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Citrus flavonoids and their antioxidant evaluation

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References

  • Abdel-Raheem, I. T., and A. A. Abdel-Ghany. 2009. Hesperidin alleviates doxorubicin-induced cardiotoxicity in rats. Journal of the Egyptian National Cancer Institute 21 (2):175–84.
  • Abolaji, A. O., O. V. Babalola, A. K. Adegoke, and E. O. Farombi. 2017. Hesperidin, a citrus bioflavonoid, alleviates trichloroethylene-induced oxidative stress in Drosophila melanogaster. Environmental Toxicology and Pharmacology 55:202–7. doi: 10.1016/j.etap.2017.08.038.
  • Agir, M. S., and G. Eraslan. 2019. The effect of diosmin against liver damage caused by cadmium in rats. Journal of Food Biochemistry 43:e12966.
  • Ali, M. Y., S. Zaib, M. M. Rahman, S. Jannat, J. Iqbal, S. K. Park, and M. S. Chang. 2019. Didymin, a dietary citrus flavonoid exhibits anti-diabetic complications and promotes glucose uptake through the activation of PI3K/Akt signaling pathway in insulin-resistant HepG2 cells. Chemico-Biological Interactions 305:180–94. doi: 10.1016/j.cbi.2019.03.018.
  • Allawadhi, P., A. Khurana, N. Sayed, P. Kumari, and C. Godugu. 2018. Isoproterenol-induced cardiac ischemia and fibrosis: Plant-based approaches for intervention . Phytotherapy Research : PTR 32 (10):1908–32. doi: 10.1002/ptr.6152.
  • Al-Yahya, M. A., R. A. Mothana, M. S. Al-Said, K. E. El-Tahir, M. Al-Sohaibani, and S. Rafatullah. 2013. Citrus medica "Otroj": Attenuates oxidative stress and cardiac dysrhythmia in isoproterenol-induced cardiomyopathy in rats. Nutrients 5 (11):4269–83. doi: 10.3390/nu5114269.
  • Anandan, R., and P. Subramanian. 2012. Renal protective effect of hesperidin on gentamicin-induced acute nephrotoxicity in male Wistar albino rats. Redox Report : Communications in Free Radical Research 17 (5):219–26. doi: 10.1179/1351000212Y.0000000019.
  • Arab, H. H., S. A. Salama, H. A. Omar, E. S. A. Arafa, and I. A. Maghrabi. 2015. Diosmin protects against ethanol-induced gastric injury in rats: Novel anti-ulcer actions. PLoS One 10 (3):e0122417. doi: 10.1371/journal.pone.0122417.
  • Arafa, H. M., H. A. Aly, M. F. Abd-Ellah, and H. M. El-Refaey. 2009. Hesperidin attenuates benzo[alpha] pyrene-induced testicular toxicity in rats via regulation of oxidant/antioxidant balance. Toxicology and Industrial Health 25 (6):417–27. doi: 10.1177/0748233709106624.
  • Assefa, A. D., E. Y. Ko, S. H. Moon, and Y. S. Keum. 2016. Antioxidant and antiplatelet activities of flavonoid-rich fractions of three citrus fruits from Korea. 3 Biotech 6 (1):109. doi: 10.1007/s13205-016-0424-8.
  • Austin, M. B., and A. J. P. Noel. 2003. The chalcone synthase superfamily of type III polyketide synthases. Natural Product Reports 20 (1):79–110. doi: 10.1039/b100917f.
  • Barreca, D., E. Bellocco, C. Caristi, U. Leuzzi, and G. Gattuso. 2010. Flavonoid Composition and Antioxidant Activity of Juices from Chinotto ( Citrus x myrtifolia Raf.) fruits at different ripening stages. Journal of Agricultural and Food Chemistry 58 (5):3031–6. doi: 10.1021/jf9044809.
  • Barreca, D., E. Bellocco, C. Caristi, U. Leuzzi, and G. Gattuso. 2011. Flavonoid profile and radical-scavenging activity of Mediterranean sweet lemon (Citrus limetta Risso) juice. Food Chemistry 129 (2):417–22. doi: 10.1016/j.foodchem.2011.04.093.
  • Bastien, M., P. Poirier, I. Lemieux, and J.-P. Després. 2014. Overview of epidemiology and contribution of obesity to cardiovascular disease. Progress in Cardiovascular Diseases 56 (4):369–81. doi: 10.1016/j.pcad.2013.10.016.
  • Bayomy, N. A., S. H. Elshafhey, R. H. ElBakary, and E. Z. Abdelaziz. 2014. Protective effect of hesperidin against lung injury induced by intestinal ischemia/reperfusion in adult albino rats: Histological, immunohistochemical and biochemical study. Tissue & Cell 46 (5):304–10. doi: 10.1016/j.tice.2014.05.009.
  • Bentli, R., O. Ciftci, A. Cetin, M. Unlu, N. Basak, and M. Cay. 2013. Oral administration of hesperidin, a citrus flavonone, in rats counteracts the oxidative stress, the inflammatory cytokine production, and the hepatotoxicity induced by the ingestion of 2,3,7,8-tetrachlorodibenzo-p-dioxin (TCDD). European Cytokine Network 24 (2):91–6. doi: 10.1684/ecn.2013.0337.
  • Berim, A., and D. R. Gang. 2016. Methoxylated flavones: Occurrence, importance, biosynthesis. Phytochemistry Reviews 15 (3):363–90. doi: 10.1007/s11101-015-9426-0.
  • Bhargava, P., V. K. Verma, S. Malik, S. I. Khan, J. Bhatia, and D. S. Arya. 2019. Hesperidin regresses cardiac hypertrophy by virtue of PPAR-γ agonistic, anti-inflammatory, antiapoptotic, and antioxidant properties. Journal of Biochemical and Molecular Toxicology 33 (5):e22283. doi: 10.1002/jbt.22283.
  • Bhojwani, D., and C.-H. Pui. 2013. Relapsed childhood acute lymphoblastic leukaemia. The Lancet Oncology 14 (6):e205–e217. doi: 10.1016/S1470-2045(12)70580-6.
  • Bodduluru, L. N., E. R. Kasala, R. M. Madhana, C. C. Barua, M. I. Hussain, P. Haloi, and P. Borah. 2016. Naringenin ameliorates inflammation and cell proliferation in benzo(a)pyrene induced pulmonary carcinogenesis by modulating CYP1A1, NFκB and PCNA expression. International Immunopharmacology 30:102–10. doi: 10.1016/j.intimp.2015.11.036.
  • Bussmann, A. J. C., S. M. Borghi, T. H. Zaninelli, T. S. Dos Santos, C. F. S. Guazelli, V. Fattori, T. P. Domiciano, F. A. Pinho-Ribeiro, K. W. Ruiz-Miyazawa, A. M. B. Casella, et al. 2019. The citrus flavanone naringenin attenuates zymosan-induced mouse joint inflammation: Induction of Nrf2 expression in recruited CD45(+) hematopoietic cells. Inflammopharmacology 27 (6):1229–42., Jr. doi: 10.1007/s10787-018-00561-6.
  • Butryee, C., P. Sungpuag, and C. Chitchumroonchokchai. 2009. Effect of processing on the flavonoid content and antioxidant capacity of Citrus hystrix leaf. International Journal of Food Sciences and Nutrition 60 (sup2):162–74. doi: 10.1080/09637480903018816.
  • Carino-Cortes, R., I. Alvarez-Gonzalez, L. Martino-Roaro, and E. Madrigal-Bujaidar. 2010. Effect of naringin on the DNA damage induced by daunorubicin in mouse hepatocytes and cardiocytes. Biological & Pharmaceutical Bulletin 33 (4):697–701. doi: 10.1248/bpb.33.697.
  • Cases, J., C. Romain, C. Dallas, A. Gerbi, and J. M. Rouanet. 2015. A 12-week randomized double-blind parallel pilot trial of Sinetrol XPur on body weight, abdominal fat, waist circumference, and muscle metabolism in overweight men. International Journal of Food Sciences and Nutrition 66 (4):471–7. doi: 10.3109/09637486.2015.1042847.
  • Castro-Vazquez, L., Alanon, M. E., Rodriguez-Robledo, V., Perez-Coello, M. S., Hermosin-Gutierrez, I., Diaz-Maroto, M. C., Jordan, J., Galindo, M. F. and Arroyo-Jimenez Mdel, M. (2016). Bioactive flavonoids, antioxidant behaviour, and cytoprotective effects of dried grapefruit peels (Citrus paradisi Macf.). Oxidative Medicine and Cellular Longevity 2016:1–12. doi: 10.1155/2016/8915729.
  • Chen, J., H. Mo, R. Guo, Q. You, R. Huang, and K. Wu. 2014b. Inhibition of the leptin-induced activation of the p38 MAPK pathway contributes to the protective effects of naringin against high glucose-induced injury in H9c2 cardiac cells. International Journal of Molecular Medicine 33 (3):605–12. doi: 10.3892/ijmm.2014.1614.
