound: A clean, green extraction technology , 2015 .
[59] A. Rawson,et al. Comparison of different ultrasound assisted extraction techniques for pectin from tomato processing waste. , 2019, Ultrasonics sonochemistry.
[60] Thomas Leong,et al. THE FUNDAMENTALS OF POWER ULTRASOUND - A REVIEW , 2011 .
[61] P. S. Vankar,et al. Canna indica flower: New source of anthocyanins. , 2010, Plant physiology and biochemistry : PPB.
[62] Cristina L Ramirez,et al. Valorization of an agroindustrial soybean residue by supercritical fluid extraction of phytochemical compounds , 2019, The Journal of Supercritical Fluids.
[63] R. Chi,et al. Optimization of Microwave-assisted Ethanol Reflux Extraction Process of Flavonoids and Saponins Simultaneously from Radix Astragali Using Response Surface Methodology , 2016 .
[64] Xiao Dong Chen,et al. Optimization of ethanol-water extraction of lignans from flaxseed , 2007 .
[65] Jing-fu Liu,et al. Application of ionic liquids in analytical chemistry , 2005 .
[66] Wen Huang,et al. Optimised ultrasonic-assisted extraction of flavonoids from Folium eucommiae and evaluation of antioxidant activity in multi-test systems in vitro , 2009 .
[67] S. Cunha,et al. Extraction techniques with deep eutectic solvents , 2018, TrAC Trends in Analytical Chemistry.
[68] O. Gortzi,et al. Recovery of Natural Antioxidants from Olive Mill Wastewater Using Genapol-X080 , 2008 .
[69] Ivan Panchev,et al. The effect of microwave heating of fresh orange peels on the fruit tissue and quality of extracted pectin , 2004 .
[70] Xiao-hua Xiao,et al. Application of ionic liquids in the microwave-assisted extraction of polyphenolic compounds from medicinal plants. , 2009, Talanta.
[71] Huaguo Chen,et al. Optimized microwave‐assistant extraction combined ultrasonic pretreatment of flavonoids from Periploca forrestii Schltr. and evaluation of its anti‐allergic activity , 2017, Electrophoresis.
[72] S. Sahin,et al. Optimization and Kinetic Studies of Ultrasound-Assisted Extraction on Polyphenols from Satsuma Mandarin (Citrus Unshiu Marc.) Leaves , 2017 .
[73] M. Tena. Pressurized Liquid Extraction , 2018 .
[74] V. Orsat,et al. Microwave-Assisted Extraction of Flavonoids , 2017 .
[75] Zhaobao Xiang,et al. Ultrasonic-Microwave Assisted Extraction of Total Flavonoids from Scutellaria baicalensis Using Response Surface Methodology , 2017, Pharmaceutical Chemistry Journal.
[76] Z. Ristovski,et al. To Sonicate or Not to Sonicate PM Filters: Reactive Oxygen Species Generation Upon Ultrasonic Irradiation , 2014 .
[77] V. Camel,et al. Recent extraction techniques for solid matrices-supercritical fluid extraction, pressurized fluid extraction and microwave-assisted extraction: their potential and pitfalls. , 2001, The Analyst.
[78] Guangling Jiao,et al. Extraction of anthocyanins from haskap berry pulp using supercritical carbon dioxide: Influence of co-solvent composition and pretreatment , 2018, LWT.
[79] Weiwei Zhai,et al. Optimization of microwave-assisted extraction of anthocyanins from purple corn (Zea mays L.) cob and identification with HPLC–MS , 2010 .
[80] M. Antunes-Ricardo,et al. Extraction of isorhamnetin conjugates from Opuntia ficus-indica (L.) Mill using supercritical fluids , 2017 .
[81] S. Mandal,et al. Design and performance evaluation of a microwave based low carbon yielding extraction technique for naturally occurring bioactive triterpenoid: Oleanolic acid , 2010 .
