Polyphenolic profile of green/red spotted Italian Cichorium intybus salads by RP-HPLC-PDA-ESI-MSn
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[1] Bing-hui Li,et al. Polyphenol profile and antioxidant activity of the fruit and leaf of Vaccinium glaucoalbum from the Tibetan Himalayas. , 2017, Food chemistry.
[2] R. Bussmann,et al. The most used medicinal plants by communities in Mahaboboka, Amboronabo, Mikoboka, Southwestern Madagascar , 2017, Journal of Ethnobiology and Ethnomedicine.
[3] A. Malik,et al. Pharmacological basis for the medicinal use of polyherbal formulation and its ingredients in cardiovascular disorders using rodents , 2017, BMC Complementary and Alternative Medicine.
[4] F. Barba,et al. HPLC-DAD-ESI-MS(2) analytical profile of extracts obtained from purple sweet potato after green ultrasound-assisted extraction. , 2017, Food chemistry.
[5] M. Gonnella,et al. Influence of cultivation sites on sterol, nitrate, total phenolic contents and antioxidant activity in endive and stem chicory edible products , 2017, International journal of food sciences and nutrition.
[6] B. Sarriá,et al. Exhaustive Qualitative LC-DAD-MSn Analysis of Arabica Green Coffee Beans: Cinnamoyl-glycosides and Cinnamoylshikimic Acids as New Polyphenols in Green Coffee. , 2016, Journal of agricultural and food chemistry.
[7] Huan Cheng,et al. Sensory evaluation, physicochemical properties and aroma-active profiles in a diverse collection of Chinese bayberry (Myrica rubra) cultivars. , 2016, Food Chemistry.
[8] F. Stampar,et al. Comparison of major taste compounds and antioxidative properties of fruits and flowers of different Sambucus species and interspecific hybrids. , 2016, Food chemistry.
[9] F. Ferioli,et al. The impact of sesquiterpene lactones and phenolics on sensory attributes: An investigation of a curly endive and escarole germplasm collection. , 2016, Food chemistry.
[10] S. Thamsborg,et al. Anthelmintic activity of chicory (Cichorium intybus): in vitro effects on swine nematodes and relationship to sesquiterpene lactone composition , 2016, Parasitology.
[11] N. Terahara. Flavonoids in Foods: A Review , 2015, Natural product communications.
[12] N. Kuhnert,et al. Identification and characterization of chlorogenic acids, chlorogenic acid glycosides and flavonoids from Lonicera henryi L. (Caprifoliaceae) leaves by LC-MSn. , 2014, Phytochemistry.
[13] E. Ibáñez,et al. Phenolic profile evolution of different ready-to-eat baby-leaf vegetables during storage. , 2014, Journal of chromatography. A.
[14] R. Street,et al. Cichorium intybus: Traditional Uses, Phytochemistry, Pharmacology, and Toxicology , 2013, Evidence-based complementary and alternative medicine : eCAM.
[15] A. Gómez-Caravaca,et al. Influence of technological processes on phenolic compounds, organic acids, furanic derivatives, and antioxidant activity of whole-lemon powder. , 2013, Food chemistry.
[16] D. Arráez-Román,et al. Reversed-phase ultra-high-performance liquid chromatography coupled to electrospray ionization-quadrupole-time-of-flight mass spectrometry as a powerful tool for metabolic profiling of vegetables: Lactuca sativa as an example of its application. , 2013, Journal of chromatography. A.
[17] R. Carle,et al. Sesquiterpene lactone content and overall quality of fresh-cut witloof chicory (Cichorium intybus L. var. foliosum Hegi) as affected by different washing procedures. , 2013, Journal of agricultural and food chemistry.
[18] C. Freire,et al. Phenolic profiling of Portuguese propolis by LC-MS spectrometry: uncommon propolis rich in flavonoid glycosides. , 2013, Phytochemical analysis : PCA.
[19] A. Papetti,et al. Identification of phenolic constituents in red chicory salads (Cichorium intybus) by high-performance liquid chromatography with diode array detection and electrospray ionisation tandem mass spectrometry. , 2013, Food chemistry.
[20] L. Ciric,et al. Identification of organic acids in Cichorium intybus inhibiting virulence-related properties of oral pathogenic bacteria. , 2013, Food chemistry.
[21] A. Papetti,et al. Identification of phenolic constituents in Cichorium endivia var. crispum and var. latifolium salads by high-performance liquid chromatography with diode array detection and electrospray ioniziation tandem mass spectrometry. , 2012, Journal of agricultural and food chemistry.