  • Chen, J., R. Guo, H. Yan, L. Tian, Q. You, S. Li, R. Huang, and K. Wu. 2014a. Naringin inhibits ROS-activated MAPK pathway in high glucose-induced injuries in H9c2 cardiac cells. Basic & Clinical Pharmacology & Toxicology 114 (4):293–304. doi: 10.1111/bcpt.12153.
  • Chen, X. M., A. R. Tait, and D. D. Kitts. 2017. Flavonoid composition of orange peel and its association with antioxidant and anti-inflammatory activities. Food Chemistry 218:15–21. doi: 10.1016/j.foodchem.2016.09.016.
  • Cho, J. 2006. Antioxidant and neuroprotective effects of hesperidin and its aglycone hesperetin. Archives of Pharmacal Research 29 (8):699–706. doi: 10.1007/BF02968255.
  • Choi, B. K., T. W. Kim, D. R. Lee, W. H. Jung, J. H. Lim, J. Y. Jung, S. H. Yang, and J. W. Suh. 2015. A polymethoxy flavonoids-rich Citrus aurantium extract ameliorates ethanol-induced liver injury through modulation of AMPK and Nrf2-related signals in a binge drinking mouse model. Phytotherapy Research : PTR 29 (10):1577–84. doi: 10.1002/ptr.5415.
  • Cimino, F., M. Cristani, A. Saija, F. P. Bonina, and F. Virgili. 2007. Protective effects of a red orange extract on UVB-induced damage in human keratinocytes. BioFactors (Oxford, England) 30 (2):129–38. doi: 10.1002/biof.5520300206.
  • Clavo, B., F. Rodríguez-Esparragón, D. Rodríguez-Abreu, G. Martínez-Sánchez, P. Llontop, D. Aguiar-Bujanda, L. Fernández-Pérez, and N. Santana-Rodríguez. 2019. Modulation of oxidative stress by ozone therapy in the prevention and treatment of chemotherapy-induced toxicity: Review and prospects. Antioxidants 8 (12):588. doi: 10.3390/antiox8120588.
  • Codoner-Franch, P., A. B. Lopez-Jaen, A. De La Mano-Hernandez, E. Sentandreu, R. Simo-Jorda, and V. Valls-Belles. 2010. Oxidative markers in children with severe obesity following low-calorie diets supplemented with mandarin juice. Acta Paediatrica 99 (12):1841–6. doi: 10.1111/j.1651-2227.2010.01903.x.
  • Constans, J., C. Bennetau-Pelissero, J. F. Martin, E. Rock, A. Mazur, A. Bedel, C. Morand, and A. M. Berard. 2015. Marked antioxidant effect of orange juice intake and its phytomicronutrients in a preliminary randomized cross-over trial on mild hypercholesterolemic men. Clinical Nutrition (Edinburgh, Scotland) 34 (6):1093–100. doi: 10.1016/j.clnu.2014.12.016.
  • Curro, M., R. Risitano, N. Ferlazzo, S. Cirmi, C. Gangemi, D. Caccamo, R. Ientile, and M. Navarra. 2016. Citrus bergamia juice extract attenuates β-amyloid-induced pro-inflammatory activation of THP-1 cells through MAPK and AP-1 pathways. Scientific Reports 6:20809. doi: 10.1038/srep20809.
  • Da Pozzo, E., B. Costa, C. Cavallini, L. Testai, A. Martelli, V. Calderone, and C. Martini. 2017. The citrus flavanone naringenin protects myocardial cells against age-associated damage. Oxidative Medicine and Cellular Longevity 2017:9536148. doi: 10.1155/2017/9536148.
  • Da Pozzo, E., M. De Leo, I. Faraone, L. Milella, C. Cavallini, E. Piragine, L. Testai, V. Calderone, L. Pistelli, A. Braca, et al. 2018. Antioxidant and antisenescence effects of bergamot juice. Oxidative Medicine and Cellular Longevity 2018:9395804. doi: 10.1155/2018/9395804.
  • da Silva, L. M., B. C. Pezzini, L. B. Somensi, L. N. Bolda Mariano, M. Mariott, T. Boeing, A. C. Dos Santos, B. Longo, V. Cechinel-Filho, P. de Souza, et al. 2019. Hesperidin, a citrus flavanone glycoside, accelerates the gastric healing process of acetic acid-induced ulcer in rats. Chemico-Biological Interactions 308:45–50. doi: 10.1016/j.cbi.2019.05.011.
  • Dabelea, D., E. J. Mayer-Davis, S. Saydah, G. Imperatore, B. Linder, J. Divers, R. Bell, A. Badaru, J. W. Talton, T. Crume, et al. 2014. Prevalence of type 1 and type 2 diabetes among children and adolescents from 2001 to 2009. Jama 311 (17):1778–86., doi: 10.1001/jama.2014.3201.
  • De Leo, M., E. Piragine, A. Pirone, A. Braca, L. Pistelli, V. Calderone, V. Miragliotta, and L. Testai. 2020. Protective Effects of Bergamot (Citrus bergamia Risso & Poiteau) Juice in Rats Fed with High-Fat Diet. Planta Medica 86 (3):180–9. doi: 10.1055/a-1070-9325.
  • Degirmenci, H., and H. Erkurt. 2019. Relationship between volatile components, antimicrobial and antioxidant properties of the essential oil, hydrosol and extracts of Citrus aurantium L. flowers. Journal of Infection and Public Health 13 (1):58–67.
  • Doostdar, H., J. P. Shapiro, R. Niedz, M. D. Burke, T. G. Mccollum, R. E. Mcdonald, and R. T. Mayer. 1995. A cytochrome-P450 mediated naringenin 3′-hydroxylase from sweet orange cell-cultures. Plant and Cell Physiology 36:69–77.
  • Elavarasan, J., P. Velusamy, T. Ganesan, S. K. Ramakrishnan, D. Rajasekaran, and K. Periandavan. 2012. Hesperidin-mediated expression of Nrf2 and upregulation of antioxidant status in senescent rat heart. The Journal of Pharmacy and Pharmacology 64 (10):1472–82. doi: 10.1111/j.2042-7158.2012.01512.x.
  • Elshazly, S. M., D. M. Abd El Motteleb, and I. Ibrahim. 2018. Hesperidin protects against stress induced gastric ulcer through regulation of peroxisome proliferator activator receptor gamma in diabetic rats. Chemico-Biological Interactions 291:153–61. doi: 10.1016/j.cbi.2018.06.027.
  • Eltzschig, H. K., and T. Eckle. 2011. Ischemia and reperfusion-from mechanism to translation. Nature Medicine 17 (11):1391–401. doi: 10.1038/nm.2507.
  • Esmaeili, M. A., and M. Alilou. 2014. Naringenin attenuates CCl4 -induced hepatic inflammation by the activation of an Nrf2-mediated pathway in rats. Clinical and Experimental Pharmacology & Physiology 41 (6):416–22. doi: 10.1111/1440-1681.12230.
  • Ferreira, P. S., L. C. Spolidorio, J. A. Manthey, and T. B. Cesar. 2016. Citrus flavanones prevent systemic inflammation and ameliorate oxidative stress in C57BL/6J mice fed high-fat diet. Food & Function 7 (6):2675–81. doi: 10.1039/c5fo01541c.
  • Fouad, A. A., W. H. Albuali, A. Zahran, and W. Gomaa. 2014. Protective effect of naringenin against gentamicin-induced nephrotoxicity in rats. Environmental Toxicology and Pharmacology 38 (2):420–9. doi: 10.1016/j.etap.2014.07.015.
  • Friedman, G. D., A. Siegelaub, and C. C. Seltzer. 1974. Cigarettes, alcohol, coffee and peptic ulcer. The New England Journal of Medicine 290 (9):469–73. doi: 10.1056/NEJM197402282900901.
  • Gattuso, G., C. Caristi, C. Gargiulli, E. Bellocco, G. Toscano, and U. Leuzzi. 2006. Flavonoid glycosides in bergamot juice (Citrus bergamia risso). Journal of Agricultural and Food Chemistry 54 (11):3929–35. doi: 10.1021/jf060348z.
  • Ge, W. J., K. M. Zhao, X. W. Wang, H. Y. Li, M. Yu, M. M. He, X. T. Xue, Y. F. Zhu, C. Zhang, Y. W. Cheng, et al. 2017. iASPP is an antioxidative factor and drives cancer growth and drug resistance by competing with Nrf2 for Keap1 binding. Cancer Cell 32 (5):561–73.e6. doi: 10.1016/j.ccell.2017.09.008.
  • Ghanim, H., P. Mohanty, R. Pathak, A. Chaudhuri, C. L. Sia, and P. Dandona. 2007. Orange juice or fructose intake does not induce oxidative and inflammatory response. Diabetes Care 30 (6):1406–11. doi: 10.2337/dc06-1458.