[82] D. Makris,et al. Novel lactic acid-based natural deep eutectic solvents: Efficiency in the ultrasound-assisted extraction of antioxidant polyphenols from common native Greek medicinal plants , 2016 .
[83] A. Pandey,et al. Chemistry and Biological Activities of Flavonoids: An Overview , 2013, TheScientificWorldJournal.
[84] Valentín. Chapter 4. , 1998, Annals of the ICRP.
[85] T. H. Roberts,et al. Techniques for Analysis of Plant Phenolic Compounds , 2013, Molecules.
[86] K. Knoerzer,et al. Effect of acoustic frequency and power density on the aqueous ultrasonic-assisted extraction of grape pomace (Vitis vinifera L.) - a response surface approach. , 2014, Ultrasonics sonochemistry.
[87] Alejandro Cifuentes,et al. Plants, seaweeds, microalgae and food by-products as natural sources of functional ingredients obtained using pressurized liquid extraction and supercritical fluid extraction , 2015 .
[88] Farid Chemat,et al. Green Extraction of Natural Products: Concept and Principles , 2012, International journal of molecular sciences.
[89] Sheela Chandra,et al. Flavonoids: an overview , 2016, Journal of Nutritional Science.
[90] K. Scala,et al. Supercritical CO2 extraction of bioactive compounds from radish leaves: Yield, antioxidant capacity and cytotoxicity , 2018 .
[91] Timothy J. Mason,et al. Ultrasonically assisted extraction (UAE) and microwave assisted extraction (MAE) of functional compounds from plant materials , 2017 .
[92] F. Barba,et al. Negative pressure cavitation extraction: A novel method for extraction of food bioactive compounds from plant materials , 2016 .
[93] Isabel C.F.R. Ferreira,et al. Microwave-assisted extraction of phenolic acids and flavonoids and production of antioxidant ingredients from tomato: A nutraceutical-oriented optimization study , 2016 .
[94] P. Veronesi,et al. From Field to Shelf: How Microwave-Assisted Extraction Techniques Foster an Integrated Green Approach , 2018, Emerging Microwave Technologies in Industrial, Agricultural, Medical and Food Processing.
[95] Francisco J. Barba,et al. Green alternative methods for the extraction of antioxidant bioactive compounds from winery wastes and by-products: A review , 2016 .
[96] Y. Duan,et al. The effects of ultrasound assisted extraction on yield, antioxidant, anticancer and antimicrobial activity of polyphenol extracts: A review , 2020, Food Bioscience.
[97] A. Skaltsounis,et al. Design optimization study of the extraction of olive leaves performed with pressurized liquid extraction using response surface methodology , 2014 .
[98] Junlong Wang,et al. A comparison study on microwave-assisted extraction of Potentilla anserina L. polysaccharides with conventional method: Molecule weight and antioxidant activities evaluation , 2010 .
[99] Li Yang,et al. Response surface optimization of ultrasound-assisted flavonoids extraction from the flower of Citrus aurantium L. var. amara Engl. , 2010, Journal of separation science.
[100] Duangjai Tungmunnithum,et al. A Quick, Green and Simple Ultrasound-Assisted Extraction for the Valorization of Antioxidant Phenolic Acids from Moroccan Almond Cold-Pressed Oil Residues , 2020, Applied Sciences.
[101] J. Lozano-Sánchez,et al. Comparative study of conventional and pressurized liquid extraction for recovering bioactive compounds from Lippia citriodora leaves. , 2018, Food research international.
[102] David Arráez-Román,et al. Supercritical CO2 extraction of bioactive compounds from Hibiscus sabdariffa , 2019, The Journal of Supercritical Fluids.
[103] C. Turner,et al. Pressurized liquid extraction as a green approach in food and herbal plants extraction: A review. , 2011, Analytica chimica acta.
[104] Xiu Deng,et al. Microwave-assisted extraction of artemisinin from Artemisia annua L , 2002 .
[105] K. Mallikarjunan,et al. Innovative technologies for the recovery of phytochemicals from Stevia rebaudiana Bertoni leaves: A review. , 2018, Food chemistry.