[22] J. Harnly,et al. Quantitation of the hydroxycinnamic acid derivatives and the glycosides of flavonols and flavones by UV absorbance after identification by LC-MS. , 2012, Journal of agricultural and food chemistry.
[23] M. Abdin,et al. In vitro propagation of Cichorium intybus L. and quantification of enhanced secondary metabolite (esculin). , 2011, Recent patents on biotechnology.
[24] M. Castellari,et al. Analysis of eleven phenolic compounds including novel p-coumaroyl derivatives in lettuce (Lactuca sativa L.) by ultra-high-performance liquid chromatography with photodiode array and mass spectrometry detection. , 2011, Phytochemical analysis : PCA.
[25] A. Giacomini,et al. Evaluation of red chicory extract as a natural antioxidant by pure lipid oxidation and yeast oxidative stress response as model systems. , 2011, Journal of agricultural and food chemistry.
[26] M. Clifford,et al. The antioxidant and chlorogenic acid profiles of whole coffee fruits are influenced by the extraction procedures. , 2011, Journal of agricultural and food chemistry.
[27] Sunan Wang,et al. How natural dietary antioxidants in fruits, vegetables and legumes promote vascular health , 2011 .
[28] M. Clifford,et al. Profiling and characterisation by liquid chromatography/multi-stage mass spectrometry of the chlorogenic acids in Gardeniae Fructus. , 2010, Rapid communications in mass spectrometry : RCM.
[29] O. Sağdıç,et al. Compositions, antioxidant and antimicrobial activities of Helichrysum (Asteraceae) species collected from Turkey , 2010 .
[30] M. Daglia,et al. Hydroxycinnamic acid derivatives occurring in Cichorium endivia vegetables. , 2008, Journal of pharmaceutical and biomedical analysis.
[31] C. Zidorn. Sesquiterpene lactones and their precursors as chemosystematic markers in the tribe Cichorieae of the Asteraceae. , 2008, Phytochemistry.
[32] P. Eklund,et al. Identification of lignans by liquid chromatography-electrospray ionization ion-trap mass spectrometry. , 2007, Journal of mass spectrometry : JMS.
[33] G. Barcaccia,et al. Chicory and Endive , 2008 .
[34] M. Clifford,et al. LC–MSn analysis of the cis isomers of chlorogenic acids , 2008 .
[35] Yiyu Cheng,et al. Characterization and identification of isomeric flavonoid O-diglycosides from genus Citrus in negative electrospray ionization by ion trap mass spectrometry and time-of-flight mass spectrometry. , 2007, Analytica chimica acta.
[36] R. Carle,et al. Taraxacum--a review on its phytochemical and pharmacological profile. , 2006, Journal of ethnopharmacology.
[37] Ruiping Zhang,et al. Structural characterization of flavonol 3,7-di-O-glycosides and determination of the glycosylation position by using negative ion electrospray ionization tandem mass spectrometry. , 2006, Journal of mass spectrometry : JMS.
[38] A. Gurib-Fakim,et al. Medicinal plants: traditions of yesterday and drugs of tomorrow. , 2006, Molecular aspects of medicine.
[39] M. Innocenti,et al. Evaluation of the phenolic content in the aerial parts of different varieties of Cichorium intybus L. , 2005, Journal of agricultural and food chemistry.
[40] S. Karakaya,et al. Radical scavenging and iron-chelating activities of some greens used as traditional dishes in Mediterranean diet , 2004, International journal of food sciences and nutrition.
[41] M. Heinrich,et al. In vitro antioxidant activity of non‐cultivated vegetables of ethnic Albanians in southern Italy , 2002, Phytotherapy research : PTR.
[42] M. Daglia,et al. Anti- and pro-oxidant water soluble activity of Cichorium genus vegetables and effect of thermal treatment. , 2002, Journal of agricultural and food chemistry.
[43] H. Bais,et al. Cichorium intybus L – cultivation, processing, utility, value addition and biotechnology, with an emphasis on current status and future prospects , 2001 .
[44] M. Bennett,et al. Metabolite profiling of sesquiterpene lactones from Lactuca species. Major latex components are novel oxalate and sulfate conjugates of lactucin and its derivatives. , 2000, The Journal of biological chemistry.
[45] K. Bremer,et al. Asteraceae: Cladistics and Classification , 1994 .