  • Ghasemi, K., Y. Ghasemi, and M. A. Ebrahimzadeh. 2009. Antioxidant activity, phenol and flavonoid contents of 13 citrus species peels and tissues. Pakistan Journal of Pharmaceutical Sciences 22 (3):277–81.
  • Golechha, M., U. Chaudhry, J. Bhatia, D. Saluja, and D. S. Arya. 2011. Naringin protects against kainic acid-induced status epilepticus in rats: Evidence for an antioxidant, anti-inflammatory and neuroprotective intervention. Biological & Pharmaceutical Bulletin 34 (3):360–5. doi: 10.1248/bpb.34.360.
  • Goncalves, D., C. Lima, P. Ferreira, P. Costa, A. Costa, W. Figueiredo, and T. Cesar. 2017. Orange juice as dietary source of antioxidants for patients with hepatitis C under antiviral therapy. Food & Nutrition Research 61 (1):1296675 doi: 10.1080/16546628.2017.1296675.
  • Gonzalez-Molina, E., D. A. Moreno, and C. Garcia-Viguera. 2008. Genotype and harvest time influence the phytochemical quality of Fino lemon juice (Citrus limon (L.) Burm. F.) for industrial use. Journal of Agricultural and Food Chemistry 56 (5):1669–75. doi: 10.1021/jf073282w.
  • Gopinath, K., and G. Sudhandiran. 2012. Naringin modulates oxidative stress and inflammation in 3-nitropropionic acid-induced neurodegeneration through the activation of nuclear factor-erythroid 2-related factor-2 signalling pathway. Neuroscience 227:134–43. doi: 10.1016/j.neuroscience.2012.07.060.
  • Guan, S., Q. Tang, W. Liu, R. Zhu, and B. Li. 2014. Nobiletin Inhibits PDGF-BB-induced vascular smooth muscle cell proliferation and migration and attenuates neointimal hyperplasia in a rat carotid artery injury model. Drug Development Research 75 (8):489–96. doi: 10.1002/ddr.21230.
  • Guo, S., X. Wu, J. Zheng, N. Charoensinphon, P. Dong, P. Qiu, M. Song, Z. Tang, and H. Xiao. 2018. Anti-inflammatory effect of xanthomicrol, a major colonic metabolite of 5-demethyltangeretin. Food & Function 9 (6):3104–13. doi: 10.1039/c8fo00279g.
  • Habauzit, V., M. A. Verny, D. Milenkovic, N. Barber-Chamoux, A. Mazur, C. Dubray, and C. Morand. 2015. Flavanones protect from arterial stiffness in postmenopausal women consuming grapefruit juice for 6 mo: A randomized, controlled, crossover trial. The American Journal of Clinical Nutrition 102 (1):66–74. doi: 10.3945/ajcn.114.104646.
  • Hadi, H. E., R. Vettor, and M. Rossato. 2018. Vitamin E as a treatment for nonalcoholic fatty liver disease: Reality or myth? Antioxidants 7:12.
  • He, P., S. Yan, X. Wen, S. Zhang, Z. Liu, X. Liu, and C. Xiao. 2019. Eriodictyol alleviates lipopolysaccharide-triggered oxidative stress and synaptic dysfunctions in BV-2 microglial cells and mouse brain. Journal of Cellular Biochemistry 120 (9):14756–70. doi: 10.1002/jcb.28736.
  • Heo, H. J., D. O. Kim, S. C. Shin, M. J. Kim, B. G. Kim, and D. H. Shin. 2004. Effect of antioxidant flavanone, naringenin, from Citrus junoson neuroprotection. Journal of Agricultural and Food Chemistry 52 (6):1520–5. doi: 10.1021/jf035079g.
  • Heo, S. D., J. Kim, Y. Choi, P. Ekanayake, M. Ahn, and T. Shin. 2020. Hesperidin improves motor disability in rat spinal cord injury through anti-inflammatory and antioxidant mechanism via Nrf-2/HO-1 pathway. Neuroscience Letters 715:134619. doi: 10.1016/j.neulet.2019.134619.
  • Hermenean, A., A. Ardelean, M. Stan, N. Hadaruga, C. V. Mihali, M. Costache, and A. Dinischiotu. 2014. Antioxidant and hepatoprotective effects of naringenin and its β-cyclodextrin formulation in mice intoxicated with carbon tetrachloride: A comparative study . Journal of Medicinal Food 17 (6):670–7. doi: 10.1089/jmf.2013.0007.
  • Holditch, S. J., C. N. Brown, A. M. Lombardi, K. N. Nguyen, and C. L. Edelstein. 2019. Recent advances in models, mechanisms, biomarkers, and interventions in cisplatin-induced acute kidney injury. International Journal of Molecular Sciences 20 (12):3011. doi: 10.3390/ijms20123011.
  • Huang, D., X. Wang, Z. Z. Tang, Y. Yuan, Y. T. Xu, J. X. He, X. L. Jiang, S. A. Peng, L. Li, E. Butelli, et al. 2018. Subfunctionalization of the Ruby2-Ruby1 gene cluster during the domestication of citrus. Nature Plants 4 (11):930–41. +. doi: 10.1038/s41477-018-0287-6.
  • Hwang, S. L., and G. C. Yen. 2008. Neuroprotective effects of the citrus flavanones against H2O2-induced cytotoxicity in PC12 cells. Journal of Agricultural and Food Chemistry 56 (3):859–64. doi: 10.1021/jf072826r.
  • Hwang, S. L., and G. C. Yen. 2009. Modulation of Akt, JNK, and p38 activation is involved in citrus flavonoid-mediated cytoprotection of PC12 cells challenged by hydrogen peroxide. Journal of Agricultural and Food Chemistry 57 (6):2576–82. doi: 10.1021/jf8033607.
  • Impellizzeri, D., M. Cordaro, M. Campolo, E. Gugliandolo, E. Esposito, F. Benedetto, S. Cuzzocrea, and M. Navarra. 2016. Anti-inflammatory and Antioxidant Effects of Flavonoid-Rich Fraction of Bergamot Juice (BJe) in a Mouse Model of Intestinal Ischemia/Reperfusion Injury. Frontiers in Pharmacology 7:203.
  • Ishii, T., K. Itoh, S. Takahashi, H. Sato, T. Yanagawa, Y. Katoh, S. Bannai, and M. Yamamoto. 2000. Transcription factor Nrf2 coordinately regulates a group of oxidative stress-inducible genes in macrophages. The Journal of Biological Chemistry 275 (21):16023–9. doi: 10.1074/jbc.275.21.16023.
  • Islam, J., A. Shree, S. M. Afzal, A. Vafa, and S. Sultana. 2020. Protective effect of Diosmin against benzo(a)pyrene-induced lung injury in Swiss Albino Mice. Environmental Toxicology 35 (7):747–57. doi: 10.1002/tox.22909.
  • Jain, D., M. K. Bansal, R. Dalvi, A. Upganlawar, and R. Somani. 2014. Protective effect of diosmin against diabetic neuropathy in experimental rats. Journal of Integrative Medicine 12 (1):35–41. doi: 10.1016/S2095-4964(14)60001-7.
  • Jansen, E., and T. Ruskovska. 2015. Serum biomarkers of (Anti)Oxidant Status for Epidemiological Studies. International Journal of Molecular Sciences 16 (11):27378–90. doi: 10.3390/ijms161126032.
  • Jayakumar, T., K. C. Lin, W. J. Lu, C. Y. Lin, G. Pitchairaj, J. Y. Li, and J. R. Sheu. 2017. Nobiletin, a citrus flavonoid, activates vasodilator-stimulated phosphoprotein in human platelets through non-cyclic nucleotide-related mechanisms. International Journal of Molecular Medicine 39 (1):174–82. doi: 10.3892/ijmm.2016.2822.
  • Jayaraman, R., S. Subramani, S. H. Sheik Abdullah, and M. Udaiyar. 2018. Antihyperglycemic effect of hesperetin, a citrus flavonoid, extenuates hyperglycemia and exploring the potential role in antioxidant and antihyperlipidemic in streptozotocin-induced diabetic rats. Biomedicine & Pharmacotherapy = Biomedecine & Pharmacotherapie 97:98–106. doi: 10.1016/j.biopha.2017.10.102.
  • Jeon, S. M., S. H. Bok, M. K. Jang, M. K. Lee, K. T. Nam, Y. B. Park, S. J. Rhee, and M. S. Choi. 2001. Antioxidative activity of naringin and lovastatin in high cholesterol-fed rabbits. Life Sciences 69 (24):2855–66. doi: 10.1016/S0024-3205(01)01363-7.
  • Jeon, S. M., S. H. Bok, M. K. Jang, Y. H. Kim, K. T. Nam, T. S. Jeong, Y. B. Park, and M. S. Choi. 2002. Comparison of antioxidant effects of naringin and probucol in cholesterol-fed rabbits. Clinica Chimica Acta; International Journal of Clinical Chemistry 317 (1–2):181–90. doi: 10.1016/S0009-8981(01)00778-1.