[106] Y. Ohizumi,et al. Extraction of nobiletin from Citrus Unshiu peels by supercritical fluid and its CRE-mediated transcriptional activity. , 2017, Phytomedicine : international journal of phytotherapy and phytopharmacology.
[107] Ligang Chen,et al. Continuous determination of total flavonoids in Platycladus orientalis (L.) Franco by dynamic microwave-assisted extraction coupled with on-line derivatization and ultraviolet-visible detection. , 2007, Analytica chimica acta.
[108] Jianbo Xiao,et al. Composition and bioactivity of tea flower polysaccharides obtained by different methods , 2010 .
[109] A. Mudhoo,et al. Applications of subcritical and supercritical water conditions for extraction, hydrolysis, gasification, and carbonization of biomass: a critical review , 2017 .
[110] Xin Liu,et al. Separation and determination of secoisolariciresinol diglucoside oligomers and their hydrolysates in the flaxseed extract by high-performance liquid chromatography. , 2008, Journal of chromatography. A.
[111] Bao Yang,et al. Optimisation of supercritical fluid extraction of flavonoids from Pueraria lobata. , 2008, Food chemistry.
[112] M. Ferreiro-González,et al. Alternative Extraction Method of Bioactive Compounds from Mulberry (Morus nigra L.) Pulp Using Pressurized-Liquid Extraction , 2018, Food Analytical Methods.
[113] F. Chemat,et al. Ultrasound assisted extraction of food and natural products. Mechanisms, techniques, combinations, protocols and applications. A review. , 2017, Ultrasonics sonochemistry.
[114] O. Yesil‐Celiktas,et al. Optimization of microwave assisted extraction of Morus nigra L. fruits maximizing tyrosinase inhibitory activity with isolation of bioactive constituents. , 2018, Food chemistry.
[115] E. Novellino,et al. Polyphenols: A concise overview on the chemistry, occurrence, and human health , 2019, Phytotherapy research : PTR.
[116] F. Hadizadeh,et al. Optimization of phenolic and flavonoid content and antioxidants capacity of pressurized liquid extraction from Dracocephalum kotschyi via circumscribed central composite , 2016 .
[117] H. Mishra,et al. Ultrasound-assisted extraction of flavonoids and phenolic compounds from Ocimum tenuiflorum leaves , 2015, Food Science and Biotechnology.
[118] M. Tobiszewski,et al. Extraction with environmentally friendly solvents , 2017 .
[119] Da-Wen Sun,et al. Acceleration of microwave-assisted extraction processes of food components by integrating technologies and applying emerging solvents: A review of latest developments , 2017 .
[120] L. Longo,et al. An innovative method for the purification of anthocyanins from grape skin extracts by using liquid and sub-critical carbon dioxide , 2008 .
[121] Emilie Destandau,et al. CHAPTER 4:Microwave‐assisted Extraction , 2013 .
[122] Charis M. Galanakis,et al. Evaluation of microwave-assisted extraction technology for separation of bioactive components of saffron (Crocus sativus L.) , 2020 .
[123] G. Zengin,et al. Subcritical water extraction as a cutting edge technology for the extraction of bioactive compounds from chamomile: Influence of pressure on chemical composition and bioactivity of extracts. , 2018, Food chemistry.
[124] P. Nomngongo,et al. Application of ultrasound-assisted cloud point extraction for preconcentration of antimony, tin and thallium in food and water samples prior to ICP-OES determination , 2019, Journal of Food Composition and Analysis.
[125] J. Ouédraogo,et al. Enhanced extraction of flavonoids from Odontonema strictum leaves with antioxidant activity using supercritical carbon dioxide fluid combined with ethanol , 2018 .
[126] Antonio D. Rodriguez-Lopez,et al. Optimization of conventional and ultrasound assisted extraction of flavonoids from grapefruit (Citrus paradisi L.) solid wastes , 2015 .
