Comparative Chemical Analysis of Eight Punica granatum L. Peel Cultivars and Their Antioxidant and Anti-Inflammatory Activities
暂无分享,去创建一个
G. Diretto | G. Donadio | F. Dal Piaz | N. de Tommasi | A. Braca | V. Santoro | V. Parisi | M. Bellone | Francesca Mensitieri | Carla Sandri
[1] A. C. Veloso,et al. Pomegranate Peels and Seeds as a Source of Phenolic Compounds: Effect of Cultivar, By-Product, and Extraction Solvent , 2022, International journal of food science.
[2] A. Granell,et al. Engineering high levels of saffron apocarotenoids in tomato , 2022, Horticulture research.
[3] F. Jourdan,et al. Networks and Graphs Discovery in Metabolomics Data Analysis and Interpretation , 2022, Frontiers in Molecular Biosciences.
[4] Meifeng Li,et al. The bioactivity and applications of pomegranate peel extract: A review. , 2022, Journal of food biochemistry.
[5] M. Farag,et al. Ongoing and potential novel trends of pomegranate fruit peel; a comprehensive review of its health benefits and future perspectives as nutraceutical. , 2021, Journal of food biochemistry.
[6] C. Gabay,et al. Systemic effects of IL-6 blockade in rheumatoid arthritis beyond the joints. , 2021, Cytokine.
[7] G. Pitari,et al. Secondary metabolic profiles and anticancer actions from fruit extracts of immature pomegranates , 2021, PloS one.
[8] M. Farag,et al. Novel trends in extraction and optimization methods of bioactives recovery from pomegranate fruit biowastes: Valorization purposes for industrial applications. , 2021, Food chemistry.
[9] M. De Leo,et al. Comparative chemical analysis of six ancient italian sweet cherry (Prunus avium L.) varieties showing antiangiogenic activity. , 2021, Food chemistry.
[10] Junqi Wang,et al. A unique understanding of traditional medicine of pomegranate, Punica granatum L. and its current research status. , 2021, Journal of ethnopharmacology.
[11] M. De Leo,et al. A Herbal Mixture from Propolis, Pomegranate, and Grape Pomace Endowed with Anti-Inflammatory Activity in an In Vivo Rheumatoid Arthritis Model , 2020, Molecules.
[12] M. Viuda‐Martos,et al. Polyphenolic Profile and Antimicrobial Potential of Peel Extracts Obtained from Organic Pomegranate (Punica granatum L.) Variety “Mollar De Elche” , 2020 .
[13] Alessandro Buriani,et al. Essential Oil Phytocomplex Activity, a Review with a Focus on Multivariate Analysis for a Network Pharmacology-Informed Phytogenomic Approach , 2020, Molecules.
[14] S. Carradori,et al. Characterization of Arils Juice and Peel Decoction of Fifteen Varieties of Punica granatum L.: A Focus on Anthocyanins, Ellagitannins and Polysaccharides , 2020, Antioxidants.
[15] P. Rodriguez,et al. Influence of deficit irrigation and crop load on the yield and fruit quality in Wonderful and Mollar de Elche pomegranates. , 2018, Journal of the science of food and agriculture.
[16] Yingxian Zhao,et al. Response of Plant Secondary Metabolites to Environmental Factors , 2018, Molecules.
[17] L. Tian,et al. Diverse Phytochemicals and Bioactivities in the Ancient Fruit and Modern Functional Food Pomegranate (Punica granatum) , 2017, Molecules.
[18] D. Carputo,et al. Comparative metabolite and genome analysis of tuber-bearing potato species. , 2017, Phytochemistry.
[19] S. Benvenuti,et al. Metabolite fingerprinting of Punica granatum L. (pomegranate) polyphenols by means of high-performance liquid chromatography with diode array and electrospray ionization-mass spectrometry detection. , 2017, Journal of chromatography. A.
[20] F. Marhuenda-egea,et al. Biological Activity of Conventional and Organic Pomegranate Juices: Antioxidant and Antimutagenic Potential , 2016, Plant Foods for Human Nutrition.
[21] V. Bajpai,et al. Profiling of Gallic and Ellagic Acid Derivatives in Different Plant Parts of Terminalia Arjuna by HPLC-ESI-QTOF-MS/MS , 2016, Natural product communications.
[22] O. J. Caleb,et al. Impact of preharvest and postharvest factors on changes in volatile compounds of pomegranate fruit and minimally processed arils – Review , 2015 .
[23] O. A. Fawole,et al. Preharvest and postharvest factors influencing bioactive compounds in pomegranate (Punica granatum L.)—A review , 2014 .
[24] L. Calani,et al. Ultra-HPLC-MS(n) (Poly)phenolic profiling and chemometric analysis of juices from ancient Punica granatum L. Cultivars: a nontargeted approach. , 2013, Journal of agricultural and food chemistry.
[25] A. Crozier,et al. Rapid and Comprehensive Evaluation of (Poly)phenolic Compounds in Pomegranate (Punica granatum L.) Juice by UHPLC-MSn , 2012, Molecules.
[26] R. Singh,et al. Genesis and development of DPPH method of antioxidant assay , 2011, Journal of food science and technology.
[27] L. Boulekbache‐Makhlouf,et al. Analysis by high-performance liquid chromatography diode array detection mass spectrometry of phenolic compounds in fruit of Eucalyptus globulus cultivated in Algeria. , 2010, Journal of agricultural and food chemistry.
[28] G. Ferraccioli,et al. Interleukin-1β and Interleukin-6 in Arthritis Animal Models: Roles in the Early Phase of Transition from Acute to Chronic Inflammation and Relevance for Human Rheumatoid Arthritis , 2010, Molecular medicine.
[29] Rui Hai Liu,et al. Cellular antioxidant activity (CAA) assay for assessing antioxidants, foods, and dietary supplements. , 2007, Journal of agricultural and food chemistry.
[30] Nigel W. Hardy,et al. Proposed minimum reporting standards for chemical analysis , 2007, Metabolomics.
[31] James Varani,et al. Pomegranate as a cosmeceutical source: pomegranate fractions promote proliferation and procollagen synthesis and inhibit matrix metalloproteinase-1 production in human skin cells. , 2006, Journal of ethnopharmacology.
[32] B. Hafeez,et al. Punica granatum L. extract inhibits IL-1beta-induced expression of matrix metalloproteinases by inhibiting the activation of MAP kinases and NF-kappaB in human chondrocytes in vitro. , 2005, The Journal of nutrition.
[33] Dejian Huang,et al. The chemistry behind antioxidant capacity assays. , 2005, Journal of agricultural and food chemistry.
[34] F. Saura-calixto,et al. Evaluation of free radical scavenging of dietary carotenoids by the stable radical 2,2‐diphenyl‐1‐picrylhydrazyl , 2000 .
[35] C. Rice-Evans,et al. Antioxidant activity applying an improved ABTS radical cation decolorization assay. , 1999, Free radical biology & medicine.
[36] F. Shahidi,et al. Methods for the assessment of antioxidant activity in foods , 2015 .
[37] V. Shukla,et al. In vitro evaluation of antioxidant activity of Cordia dichotoma (Forst f.) bark , 2013, Ayu.