  • Jiang, R., C. Lin, C. Jiang, Z. Huang, W. Gao, and D. Lin. 2020. Nobiletin enhances the survival of random pattern skin flaps: Involvement of enhancing angiogenesis and inhibiting oxidative stress. International Immunopharmacology 78:106010. doi: 10.1016/j.intimp.2019.106010.
  • Johnson, J., P. Maher, and A. Hanneken. 2009. The flavonoid, eriodictyol, induces long-term protection in ARPE-19 cells through its effects on Nrf2 activation and phase 2 gene expression. Investigative Ophthalmology & Visual Science 50 (5):2398–406. doi: 10.1167/iovs.08-2088.
  • Justin Thenmozhi, A., T. R. William Raja, T. Manivasagam, U. Janakiraman, and M. M. Essa. 2017. Hesperidin ameliorates cognitive dysfunction, oxidative stress and apoptosis against aluminium chloride induced rat model of Alzheimer's disease. Nutritional Neuroscience 20 (6):360–8. doi: 10.1080/1028415X.2016.1144846.
  • Kamaraj, S., G. Ramakrishnan, P. Anandakumar, S. Jagan, and T. Devaki. 2009. Antioxidant and anticancer efficacy of hesperidin in benzo(a)pyrene induced lung carcinogenesis in mice. Investigational New Drugs 27 (3):214–22. doi: 10.1007/s10637-008-9159-7.
  • Kamel, K. M., O. M. Abd El-Raouf, S. A. Metwally, H. A. Abd El-Latif, and M. E. El-Sayed. 2014. Hesperidin and rutin, antioxidant citrus flavonoids, attenuate cisplatin-induced nephrotoxicity in rats. Journal of Biochemical and Molecular Toxicology 28 (7):312–9. doi: 10.1002/jbt.21567.
  • Kamisli, S., O. Ciftci, K. Kaya, A. Cetin, O. Kamisli, and C. Ozcan. 2015. Hesperidin protects brain and sciatic nerve tissues against cisplatin-induced oxidative, histological and electromyographical side effects in rats. Toxicology and Industrial Health 31 (9):841–51. doi: 10.1177/0748233713483192.
  • Kanaze, F. I., A. Termentzi, C. Gabrieli, I. Niopas, M. Georgarakis, and E. Kokkalou. 2009. The phytochemical analysis and antioxidant activity assessment of orange peel (Citrus sinensis) cultivated in Greece-Crete indicates a new commercial source of hesperidin. Biomedical Chromatography : BMC 23 (3):239–49. doi: 10.1002/bmc.1090.
  • Kang, M. I., A. Kobayashi, N. Wakabayashi, S. G. Kim, and M. Yamamoto. 2004. Scaffolding of Keap1 to the actin cytoskeleton controls the function of Nrf2 as key regulator of cytoprotective phase 2 genes. Proceedings of the National Academy of Sciences of the United States of America 101 (7):2046–51. doi: 10.1073/pnas.0308347100.
  • Kanno, S., A. Shouji, K. Asou, and M. Ishikawa. 2003. Effects of naringin on hydrogen peroxide-induced cytotoxicity and apoptosis in P388 cells. Journal of Pharmacological Sciences 92 (2):166–70. doi: 10.1254/jphs.92.166.
  • Karimi, E., E. Oskoueian, R. Hendra, A. Oskoueian, and H. Z. Jaafar. 2012. Phenolic compounds characterization and biological activities of Citrus aurantium bloom. Molecules (Basel, Switzerland) 17 (2):1203–18. doi: 10.3390/molecules17021203.
  • Kaur, G., N. Tirkey, and K. Chopra. 2006. Beneficial effect of hesperidin on lipopolysaccharide-induced hepatotoxicity. Toxicology 226 (2–3):152–60. doi: 10.1016/j.tox.2006.06.018.
  • Khajevand-Khazaei, M. R., P. Ziaee, S. A. Motevalizadeh, M. Rohani, S. Afshin-Majd, T. Baluchnejadmojarad, and M. Roghani. 2018. Naringenin ameliorates learning and memory impairment following systemic lipopolysaccharide challenge in the rat. European Journal of Pharmacology 826:114–22. doi: 10.1016/j.ejphar.2018.03.001.
  • Kim, H. G., G. S. Kim, S. Park, J. H. Lee, O. N. Seo, S. J. Lee, J. H. Kim, J. H. Shim, A. M. Abd El-Aty, J. S. Jin, et al. 2012. Flavonoid profiling in three citrus varieties native to the Republic of Korea using liquid chromatography coupled with tandem mass spectrometry: Contribution to overall antioxidant activity. Biomedical Chromatography : BMC 26 (4):464–70. doi: 10.1002/bmc.1688.
  • Kim, T. W., D. R. Lee, B. K. Choi, H. K. Kang, J. Y. Jung, S. W. Lim, S. H. Yang, and J. W. Suh. 2016. Hepatoprotective effects of polymethoxyflavones against acute and chronic carbon tetrachloride intoxication. Food and Chemical Toxicology : An International Journal Published for the British Industrial Biological Research Association 91:91–9. doi: 10.1016/j.fct.2016.03.004.
  • Kobayashi, A., M. I. Kang, H. Okawa, M. Ohtsuji, Y. Zenke, T. Chiba, K. Igarashi, and M. Yamamoto. 2004. Oxidative stress sensor Keap1 functions as an adaptor for Cul3-based E3 ligase to regulate proteasomal degradation of Nrf2. Molecular and Cellular Biology 24 (16):7130–9. doi: 10.1128/MCB.24.16.7130-7139.2004.
  • Krishna Chandran, A. M., H. Christina, S. Das, K. D. Mumbrekar, and B. S. Satish Rao. 2019. Neuroprotective role of naringenin against methylmercury induced cognitive impairment and mitochondrial damage in a mouse model. Environmental Toxicology and Pharmacology 71:103224. doi: 10.1016/j.etap.2019.103224.
  • Kulasekaran, G., and S. Ganapasam. 2015. Neuroprotective efficacy of naringin on 3-nitropropionic acid-induced mitochondrial dysfunction through the modulation of Nrf2 signaling pathway in PC12 cells. Molecular and Cellular Biochemistry 409 (1–2):199–211. doi: 10.1007/s11010-015-2525-9.
  • Kumar, A., S. Dogra, and A. Prakash. 2010. Protective effect of naringin, a citrus flavonoid, against colchicine-induced cognitive dysfunction and oxidative damage in rats. Journal of Medicinal Food 13 (4):976–84. doi: 10.1089/jmf.2009.1251.
  • Kwak, M. K., N. Wakabayashi, and T. W. Kensler. 2004. Chemoprevention through the Keap1-Nrf2 signaling pathway by phase 2 enzyme inducers. Mutation Research-Fundamental and Molecular Mechanisms of. Mutation Research 555 (1–2):133–48. doi: 10.1016/j.mrfmmm.2004.06.041.
  • Lakshmi, A., and S. P. Subramanian. 2014b. Tangeretin ameliorates oxidative stress in the renal tissues of rats with experimental breast cancer induced by 7,12-dimethylbenz[a]anthracene. Toxicology Letters 229 (2):333–48. doi: 10.1016/j.toxlet.2014.06.845.
  • Lakshmi, A., and S. Subramanian. 2014a. Chemotherapeutic effect of tangeretin, a polymethoxylated flavone studied in 7, 12-dimethylbenz(a)anthracene induced mammary carcinoma in experimental rats. Biochimie 99:96–109. doi: 10.1016/j.biochi.2013.11.017.
  • Lee, S. E., H. Yang, G. W. Son, H. R. Park, C. S. Park, Y. H. Jin, and Y. S. Park. 2015. Eriodictyol protects endothelial cells against oxidative stress-induced cell death through modulating ERK/Nrf2/ARE-dependent heme oxygenase-1 expression. International Journal of Molecular Sciences 16 (7):14526–39. doi: 10.3390/ijms160714526.
  • Lee, Y. Y., E. J. Lee, J. S. Park, S. E. Jang, D. H. Kim, and H. S. Kim. 2016. Anti-inflammatory and antioxidant mechanism of tangeretin in activated microglia. Journal of Neuroimmune Pharmacology : The Official Journal of the Society on NeuroImmune Pharmacology 11 (2):294–305. doi: 10.1007/s11481-016-9657-x.
  • Lewinska, A., J. Adamczyk-Grochala, E. Kwasniewicz, A. Deregowska, and M. Wnuk. 2017. Diosmin-induced senescence, apoptosis and autophagy in breast cancer cells of different p53 status and ERK activity. Toxicology Letters 265:117–30. doi: 10.1016/j.toxlet.2016.11.018.
  • Li, M., X. F. Lin, J. Lu, B. R. Zhou, and D. Luo. 2016. Hesperidin ameliorates UV radiation-induced skin damage by abrogation of oxidative stress and inflammatory in HaCaT cells. Journal of Photochemistry and Photobiology B: Biology 165:240–5. doi: 10.1016/j.jphotobiol.2016.10.037.