[127] F. Chemat,et al. Microwave, ultrasound, thermal treatments, and bead milling as intensification techniques for extraction of lipids from oleaginous Yarrowia lipolytica yeast for a biojetfuel application. , 2016, Bioresource technology.
[128] G. F. Barbero,et al. Extraction of phenolic compounds and anthocyanins from juçara (Euterpe edulis Mart.) residues using pressurized liquids and supercritical fluids , 2017 .
[129] W. Gomes-Leal,et al. Chemical composition, antioxidant activity, neuroprotective and anti-inflammatory effects of cipó-pucá (Cissus sicyoides L.) extracts obtained from supercritical extraction , 2018, The Journal of Supercritical Fluids.
[130] B. Young,et al. Subcritical water extraction of bioactive compounds from waste onion skin , 2018 .
[131] Yu-Chiao Yang,et al. Kinetics and mass transfer considerations for an ultrasound-assisted supercritical CO2 procedure to produce extracts enriched in flavonoids from Scutellaria barbata , 2019, Journal of CO2 Utilization.
[132] C. Turner,et al. Pressurized Hot Water Extraction of Bioactives , 2015, Comprehensive Foodomics.
[133] Francisco Manuel Barrales,et al. Recovery of phenolic compounds from citrus by-products using pressurized liquids — An application to orange peel , 2018, Food and Bioproducts Processing.
[134] Sueli Rodrigues,et al. Ultrasound-assisted extraction. , 2009 .
[135] Lee Nian Yian,et al. Effect of operating conditions on catechin extraction from betel nuts using supercritical CO2-methanol extraction , 2018 .
[136] C. Delerue-Matos,et al. Valorization of apple tree wood residues by polyphenols extraction: Comparison between conventional and microwave-assisted extraction , 2017 .
[137] Mohammad B. Hossain,et al. Techniques to extract bioactive compounds from food by-products of plant origin , 2012 .
[138] C. Matar,et al. The Immunomodulatory and Anti-Inflammatory Role of Polyphenols , 2018, Nutrients.
[139] Mladen Brnčić,et al. Natural deep eutectic solvents and ultrasound-assisted extraction: Green approaches for extraction of wine lees anthocyanins , 2017 .
[140] M. J. Cocero,et al. Pressurized aqueous ethanol extraction of β-glucans and phenolic compounds from waxy barley. , 2015, Food research international.
[141] A. Mujumdar,et al. Comparative evaluation of microwave-assisted extraction and preheated solvent extraction of bioactive compounds from a plant material: a case study with cabbages , 2016 .
[142] Julian Martínez,et al. Pressurized liquids extraction as an alternative process to readily obtain bioactive compounds from passion fruit rinds , 2016 .
[143] M. Angela A. Meireles,et al. Optimization and economic evaluation of pressurized liquid extraction of phenolic compounds from jabuticaba skins , 2012 .
[144] N. Abdurahman,et al. Soxhlet extraction of phenolic compounds from Vernonia cinerea leaves and its antioxidant activity , 2018, Journal of Applied Research on Medicinal and Aromatic Plants.
[145] Kenneth S. Suslick,et al. Inertially confined plasma in an imploding bubble , 2010 .
[146] L. Milella,et al. Flavonoid biosynthetic pathways in plants: Versatile targets for metabolic engineering. , 2018, Biotechnology advances.
[147] A. García-Lafuente,et al. Sample preparation for the analysis of isoflavones from soybeans and soy foods. , 2009, Journal of chromatography. A.
[148] Li Shen,et al. Optimization of ultrasound-assisted water extraction of flavonoids from Psidium guajava leaves by response surface analysis , 2019, Preparative biochemistry & biotechnology.
[149] A. Elhamirad,et al. Optimization of the pulsed electric field -assisted extraction of functional compounds from cinnamon , 2020 .
[150] R. A. Wahab,et al. An overview of cosmeceutically relevant plant extracts and strategies for extraction of plant-based bioactive compounds , 2018, Food and Bioproducts Processing.
