Phenolic content and anti-hyperglycemic activity of pecan cultivars from Egypt

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dc.contributor.author El Hawary S.S.
dc.contributor.author Saad S.
dc.contributor.author El Halawany A.M.
dc.contributor.author Ali Z.Y.
dc.contributor.author El Bishbishy M.
dc.contributor.other Department of Pharmacognosy
dc.contributor.other Faculty of Pharmacy
dc.contributor.other Cairo University
dc.contributor.other Cairo
dc.contributor.other 11562
dc.contributor.other Egypt; Department of Pharmacognosy
dc.contributor.other Faculty of Pharmacy
dc.contributor.other MSA University
dc.contributor.other Giza
dc.contributor.other Egypt; Faculty of Pharmacy
dc.contributor.other King Abdulaziz University
dc.contributor.other Jeddah
dc.contributor.other Saudi Arabia; Department of Biochemistry
dc.contributor.other National Organization for Drug Control and Research (NODCAR)
dc.contributor.other Giza
dc.contributor.other Egypt
dc.date.accessioned 2020-01-09T20:41:37Z
dc.date.available 2020-01-09T20:41:37Z
dc.date.issued 2016
dc.identifier.issn 13880209
dc.identifier.other https://doi.org/10.3109/13880209.2015.1080732
dc.identifier.other PubMed ID 26450069
dc.identifier.uri https://t.ly/rx8mn
dc.description Scopus
dc.description.abstract Context: Pecans are commonly used nuts with important health benefits such as anti-hyperglycemic and anti-hyperlipidemic effects.Objective: A comparative investigation of the antihyperglycemic and total phenolic content of the leaves and shells of four pecan cultivars growing in Egypt was carried out. The selected cultivars (cv.) were Carya illinoinensis Wangneh. K. Koch. cv. Wichita, cv. WesternSchely, cv. Cherokee, and cv. Sioux family Juglandaceae.Materials and methods: Total phenolic and flavonoid contents of the leaves and shells of pecan cultivars were carried out using Folin-Ciocalteus and aluminum chloride assays, respectively. Moreover, HPLC profiling of phenolic and flavonoid contents was carried out using RP-HPLC-UV. In addition, in vivo anti-hyperglycemic activity of the ethanolic extracts (125 mg/kg bw, p.o.) of C. illinoinensis cultivars was carried out using streptozotocin (STZ)-induced diabetes in Sprague-Dawley rats for 4 weeks.Results and discussion: Phenolic contents were higher in shells than leaves in all studied cultivars, while flavonoids were higher in leaves. Leaves and shells of cv. Sioux showed the highest phenolics (251.7 ?g gallic acid equivalent (GAE)/g), and flavonoid contents (103.27 ?g rutin equivalent (RE)/g and 210.67 ?g quercetin equivalent (QE)/g), respectively. The HPLC profiling of C. illinoinensis cultivars resulted in the identification of eight flavonoids (five of these compounds are identified for the first time from pecan), and 15 phenolic acids (six are identified for the first time from pecan). Leaves of cv. Sioux revealed the most potent decrease in blood glucose and glycated hemoglobin (HbA1c%) (194.9 mg/dl and 6.52%, respectively), among other tested cultivars. Moreover, leaves of cv. Sioux significantly elevated serum total antioxidant capacity (TAC) and reduced glutathione (GSH) (0.33 mMol/l and 30.68 mg/dl, respectively), and significantly suppressed the markers of both lipid peroxidation (malondialdehyde, MDA) and protein oxidation (protein carbonyl, PC) (14.25 ?mol/ml and 3.18 nmol/mg protein, respectively).Conclusion: Different pecan cultivars showed significant variation in its phenolic and flavonoid contents and consequently their antioxidant and anti-hyperglycemic effects. � 2015 Taylor & Francis. en_US
dc.description.uri https://www.scimagojr.com/journalsearch.php?q=21082&tip=sid&clean=0
dc.language.iso English en_US
dc.publisher Taylor and Francis Ltd en_US
dc.relation.ispartofseries Pharmaceutical Biology
dc.relation.ispartofseries 54
dc.subject Antidiabetes en_US