  • Liang, F., Y. Fang, W. Cao, Z. Zhang, S. Pan, and X. Xu. 2018. Attenuation of tert-butyl hydroperoxide (t-BHP)-induced oxidative damage in HepG2 cells by tangeretin: relevance of the Nrf2-ARE and MAPK signaling pathways. Journal of Agricultural and Food Chemistry 66 (25):6317–25. doi: 10.1021/acs.jafc.8b01875.
  • Liew, S. S., W. Y. Ho, S. K. Yeap, and S. A. B. Sharifudin. 2018. Phytochemical composition and in vitro antioxidant activities of Citrus sinensis peel extracts. PeerJ 6:e5331. doi: 10.7717/peerj.5331.
  • Lim, W., S. Park, F. W. Bazer, and G. Song. 2017. Naringenin-induced apoptotic cell death in prostate cancer cells is mediated via the PI3K/AKT and MAPK signaling pathways. Journal of Cellular Biochemistry 118 (5):1118–31. doi: 10.1002/jcb.25729.
  • Ling, Y., Z. Shi, X. Yang, Z. Cai, L. Wang, X. Wu, A. Ye, and J. Jiang. 2020. Hypolipidemic effect of pure total flavonoids from peel of Citrus (PTFC) on hamsters of hyperlipidemia and its potential mechanism. Experimental Gerontology 130:110786. doi: 10.1016/j.exger.2019.110786.
  • Liu, L., and X. W. Wu. 2018. Nobiletin protects human retinal pigment epithelial cells from hydrogen peroxide-induced oxidative damage. Journal of Biochemical and Molecular Toxicology 32 (5):e22052. doi: 10.1002/jbt.22052.
  • Liu, W. Y., S. S. Liou, T. Y. Hong, and I. M. Liu. 2017a. The benefits of the citrus flavonoid diosmin on human retinal pigment epithelial cells under high-glucose conditions. Molecules 22 (12):2251. doi: 10.3390/molecules22122251.
  • Liu, W. Y., S. S. Liou, T. Y. Hong, and I. M. Liu. 2017b. Protective effects of hesperidin (Citrus flavonone) on high glucose induced oxidative stress and apoptosis in a cellular model for diabetic retinopathy. Nutrients 9 (12):1312. doi: 10.3390/nu9121312.
  • Liu, X., C. Zhao, Q. Gong, Y. Wang, J. Cao, X. Li, D. Grierson, and C. Sun. 2020b. Characterization of a caffeoyl-CoA O-methyltransferase-like enzyme involved in biosynthesis of polymethoxylated flavones in Citrus reticulata. Journal of Experimental Botany 71 (10):3066–79. doi: 10.1093/jxb/eraa083.
  • Liu, X., Y. Wang, Y. Chen, S. Xu, Q. Gong, C. Zhao, J. Cao, and C. Sun. 2020a. Characterization of a flavonoid 3’/5’/7-O-methyltransferase from Citrus reticulata and evaluation of the in vitro cytotoxicity of its methylated products. Molecules 25 (4):858. doi: 10.3390/molecules25040858.
  • Lobstein, T., R. Jackson-Leach, M. L. Moodie, K. D. Hall, S. L. Gortmaker, B. A. Swinburn, W. P. T. James, Y. Wang, and K. McPherson. 2015. Child and adolescent obesity: Part of a bigger picture. The Lancet 385 (9986):2510–20. doi: 10.1016/S0140-6736(14)61746-3.
  • Loizzo, M. R., R. Tundis, M. Bonesi, F. Menichini, D. De Luca, C. Colica, and F. Menichini. 2012. Evaluation of Citrus aurantifolia peel and leaves extracts for their chemical composition, antioxidant and anti-cholinesterase activities. Journal of the Science of Food and Agriculture 92 (15):2960–7. doi: 10.1002/jsfa.5708.
  • Lou, S. N., Y. C. Lai, J. D. Huang, C. T. Ho, L. H. Ferng, and Y. C. Chang. 2015. Drying effect on flavonoid composition and antioxidant activity of immature kumquat. Food Chemistry 171:356–63. doi: 10.1016/j.foodchem.2014.08.119.
  • Lu, Q., S. Y. Lv, Y. Peng, C. H. Zhu, and S. Y. Pan. 2018. Characterization of phenolics and antioxidant abilities of red navel orange "Cara Cara" harvested from five regions of China. International Journal of Food Properties 21 (1):1107–16. doi: 10.1080/10942912.2018.1485030.
  • Lu, Y. H., M. Y. Su, H. Y. Huang, L. Lin, and C. G. Yuan. 2010. Protective effects of the citrus flavanones to PC12 cells against cytotoxicity induced by hydrogen peroxide. Neuroscience Letters 484:6–11. doi: 10.1016/j.neulet.2010.07.078.
  • Malik, S., J. Bhatia, K. Suchal, N. Gamad, A. K. Dinda, Y. K. Gupta, and D. S. Arya. 2015. Nobiletin ameliorates cisplatin-induced acute kidney injury due to its anti-oxidant, anti-inflammatory and anti-apoptotic effects. Experimental and Toxicologic Pathology : Official Journal of the Gesellschaft Fur Toxikologische Pathologie 67 (7–8):427–33. doi: 10.1016/j.etp.2015.04.008.
  • Mani, S., S. Sekar, R. Barathidasan, T. Manivasagam, A. J. Thenmozhi, M. Sevanan, S. B. Chidambaram, M. M. Essa, G. J. Guillemin, and M. K. Sakharkar. 2018. Naringenin Decreases α-Synuclein Expression and Neuroinflammation in MPTP-Induced Parkinson's Disease Model in Mice . Neurotoxicity Research 33 (3):656–70. doi: 10.1007/s12640-018-9869-3.
  • Manthey, J. A. 2004. Fractionation of orange peel phenols in ultrafiltered molasses and mass balance studies of their antioxidant levels. Journal of Agricultural and Food Chemistry 52 (25):7586–92. doi: 10.1021/jf049083j.
  • Martens, S., and A. Mithofer. 2005. Flavones and flavone synthases. Phytochemistry 66 (20):2399–407. doi: 10.1016/j.phytochem.2005.07.013.
  • Mershiba, S. D., M. V. Dassprakash, and S. D. Saraswathy. 2013. Protective effect of naringenin on hepatic and renal dysfunction and oxidative stress in arsenic intoxicated rats. Molecular Biology Reports 40 (5):3681–91. doi: 10.1007/s11033-012-2444-8.
  • Milella, L., M. Caruso, F. Galgano, F. Favati, M. C. Padula, and G. Martelli. 2011. Role of the cultivar in choosing Clementine fruits with a high level of health-promoting compounds. Journal of Agricultural and Food Chemistry 59 (10):5293–8. doi: 10.1021/jf104991z.
  • Miler, M., J. Zivanovic, V. Ajdzanovic, Z. Orescanin-Dusic, D. Milenkovic, A. Konic-Ristic, D. Blagojevic, V. Milosevic, and B. Sosic-Jurjevic. 2016. Citrus flavanones naringenin and hesperetin improve antioxidant status and membrane lipid compositions in the liver of old-aged Wistar rats. Experimental Gerontology 84:49–60. doi: 10.1016/j.exger.2016.08.014.
  • Miyashita, T., A. Adhikari-Devkota, K. Hori, M. Watanabe, T. Watanabe, and H. P. Devkota. 2018. Flavonoids from the flowers of Citrus 'Hebesu. Natural Product Communications 13 (7):1934578X1801300714. doi: 10.1177/1934578X1801300714.
  • Mo’men, Y. S., R. M. Hussein, and M. A. Kandeil. 2019. Involvement of PI3K/Akt pathway in the protective effect of hesperidin against a chemically induced liver cancer in rats. Journal of Biochemical and Molecular Toxicology 33 (6) doi: 10.1002/jbt.22305.
  • Morand, C., C. Dubray, D. Milenkovic, D. Lioger, J. F. Martin, A. Scalbert, and A. Mazur. 2011. Hesperidin contributes to the vascular protective effects of orange juice: A randomized crossover study in healthy volunteers. The American Journal of Clinical Nutrition 93 (1):73–80. doi: 10.3945/ajcn.110.004945.
  • Morrow, R., F. Deyhim, B. S. Patil, and B. J. Stoecker. 2009. Feeding orange pulp improved bone quality in a rat model of male osteoporosis. Journal of Medicinal Food 12 (2):298–303. doi: 10.1089/jmf.2008.0145.
  • Muhammad, T., M. Ikram, R. Ullah, S. U. Rehman, and M. O. Kim. 2019. Hesperetin, a citrus flavonoid, attenuates LPS-induced neuroinflammation, apoptosis and memory impairments by modulating TLR4/NF-kappaB signaling. Nutrients 11 (3):648. doi: 10.3390/nu11030648.