[151] Gangming Gong,et al. Microwave-assisted Extraction and Antioxidant Activity of Flavonoids from Sedum aizoon Leaves , 2017 .
[152] M. Sandahl,et al. Pressurised hot water extraction in continuous flow mode for thermolabile compounds: extraction of polyphenols in red onions , 2013, Analytical and Bioanalytical Chemistry.
[153] Charis M. Galanakis. Recovery of high added-value components from food wastes: Conventional, emerging technologies and commercialized applications , 2012 .
[154] N. Morad,et al. Parametric Evaluation for Extraction of Catechin from Areca Catechu Linn Seeds using Supercritical CO2 Extraction , 2015 .
[155] Shigeru Kusunoki,et al. A microwave heating , 1976 .
[156] S. Chianese,et al. Recent developments in supercritical fluid extraction of bioactive compounds from microalgae: Role of key parameters, technological achievements and challenges , 2020 .
[157] A. Benvidi,et al. Optimization of ultrasonic-assisted extraction of pomegranate (Punica granatum L.) peel antioxidants by response surface methodology , 2012 .
[158] S. Nagarajan,et al. Separation of catechins from green tea (Camellia sinensis L.) by microwave assisted acetylation, evaluation of antioxidant potential of individual components and spectroscopic analysis , 2018 .
[159] Armando C. Duarte,et al. Supercritical fluid extraction of bioactive compounds , 2016 .
[160] P. Venskutonis,et al. Comparison of different extraction techniques for isolation of antioxidants from sweet grass (Hierochloe odorata) , 2005 .
[161] C. S. Dzah. Influence of fruit maturity on antioxidant potential and chilling injury resistance of peach fruit ( Prunus persica ) during cold storage , 2014 .
[162] R. Kuhn,et al. Ultrasound extraction of bioactive compounds from Citrus reticulata peel using electrolyzed water , 2019, Journal of Food Processing and Preservation.
[163] I. Zaidul,et al. Supercritical carbon dioxide extraction of bioactive flavonoid from Strobilanthes crispus (Pecah Kaca) , 2010 .
[164] Sha Li,et al. Microwave-Assisted Extraction of Natural Antioxidants from the Exotic Gordonia axillaris Fruit: Optimization and Identification of Phenolic Compounds , 2017, Molecules.
[165] J. Labidi,et al. Optimization of Different Extraction Methods to Obtaining Bioactive Compounds from Larix Decidua Bark , 2018 .
[166] R. Cahn. Techniques of extraction , 1996, Nature.
[167] T. Mason,et al. Applied Sonochemistry: The Uses of Power Ultrasound in Chemistry and Processing , 2002 .
[168] M. J. Cocero,et al. Extraction of phytocompounds from the medicinal plant Clinacanthus nutans Lindau by microwave-assisted extraction and supercritical carbon dioxide extraction , 2015 .
[169] V. Orsat,et al. Microwave-Assisted Extraction of Flavonoids: A Review , 2012, Food and Bioprocess Technology.
[170] S. Arya,et al. A novel, green environment-friendly cloud point extraction of polyphenols from pomegranate peels: a comparative assessment with ultrasound and microwave-assisted extraction , 2020 .
[171] J. Dean,et al. Extraction of polycyclic aromatic hydrocarbons from highly contaminated soils: a comparison between Soxhlet, microwave and supercritical fluid extraction techniques , 1995 .
[172] Ligang Chen,et al. DYNAMIC MICROWAVE-ASSISTED EXTRACTION OF FLAVONOIDS FROM HERBA EPIMEDII , 2008 .
[173] Li Tao,et al. Flavonoids from mulberry leaves by microwave-assisted extract and anti-fatigue activity. , 2009 .
[174] O. R. Alara,et al. Microwave-assisted extraction of Vernonia amygdalina leaf for optimal recovery of total phenolic content , 2018, Journal of Applied Research on Medicinal and Aromatic Plants.
[175] Giancarlo Cravotto,et al. Sono-physical and sono-chemical effects of ultrasound: Primary applications in extraction and freezing operations and influence on food components. , 2019, Ultrasonics sonochemistry.