dc.subject Carya illinoinensis en_US
dc.subject glycated hemoglobin en_US
dc.subject HPLC en_US
dc.subject phenolics en_US
dc.subject protein carbonyl en_US
dc.subject antidiabetic agent en_US
dc.subject antioxidant en_US
dc.subject ascorbic acid en_US
dc.subject Carya illinoinensis extract en_US
dc.subject flavonoid en_US
dc.subject gliclazide en_US
dc.subject glucose en_US
dc.subject glutathione en_US
dc.subject hemoglobin A1c en_US
dc.subject phenol derivative en_US
dc.subject plant extract en_US
dc.subject unclassified drug en_US
dc.subject antidiabetic agent en_US
dc.subject phenol derivative en_US
dc.subject plant extract en_US
dc.subject scavenger en_US
dc.subject animal experiment en_US
dc.subject animal model en_US
dc.subject animal tissue en_US
dc.subject antidiabetic activity en_US
dc.subject antioxidant activity en_US
dc.subject Article en_US
dc.subject controlled study en_US
dc.subject cultivar en_US
dc.subject DPPH radical scavenging assay en_US
dc.subject drug determination en_US
dc.subject drug mechanism en_US
dc.subject Egypt en_US
dc.subject glucose blood level en_US
dc.subject high performance liquid chromatography en_US
dc.subject in vivo study en_US
dc.subject lipid peroxidation en_US
dc.subject male en_US
dc.subject non insulin dependent diabetes mellitus en_US
dc.subject nonhuman en_US
dc.subject pecan en_US
dc.subject plant leaf en_US
dc.subject rat en_US
dc.subject toxicity testing en_US
dc.subject animal en_US
dc.subject Carya en_US
dc.subject Diabetes Mellitus, Experimental en_US
dc.subject isolation and purification en_US
dc.subject metabolism en_US
dc.subject Sprague Dawley rat en_US
dc.subject Animals en_US
dc.subject Carya en_US
dc.subject Diabetes Mellitus, Experimental en_US
dc.subject Egypt en_US
dc.subject Free Radical Scavengers en_US
dc.subject Hypoglycemic Agents en_US
dc.subject Male en_US
dc.subject Phenols en_US
dc.subject Plant Extracts en_US
dc.subject Plant Leaves en_US
dc.subject Rats en_US
dc.subject Rats, Sprague-Dawley en_US
dc.title Phenolic content and anti-hyperglycemic activity of pecan cultivars from Egypt en_US
dc.type Article en_US
dcterms.isReferencedBy Abdallah, H.M., Salama, M.M., Abd-Elrahman, E.H., El-Maraghy, S.A., Antidiabetic activity of phenolic compounds from Pecan bark in streptozotocin-induced diabetic rats (2011) Phytochem Lett, 4, pp. 337-341; Abdelrahman, E., Salama, M., Abdallah, H., Sleem, A., Pharmacognostical study of carya illinoinensis (wangenh) k koch (juglandaceae (2008) Al Azhar J Bio Med Sci, 28, pp. 222-243; Aebi, H., Catalase in vitro (1984) Methods Enzymol, 105, pp. 121-126; Afshin, A., Micha, R., Khatibzadeh, S., Mozaffarian, D., Consumption of nuts and legumes and risk of incident ischemic heart disease, stroke, and diabetes: A systematic review and meta-analysis (2014) Am J Clin Nutr, 100, pp. 278-288; Ali, M., Mnafgui, K., Feki, A., In vitro antidiabetic, anti-obesity and antioxidant proprities of Rosemary extracts (2014) J Adv Chem, 10, pp. 2305-2316; Diagnosis and classification of diabetes mellitus (2008) Diab Care, 31, p. S55. , American Diabetes Association. - 60; Babujanarthanam, R., Kavitha, P., Rao, U., Pandian, M., Quercitrin a bioflavonoid improves the antioxidant status in streptozotocin: Induced diabetic rat tissues (2011) Mol Cell Biochem, 358, pp. 121-129; Beejmohun, V., Peytavy-Izard, M., Mignon, C., Acute effect of ceylon cinnamon extract on postprandial glycemia: Alpha-amylase inhibition, starch tolerance test in rats, and randomized crossover clinical trial in healthy volunteers (2014) BMC Complement Alternat Med, 14, p. 351; Beutler, E., Blume, K., Kaplan, J., International committee for standardization in haematology: Recommended methods for red-cell enzyme analysis (1977) Br J Haematol, 35, pp. 331-340; Beutler, E., Duron, O., Kelly, B.M., Improved method for the determination of blood glutathione (1963) J Lab Clin Med, 61, pp. 882-888; Blois, M., Antioxidant determinations by the use of a stable free radical (1958) Nature, 181, pp. 1199-1200; Brahmachari, G., Bio-flavonoids with promising antidiabetic potentials: A critical survey. Opportunity, challenge and scope of natural products in medicinal chemistry (2011) Res Signpost, 2, pp. 187-212; Buege, J., Aust, S., Microsomal lipid peroxidation (1978) Methods Enzymol, 52, pp. 302-310; Cook, N., Samman, S., Flavonoids - Chemistry, metabolism, cardioprotective effects, and dietary sources (1996) J Nutr Biochem, 7, pp. 66-76; De La Rosa, L.A., Alvarez-Parrilla, E., Shahidi, F., Phenolic compounds and antioxidant activity of kernels and shells of mexican pecan (carya illinoinensis (2010) J Agric Food Chem, 59, pp. 152-162; Eagappan, K., Sasikumar, S., Therapeutic effects of nuts in various diseases (2014) Inter J Recent Sci Res, 5, pp. 190-197; El-Baz, F., Aly, H., Abd-Alla, H., Saad, S., Bioactive flavonoid glycosides and antidiabetic activity of Jatropha curcas on streptozotocin-induced diabetic rats (2014) Int J Pharm Sci Rev Res, 29, pp. 143-156; El Hawary, S.S., Zaghloul, S.S., El Halawany, A.M., El Bishbishy, M.H., Comparative study of volatile oil content and antimicrobial activity of pecan cultivars growing in Egypt (2013) J Med Food, 16, pp. 1022-1029; Eleazu, C., Okafor, P., Antioxidant effect of unripe plantain (musa paradisiacae) on oxidative stress in alloxan-induced diabetic rabbits (2013) Inter J Med Biomed Res, 1, pp. 232-241; Elsner, M., Guldbakke, B., Tiedge, M., Relative importance of transport and alkylation for pancreatic beta-cell toxicity of streptozotocin (2000) Diabetologia, 43, pp. 1528-1533; Findlay, J., Dillard, R.F., Appropriate calibration curve fitting in ligand binding assays (2007) AAPS, 9, pp. E260-E267; Gad, H.A., Ayoub, N.A., Al-Azizi, M.M., Phenolic constituents with promising antioxidant and hepatoprotective activities from the leaves extract of carya illinoinensis (2007) Nat Prod: An Indian Journal, 3, pp. 151-158; Goupy, P., Hugues, M., Boivin, P., Amiot, M.J., Antioxidant composition and activity of barley (Hordeum vulgare) and malt extracts and of isolated phenolic compounds (1999) J Sci Food Agric, 79, pp. 1625-1634; Gu, L., Kelm, M.A., Hammerstone, J.F., Concentrations of proanthocyanidins in common foods and estimations of normal consumption (2004) J Nutr, 134, pp. 613-617; Hal, G.D., Pecan food potential in prehistoric North America (2000) Econ Bot, 54, pp. 103-112; Hudthagosol, C., Haddad, E.H., McCarthy, K., Pecans acutely increase plasma postprandial antioxidant capacity and catechins and decrease LDL oxidation in humans (2011) J Nutr, 141, pp. 56-62; Irondi, E.A., Oboh, G., Akindahunsi, A.A., Phenolic composition and inhibitory activity of Mangifera indica and Mucuna urens seeds extracts against key enzymes linked to the pathology and complications of type 2 diabetes (2014) Asian Pac J Trop Biomed, 11, p. 012; Jomova, K., Valko, M., Importance of iron chelation in free radical-induced oxidative stress and human disease (2011) Curr Pharm Design, 17, pp. 3460-3473; Kamtekar, S., Keer, V., Patil, V., Estimation of phenolic content, flavonoid content, antioxidant and alpha amylase inhibitory activity of marketed polyherbal formulation (2014) J Appl Pharm Sci, 4, pp. 061-065; Karawya, M.S., Aboutabl, E.A., Phytoconstituents of Tabernaemontana coronaria Jacq Willd and Tabernaemontana dichotoma Roxb. Growing in Egypt Part IV the flavonoids (1982) Bull Fac Pharm Cairo Univ, 21, pp. 41-49; Manautou, J.E., Nowicki, M.T., Aleksunes, L.M., Renal and hepatic transporter expression in type 2 diabetic rats (2008) Drug Metab Lett, 2, pp. 11-17; Marinova, D., Ribarova, F., Atanassova, M., Total phenolics and total flavonoids in Bulgarian fruits and vegetables (2005) J Univ Chem Technol Metall, 40, pp. 