  • Murakami, A., Y. Nakamura, K. Torikai, T. Tanaka, T. Koshiba, K. Koshimizu, S. Kuwahara, Y. Takahashi, K. Ogawa, M. Yano, et al. 2000b. Inhibitory effect of citrus nobiletin on phorbol ester-induced skin inflammation, oxidative stress, and tumor promotion in mice. Cancer Research 60:5059–66.
  • Murakami, A., Y. Nakamura, Y. Ohto, M. Yano, T. Koshiba, K. Koshimizu, H. Tokuda, H. Nishino, and H. Ohigashi. 2000a. Suppressive effects of citrus fruits on free radical generation and nobiletin, an anti-inflammatory polymethoxyflavonoid. BioFactors (Oxford, England) 12 (1–4):187–92. doi: 10.1002/biof.5520120130.
  • Nakajima, A., Y. Aoyama, E. J. Shin, Y. Nam, H. C. Kim, T. Nagai, A. Yokosuka, Y. Mimaki, T. Yokoi, Y. Ohizumi, et al. 2015. Nobiletin, a citrus flavonoid, improves cognitive impairment and reduces soluble Aβ levels in a triple transgenic mouse model of Alzheimer's disease (3XTg-AD)). Behavioural Brain Research 289:69–77. doi: 10.1016/j.bbr.2015.04.028.
  • Nakajima, A., Y. Aoyama, T. T. Nguyen, E. J. Shin, H. C. Kim, S. Yamada, T. Nakai, T. Nagai, A. Yokosuka, Y. Mimaki, et al. 2013. Nobiletin, a citrus flavonoid, ameliorates cognitive impairment, oxidative burden, and hyperphosphorylation of tau in senescence-accelerated mouse. Behavioural Brain Research 250:351–60. doi: 10.1016/j.bbr.2013.05.025.
  • Nioi, P., M. McMahon, K. Itoh, M. Yamamoto, and J. D. Hayes. 2003. Identification of a novel Nrf2-regulated antioxidant response element (ARE) in the mouse NAD(P)H:quinone oxidoreductase 1 gene: Reassessment of the ARE consensus sequence. The Biochemical Journal 374 (Pt 2):337–48. doi: 10.1042/BJ20030754.
  • Nkpaa, K. W., and G. I. Onyeso. 2018. Rutin attenuates neurobehavioral deficits, oxidative stress, neuro-inflammation and apoptosis in fluoride treated rats. Neuroscience Letters 682:92–9. doi: 10.1016/j.neulet.2018.06.023.
  • Nogata, Y., K. Sakamoto, H. Shiratsuchi, T. Ishii, M. Yano, and H. Ohta. 2006. Flavonoid composition of fruit tissues of citrus species. Bioscience, Biotechnology, and Biochemistry 70 (1):178–92. doi: 10.1271/bbb.70.178.
  • Overdevest, E., J. A. Wouters, K. H. M. Wolfs, J. J. M. van Leeuwen, and S. Possemiers. 2018. Citrus flavonoid supplementation improves exercise performance in trained athletes. Journal of Sports Science and Medicine 17:24–30.
  • Papoutsis, K., P. Pristijono, J. B. Golding, C. E. Stathopoulos, C. J. Scarlett, M. C. Bowyer, and Q. V. Vuong. 2016. Impact of different solvents on the recovery of bioactive compounds and antioxidant properties from lemon (Citrus limon L.) pomace waste. Food Science and Biotechnology 25 (4):971–7. doi: 10.1007/s10068-016-0158-8.
  • Pari, L., and K. Shagirtha. 2012. Hesperetin protects against oxidative stress related hepatic dysfunction by cadmium in rats. Experimental and Toxicologic Pathology 64 (5):513–20. doi: 10.1016/j.etp.2010.11.007.
  • Pari, L., and M. Gnanasoundari. 2006. Influence of naringenin on oxytetracycline mediated oxidative damage in rat liver. Basic & Clinical Pharmacology & Toxicology 98 (5):456–61. doi: 10.1111/j.1742-7843.2006.pto_351.x.
  • Piero, A. R. L., I. Puglisi, and G. Petrone. 2006. Gene characterization, analysis of expression and in vitro synthesis of dihydroflavonol 4-reductase from [Citrus sinensis (L.) Osbeck]. Phytochemistry 67 (7):684–95. doi: 10.1016/j.phytochem.2006.01.025.
  • Poor, M., B. Veres, P. B. Jakus, C. Antus, G. Montsko, Z. Zrinyi, S. Vladimir-Knezevic, J. Petrik, and T. Koszegi. 2014. Flavonoid diosmetin increases ATP levels in kidney cells and relieves ATP depleting effect of ochratoxin A. Journal of Photochemistry and Photobiology B, Biology 132:1–9. doi: 10.1016/j.jphotobiol.2014.01.016.
  • Prabu, S. M., K. Shagirtha, and J. Renugadevi. 2011. Naringenin in combination with vitamins C and E potentially protects oxidative stress-mediated hepatic injury in cadmium-intoxicated rats. Journal of Nutritional Science and Vitaminology 57 (2):177–85. doi: 10.3177/jnsv.57.177.
  • Pradeep, K., K. C. Ko, M. H. Choi, J. A. Kang, Y. J. Chung, and S. H. Park. 2012. Protective effect of hesperidin, a citrus flavanoglycone, against γ-radiation-induced tissue damage in Sprague-Dawley rats . Journal of Medicinal Food 15 (5):419–27. doi: 10.1089/jmf.2011.1737.
  • Pradeep, K., S. H. Park, and K. C. Ko. 2008. Hesperidin a flavanoglycone protects against gamma-irradiation induced hepatocellular damage and oxidative stress in Sprague-Dawley rats. European Journal of Pharmacology 587 (1–3):273–80. doi: 10.1016/j.ejphar.2008.03.052.
  • Proteggente, A. R., A. Saija, A. De Pasquale, and C. A. Rice-Evans. 2003. The compositional characterisation and antioxidant activity of fresh juices from Sicilian sweet orange (Citrus sinensis L. Osbeck) varieties. Free Radical Research 37 (6):681–7. doi: 10.1080/1071576031000083198.
  • Qu, Y., Y. Liu, L. Chen, Y. Zhu, X. Xiao, D. Wang, and Y. Zhu. 2018. Nobiletin prevents cadmium-induced neuronal apoptosis by inhibiting reactive oxygen species and modulating JNK/ERK1/2 and Akt/mTOR networks in rats. Neurological Research 40 (3):211–20. doi: 10.1080/01616412.2018.1424685.
  • Ramful, D., T. Bahorun, E. Bourdon, E. Tarnus, and O. I. Aruoma. 2010. Bioactive phenolics and antioxidant propensity of flavedo extracts of Mauritian citrus fruits: Potential prophylactic ingredients for functional foods application. Toxicology 278 (1):75–87. doi: 10.1016/j.tox.2010.01.012.
  • Rangel-Huerta, O. D., C. M. Aguilera, M. V. Martin, M. J. Soto, M. C. Rico, F. Vallejo, F. Tomas-Barberan, A. J. Perez-de-la-Cruz, A. Gil, and M. D. Mesa. 2015. Normal or High Polyphenol Concentration in Orange Juice Affects Antioxidant Activity, Blood Pressure, and Body Weight in Obese or Overweight Adults. The Journal of Nutrition 145 (8):1808–16. doi: 10.3945/jn.115.213660.
  • Rapavi, E., I. Kocsis, E. Feher, K. Szentmihalyi, A. Lugasi, E. Szekely, and A. Blazovics. 2007. The effect of citrus flavonoids on the redox state of alimentary-induced fatty liver in rats. Natural Product Research 21 (3):274–81. doi: 10.1080/14786410500518545.
  • Renugadevi, J., and S. M. Prabu. 2009. Naringenin protects against cadmium-induced oxidative renal dysfunction in rats. Toxicology 256 (1–2):128–34. doi: 10.1016/j.tox.2008.11.012.
  • Renugadevi, J., and S. M. Prabu. 2010. Cadmium-induced hepatotoxicity in rats and the protective effect of naringenin. Experimental and Toxicologic Pathology : Official Journal of the Gesellschaft Fur Toxikologische Pathologie 62 (2):171–81. doi: 10.1016/j.etp.2009.03.010.
  • Ribeiro, C. B., F. M. Ramos, J. A. Manthey, and T. B. Cesar. 2019. Effectiveness of Eriomin® in managing hyperglycemia and reversal of prediabetes condition: A double-blind, randomized, controlled study. Phytotherapy Research : PTR 33 (7):1921–33. doi: 10.1002/ptr.6386.
  • Risitano, R., M. Curro, S. Cirmi, N. Ferlazzo, P. Campiglia, D. Caccamo, R. Ientile, and M. Navarra. 2014. Flavonoid fraction of Bergamot juice reduces LPS-induced inflammatory response through SIRT1-mediated NF-κB inhibition in THP-1 monocytes . PLoS One 9 (9):e107431. doi: 10.1371/journal.pone.0107431.