[176] Jiale Huang,et al. Alkaline extraction and acid precipitation of phenolic compounds from longan (Dimocarpus longan L.) seeds , 2014 .
[177] D. Decorti,et al. Comparison of ultrasound-assisted extraction with conventional extraction methods of oil and polyphenols from grape (Vitis vinifera L.) seeds. , 2013, Ultrasonics sonochemistry.
[178] Xiangmin Zhang,et al. Development of microwave-assisted extraction followed by headspace single-drop microextraction for fast determination of paeonol in traditional Chinese medicines. , 2006, Journal of chromatography. A.
[179] Yinzhuo Yan,et al. Supercritical CO2 fluid extraction of flavonoid compounds from Xinjiang jujube (Ziziphus jujuba Mill.) leaves and associated biological activities and flavonoid compositions , 2019, Industrial Crops and Products.
[180] Xu Han,et al. Subcritical ethanol extraction of flavonoids from Moringa oleifera leaf and evaluation of antioxidant activity. , 2017, Food chemistry.
[181] A. Itharat,et al. Antioxidant effect of Phyllanthus emblica extract prevents contrast-induced acute kidney injury , 2014, BMC Complementary and Alternative Medicine.
[182] J. Gaforio,et al. Dietary Flavonoids as Cancer Chemopreventive Agents: An Updated Review of Human Studies , 2019, Antioxidants.
[183] A. Ghasemzadeh,et al. Optimization of ultrasound-assisted extraction of flavonoid compounds and their pharmaceutical activity from curry leaf (Murraya koenigii L.) using response surface methodology , 2014, BMC Complementary and Alternative Medicine.
[184] A. Oniszczuk,et al. Influence of different extraction methods on the quantification of selected flavonoids and phenolic acids from Tilia cordata inflorescence , 2015 .
[185] Marina Cvjetko Bubalo,et al. New perspective in extraction of plant biologically active compounds by green solvents , 2018 .
[186] N. Al-Dhabi,et al. Ultrasound assisted citric acid mediated pectin extraction from industrial waste of Musa balbisiana. , 2017, Ultrasonics sonochemistry.
[187] Giorgia Spigno,et al. Microwave-assisted extraction of tea phenols: A phenomenological study , 2009 .
[188] Carlos Lodeiro,et al. The Power of Ultrasound , 2009 .
[189] J. Bélanger,et al. Microwave‐Assisted Extraction , 2011 .
[190] M. Chieppa,et al. Looking at Flavonoid Biodiversity in Horticultural Crops: A Colored Mine with Nutritional Benefits , 2018, Plants.
[191] J. A. Martínez,et al. Combinatory and hyphenated sample preparation for the determination of bioactive compounds in foods , 2010 .
[192] Feiyue Ren,et al. Effect of storage, food processing and novel extraction technologies on onions flavonoid content: A review. , 2020, Food research international.
[193] B. Young,et al. Recent advances in subcritical water and supercritical carbon dioxide extraction of bioactive compounds from plant materials , 2020 .
[194] Z. Lan,et al. Ultrasound-assisted extraction flavonoids from Lotus (Nelumbo nuficera Gaertn) leaf and evaluation of its anti-fatigue activity , 2009 .
[195] G. F. Barbero,et al. CHAPTER 2:Extraction of Natural Products: Principles and Fundamental Aspects , 2013 .
[196] Gerardo F. Barbero,et al. Pressurized liquid extraction of bioactive compounds from blackberry (Rubus fruticosus L.) residues: a comparison with conventional methods , 2015 .
[197] K. S. Rajan,et al. Microwave assisted extraction of flavonoids from Terminalia bellerica: Study of kinetics and thermodynamics , 2016 .
[198] Khodir Madani,et al. Pistacia lentiscus leaves as a source of phenolic compounds: Microwave-assisted extraction optimized and compared with ultrasound-assisted and conventional solvent extraction , 2014 .