255-260; Mattila, P., Astola, J., Kumpulainen, J., Determination of flavonoids in plant material by HPLC with diode-array and electro-array detections (2000) J Agric Food Chem, 48, pp. 5834-5841; Nielsen, S.J., Kit, B.K., Ogden, C.L., Nut consumption among US adults, 2009-2010 (2014) NCHS Data Brief, 131, pp. 1-8; Niture, N.T., Ansari, A.A., Naik, S.R., Anti-hyperglycemic activity of rutin in streptozotocin-induced diabetic rats: An effect mediated through cytokines, antioxidants and lipid biomarkers (2014) Indian J Exp Biol, 52, pp. 720-727; Oboh, G., Ademosun, A., Ademiluyi, A., In vitro studies on the antioxidant property and inhibition of ?-amylase, ?-glucosidase, and angiotensin-i converting enzyme by polyphenol-rich extracts from cocoa (theobroma cacao) bean (2014) Pathol Res Inter, 2014, p. 549287; OECD. (1994). OECD guidelines for the testing of chemicals: Organization for economic; Paget, G., Barnes, J., (1964) Toxicity Tests, , London: Academic Press; Reznick, A.Z., Packer, L., Oxidative damage to proteins: Spectrophotometric method for carbonyl assay (1994) Methods Enzymol, 233, pp. 357-363; Rice-Evans, C.A., Miller, N.J., Paganga, G., Structure-antioxidant activity relationships of flavonoids and phenolic acids (1996) Free Radic Biol Med, 20, pp. 933-956; Robbins, K.S., Ma, Y., Wells, M.L., Separation and characterization of phenolic compounds from US Pecans by liquid chromatography-tandem mass spectrometry (2014) J Agric Food Chem, 62, pp. 4332-4341; Ryan, E., Galvin, K., O'Connor, T., Fatty acid profile, tocopherol, squalene and phytosterol content of Brazil, pecan, pine, pistachio and cashew nuts (2006) Inter J Food Sci Nutr, 57, pp. 219-228; Salas-Salvad�, J., Guasch-Ferr�, M., Bull�, M., Sabat�, J., Nuts in the prevention and treatment of metabolic syndrome (2014) Am J Clin Nutr, 100, p. 399S. , 407; Sharma, V., Pooja, M.A., Hypoglycemic activity of methanolic extracts of Nyctanthes arbor-tristis Linn root in alloxan induced diabetic rats (2011) Int J Pharm Pharm Sci, 3, pp. 210-212; Shaw, J.E., Sicree, R.A., Zimmet, P.Z., Global estimates of the prevalence of diabetes for 2010 and 2030 (2010) Diabetes Res Clin Pract, 87, pp. 4-14; Srinivasan, S., Pari, L., Ameliorative effect of diosmin, a citrus flavonoid against streptozotocin-nicotinamide generated oxidative stress induced diabetic rats (2012) Chemico-Biol Interact, 195, pp. 43-51; Suchithra, E., Subramanian, S., Antidiabetic activity of Artocarpus heterophyllus rag extract studied in high fat fed-low dose STZ induced experimental type 2 diabetic rats (2014) Der Pharm Lett, 6, pp. 102-109; Trinder, P., Determination of glucose in blood using glucose oxidase with an alternative oxygen acceptor (1969) Ann Clin Biochem, 6, pp. 24-27; (2010) Dietary Guidelines for Americans, , USDA U. Department of Agriculture, Department of Health and Human Services U.S Washington: Government Printing Office; (2011) Use of Glycated Haemoglobin (HbA1c) in Diagnosis of Diabetes Mellitus: Abbreviated Report of A WHO Consultation, , World Health Organization; Yan-Zhi, Z., Xue-Jun, L., Progress in antidiabetic effect of natural antioxidant ellagic acid and its mechanisms (2013) Chin J Pharmacol Toxicol, 27, pp. 881-884; Zheng, X., Wang, W., Zhang, L., Antihyperlipidaemic and antioxidant effect of the total flavonoids in Selaginella tamariscina (Beauv) Spring in diabetic mice (2013) J Pharm Pharmacol, 65, pp. 757-766; Zhou, D., Yu, H., He, F., Nut consumption in relation to cardiovascular disease risk and type 2 diabetes: A systematic review and meta-analysis of prospective studies (2014) Am J Clin Nutr, 100, pp. 270-277
dcterms.source Scopus
dc.identifier.doi https://doi.org/10.3109/13880209.2015.1080732
dc.identifier.doi PubMed ID 26450069
dc.Affiliation October University for modern sciences and Arts (MSA)


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