  • Riso, P., F. Visioli, C. Gardana, S. Grande, A. Brusamolino, F. Galvano, G. Galvano, and M. Porrini. 2005. Effects of blood orange juice intake on antioxidant bioavailability and on different markers related to oxidative stress. Journal of Agricultural and Food Chemistry 53 (4):941–7. doi: 10.1021/jf0485234.
  • Roy, A., A. Das, R. Das, S. Haldar, S. Bhattacharya, and P. K. Haldar. 2014. Naringenin, a citrus flavonoid, ameliorates arsenic-induced toxicity in Swiss albino mice. Journal of Environmental Pathology, Toxicology and Oncology : Official Organ of the International Society for Environmental Toxicology and Cancer 33 (3):195–204. doi: 10.1615/jenvironpatholtoxicoloncol.2014010317.
  • Said, U. Z., H. N. Saada, M. S. Abd-Alla, M. E. Elsayed, and A. M. Amin. 2012. Hesperidin attenuates brain biochemical changes of irradiated rats. International Journal of Radiation Biology 88 (8):613–8. doi: 10.3109/09553002.2012.694008.
  • Saigusa, D., M. Shibuya, D. Jinno, H. Yamakoshi, Y. Iwabuchi, A. Yokosuka, Y. Mimaki, A. Naganuma, Y. Ohizumi, Y. Tomioka, et al. 2011. High-performance liquid chromatography with photodiode array detection for determination of nobiletin content in the brain and serum of mice administrated the natural compound. Analytical and Bioanalytical Chemistry 400 (10):3635–41. doi: 10.1007/s00216-011-5031-2.
  • Salden, B. N., F. J. Troost, E. de Groot, Y. R. Stevens, M. Garces-Rimon, S. Possemiers, B. Winkens, and A. A. Masclee. 2016. Randomized clinical trial on the efficacy of hesperidin 2S on validated cardiovascular biomarkers in healthy overweight individuals. The American Journal of Clinical Nutrition 104 (6):1523–33. doi: 10.3945/ajcn.116.136960.
  • Samie, A., R. Sedaghat, T. Baluchnejadmojarad, and M. Roghani. 2018. Hesperetin, a citrus flavonoid, attenuates testicular damage in diabetic rats via inhibition of oxidative stress, inflammation, and apoptosis. Life Sciences 210:132–9. doi: 10.1016/j.lfs.2018.08.074.
  • Satarug, S., S. H. Garrett, M. A. Sens, and D. A. Sens. 2010. Cadmium, environmental exposure, and health outcomes. Environmental Health Perspectives 118 (2):182–90. doi: 10.1289/ehp.0901234.
  • Saunt, J. 1990. Citrus varieties of the world. An illustrated guide. Norwich: Sinclair International Ltd.
  • Selmi, S., K. Rtibi, D. Grami, H. Sebai, and L. Marzouki. 2017. Protective effects of orange (Citrus sinensis L.) peel aqueous extract and hesperidin on oxidative stress and peptic ulcer induced by alcohol in rat. Lipids in Health and Disease 16 (1):152. doi: 10.1186/s12944-017-0546-y.
  • Shagirtha, K., and L. Pari. 2011. Hesperetin, a citrus flavonone, protects potentially cadmium induced oxidative testicular dysfunction in rats. Ecotoxicology and Environmental Safety 74 (7):2105–11. doi: 10.1016/j.ecoenv.2011.06.002.
  • Shaik, N., M. Zbidah, and F. Lang. 2012. Inhibition of Ca(2+) entry and suicidal erythrocyte death by naringin. Cellular Physiology and Biochemistry : International Journal of Experimental Cellular Physiology, Biochemistry, and Pharmacology 30 (3):678–86. doi: 10.1159/000341448.
  • Shaikh, S., L. K. Bhatt, and K. Barve. 2019. Attenuation of isoproterenol-induced cardiotoxicity in rats by Narirutin rich fraction from grape fruit. Phytomedicine : International Journal of Phytotherapy and Phytopharmacology 55:222–8. doi: 10.1016/j.phymed.2018.06.037.
  • Shen, C. Y., L. Wan, T. X. Wang, and J. G. Jiang. 2019. Citrus aurantium L. var. amara Engl. inhibited lipid accumulation in 3T3-L1 cells and Caenorhabditis elegans and prevented obesity in high-fat diet-fed mice. Pharmacological Research 147:104347. doi: 10.1016/j.phrs.2019.104347.
  • Shukla, K., H. Sonowal, A. Saxena, and K. V. Ramana. 2018. Didymin prevents hyperglycemia-induced human umbilical endothelial cells dysfunction and death. Biochemical Pharmacology 152:1–10. doi: 10.1016/j.bcp.2018.03.012.
  • Sies, H., C. Berndt, and D. P. Jones. 2017. Oxidative Stress. Annual Review of Biochemistry 86:715–48. doi: 10.1146/annurev-biochem-061516-045037.
  • Snyder, S. M., J. D. Reber, B. L. Freeman, K. Orgad, D. L. Eggett, and T. L. Parker. 2011. Controlling for sugar and ascorbic acid, a mixture of flavonoids matching navel oranges significantly increases human postprandial serum antioxidant capacity. Nutrition Research (New York, N.Y.) 31 (7):519–26. doi: 10.1016/j.nutres.2011.06.006.
  • Sommella, E., F. Pagano, G. Pepe, C. Ostacolo, M. Manfra, M. Chieppa, R. Di Sanzo, S. Carabetta, P. Campiglia, and M. Russo. 2017. Flavonoid composition of tarocco (Citrus sinensis L. Osbeck) clone "lempso" and fast antioxidant activity screening by DPPH-UHPLC-PDA-IT-TOF. Phytochemical Analysis : PCA 28 (6):521–8. doi: 10.1002/pca.2701.
  • Srinivasan, S., and L. Pari. 2012. Ameliorative effect of diosmin, a citrus flavonoid against streptozotocin-nicotinamide generated oxidative stress induced diabetic rats. Chemico-Biological Interactions 195 (1):43–51. doi: 10.1016/j.cbi.2011.10.003.
  • Stocker, R. 2016. Antioxidant defenses in human blood plasma and extra-cellular fluids. Archives of Biochemistry and Biophysics 595:136–9. doi: 10.1016/j.abb.2015.11.021.
  • Su, J. D., J. H. Yen, S. M. Li, C. Y. Weng, M. H. Lin, C. T. Ho, and M. J. Wu. 2012. 3′,4′-didemethylnobiletin induces phase II detoxification gene expression and modulates PI3K/Akt signaling in PC12 cells . Free Radical Biology & Medicine 52 (1):126–41. doi: 10.1016/j.freeradbiomed.2011.10.002.
  • Tarozzi, A., S. Hrelia, C. Angeloni, F. Morroni, P. Biagi, M. Guardigli, G. Cantelli-Forti, and P. Hrelia. 2006. Antioxidant effectiveness of organically and non-organically grown red oranges in cell culture systems. European Journal of Nutrition 45 (3):152–8. doi: 10.1007/s00394-005-0575-6.
  • Tirkey, N., S. Pilkhwal, A. Kuhad, and K. Chopra. 2005. Hesperidin, a citrus bioflavonoid, decreases the oxidative stress produced by carbon tetrachloride in rat liver and kidney. BMC Pharmacology 5 (1):2. doi: 10.1186/1471-2210-5-2.
  • Tonin, F. S., L. M. Steimbach, A. Wiens, C. M. Perlin, and R. Pontarolo. 2015. Impact of natural juice consumption on plasma antioxidant status: A systematic review and meta-analysis. Molecules (Basel, Switzerland) 20 (12):22146–56. doi: 10.3390/molecules201219834.
  • Trombetta, D., F. Cimino, M. Cristani, G. Mandalari, A. Saija, G. Ginestra, A. Speciale, J. Chirafisi, G. Bisignano, K. Waldron, et al. 2010. In vitro protective effects of two extracts from bergamot peels on human endothelial cells exposed to tumor necrosis factor-alpha (TNF-alpha). Journal of Agricultural and Food Chemistry 58 (14):8430–6. doi: 10.1021/jf1008605.
  • Wang, F., Y. Huang, W. Wu, C. Zhu, R. Zhang, J. Chen, and J. Zeng. 2020. Metabolomics analysis of the peels of different colored citrus fruits (Citrus reticulata cv. 'Shatangju') during the maturation period based on UHPLC-QQQ-MS. Molecules 25 (2):396. doi: 10.3390/molecules25020396.
  • Wang, J. J., and P. Cui. 2013. Neohesperidin attenuates cerebral ischemia-reperfusion injury via inhibiting the apoptotic pathway and activating the Akt/Nrf2/HO-1 pathway. Journal of Asian Natural Products Research 15 (9):1023–37. doi: 10.1080/10286020.2013.827176.
  • Wang, Y., J. Qian, J. P. Cao, D. L. Wang, C. R. Liu, R. X. Yang, X. Li, and C. D. Sun. 2017. Antioxidant capacity, anticancer ability and flavonoids composition of 35 citrus (Citrus reticulata Blanco) varieties. Molecules 22 (7):1114. doi: 10.3390/molecules22071114.
  • Wang, Y., S. Y. Ji, W. J. Zang, N. C. Wang, J. P. Cao, X. Li, and C. D. Sun. 2019. Identification of phenolic compounds from a unique citrus species, finger lime (Citrus australasica) and their inhibition of LPS-induced NO-releasing in BV-2 cell line. Food and Chemical Toxicology : An International Journal Published for the British Industrial Biological Research Association 129:54–63. doi: 10.1016/j.fct.2019.04.006.
  • Wijesinghe, W. A., M. Senevirathne, M. C. Oh, and Y. J. Jeon. 2011. Protective effect of methanol extract from citrus press cakes prepared by far-infrared radiation drying on H(2)O(2)-mediated oxidative damage in Vero cells. Nutrition Research and Practice 5 (5):389–95. doi: 10.4162/nrp.2011.5.5.389.
  • Wilson, A. E., and L. Tian. 2019. Phylogenomic analysis of UDP-dependent glycosyltransferases provides insights into the evolutionary landscape of glycosylation in plant metabolism . The Plant Journal : For Cell and Molecular Biology 100 (6):1273–88. doi: 10.1111/tpj.14514.
  • Wojnar, W., M. Zych, and I. Kaczmarczyk-Sedlak. 2018. Antioxidative effect of flavonoid naringenin in the lenses of type 1 diabetic rats. Biomedicine & Pharmacotherapy = Biomedecine & Pharmacotherapie 108:974–84. doi: 10.1016/j.biopha.2018.09.092.
  • Wu, G. A., J. Terol, V. Ibanez, A. Lopez-Garcia, E. Perez-Roman, C. Borreda, C. Domingo, F. R. Tadeo, J. Carbonell-Caballero, R. Alonso, et al. 2018. Genomics of the origin and evolution of citrus. Nature 554 (7692):311–6. doi: 10.1038/nature25447.
  • Wunpathe, C., P. Potue, P. Maneesai, S. Bunbupha, P. Prachaney, U. Kukongviriyapan, V. Kukongviriyapan, and P. Pakdeechote. 2018. Hesperidin suppresses renin-angiotensin system mediated NOX2 over-expression and sympathoexcitation in 2K-1C hypertensive rats. The American Journal of Chinese Medicine 46 (4):751–67. doi: 10.1142/S0192415X18500398.
  • Xi, W., B. Fang, Q. Zhao, B. Jiao, and Z. Zhou. 2014. Flavonoid composition and antioxidant activities of Chinese local pummelo (Citrus grandis Osbeck.) varieties. Food Chemistry 161:230–8. doi: 10.1016/j.foodchem.2014.04.001.
  • Xi, W., G. Zhang, D. Jiang, and Z. Zhou. 2015. Phenolic compositions and antioxidant activities of grapefruit (Citrus paradisi Macfadyen) varieties cultivated in China. International Journal of Food Sciences and Nutrition 66 (8):858–66. doi: 10.3109/09637486.2015.1095864.
  • Xi, W., J. Lu, J. Qun, and B. Jiao. 2017. Characterization of phenolic profile and antioxidant capacity of different fruit part from lemon (Citrus limon Burm.) cultivars. Journal of Food Science and Technology 54 (5):1108–18. doi: 10.1007/s13197-017-2544-5.
  • Xie, G., X. Meng, F. Wang, Y. Bao, and J. Huo. 2017. Eriodictyol attenuates arsenic trioxide-induced liver injury by activation of Nrf2. Oncotarget 8 (40):68668–74. doi: 10.18632/oncotarget.19822.
  • Xiong, Y., J. Qiu, C. Li, Y. Qiu, L. Guo, Y. Liu, J. Wan, Y. Li, G. Wu, L. Wang, et al. 2018. Fortunellin-induced modulation of phosphatase and tensin homolog by MicroRNA-374a decreases inflammation and maintains intestinal barrier function in colitis. Frontiers in Immunology 9:83. doi: 10.3389/fimmu.2018.00083.
  • Xu, C., J. Chen, J. Zhang, X. Hu, X. Zhou, Z. Lu, and H. Jiang. 2013. Naringenin inhibits angiotensin II-induced vascular smooth muscle cells proliferation and migration and decreases neointimal hyperplasia in balloon injured rat carotid arteries through suppressing oxidative stress. Biological and Pharmaceutical Bulletin 36 (10):1549–55. doi: 10.1248/bpb.b13-00247.
  • Yang, W. L., S. Y. Chen, C. Y. Ho, and G. C. Yen. 2020. Citrus flavonoids suppress IL-5 and ROS through distinct pathways in PMA/ionomycin-induced EL-4 cells. Food & Function 11 (1):824–33. doi: 10.1039/c9fo02815c.
  • Yilmaz, D., N. C. Aydemir, O. Vatan, E. Tuzun, and R. Bilaloglu. 2012. Influence of naringin on cadmium-induced genomic damage in human lymphocytes in vitro. Toxicology and Industrial Health 28 (2):114–21. doi: 10.1177/0748233711407241.
  • Yonekura-Sakakibara, K., Y. Higashi, and R. Nakabayashi. 2019. The Origin and Evolution of Plant Flavonoid Metabolism. Frontiers in Plant Science 10:943. doi: 10.3389/fpls.2019.00943.
  • Yoo, K. M., I. K. Hwang, J. H. Park, and B. Moon. 2009. Major phytochemical composition of 3 native Korean citrus varieties and bioactive activity on V79-4 cells induced by oxidative stress. Journal of Food Science 74 (6):C462–468. doi: 10.1111/j.1750-3841.2009.01229.x.
  • Yoon, J. H., T. G. Lim, K. M. Lee, A. J. Jeon, S. Y. Kim, and K. W. Lee. 2011. Tangeretin reduces ultraviolet B (UVB)-induced cyclooxygenase-2 expression in mouse epidermal cells by blocking mitogen-activated protein kinase (MAPK) activation and reactive oxygen species (ROS) generation. Journal of Agricultural and Food Chemistry 59 (1):222–8. doi: 10.1021/jf103204x.
  • Yu, E. A., G. S. Kim, J. E. Lee, S. Park, S. Yi, S. J. Lee, J. H. Kim, J. S. Jin, A. M. Abd El-Aty, J. H. Shim, et al. 2015. Flavonoid profiles of immature and mature fruit tissues of Citrus grandis Osbeck (Dangyuja) and overall contribution to the antioxidant effect. Biomedical Chromatography : BMC 29 (4):590–4. doi: 10.1002/bmc.3318.
  • Yu, L. M., X. Dong, J. Zhang, Z. Li, X. D. Xue, H. J. Wu, Z. L. Yang, Y. Yang, and H. S. Wang. 2019. Naringenin Attenuates Myocardial Ischemia-Reperfusion Injury via cGMP-PKGIα Signaling and In Vivo and In Vitro Studies . Oxidative Medicine and Cellular Longevity 2019:7670854. doi: 10.1155/2019/7670854.
  • Zhang, Y., Y. Sun, W. Xi, Y. Shen, L. Qiao, L. Zhong, X. Ye, and Z. Zhou. 2014. Phenolic compositions and antioxidant capacities of Chinese wild mandarin (Citrus reticulata Blanco) fruits. Food Chem 145:674–80. doi: 10.1016/j.foodchem.2013.08.012.
  • Zhao, C., X. Liu, Q. Gong, J. Cao, W. Shen, X. Yin, D. Grierson, B. Zhang, C. Xu, and X. Li. 2020. Three AP2/ERF family members modulate flavonoid synthesis by regulating type IV chalcone isomerase in citrus. Plant Biotechnology Journal 1–18. doi: 10.1111/pbi.13494.
  • Zhao, Z. Y., S. S. He, Y. Hu, Y. Yang, B. N. Jiao, Q. Fang, and Z. Q. Zhou. 2017. Fruit flavonoid variation between and within four cultivated Citrus species evaluated by UPLC-PDA system. Scientia Horticulturae 224:93–101. doi: 10.1016/j.scienta.2017.05.038.
  • Zheng, Y. Y., X. Zeng, W. Peng, Z. Wu, and W. W. Su. 2019. Characterisation and classification of Citri Reticulatae Pericarpium varieties based on UHPLC-Q-TOF-MS/MS combined with multivariate statistical analyses. Phytochemical Analysis : PCA 30 (3):278–91. doi: 10.1002/pca.2812.
  • Zielińska-Przyjemska, M., and E. Ignatowicz. 2008. Citrus fruit flavonoids influence on neutrophil apoptosis and oxidative metabolism. Phytotherapy Research : PTR 22 (12):1557–62. doi: 10.1002/ptr.2449.

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