Aiping, B., Cungui, M., Russell, W.J., Zdzislaw, M.S., Alicja, B. and Yusuf, A.H. 2017. Anticancer actions of lysosomally targeted inhibitor, LCL521, of acid ceramidase. – PLoS ONE 12: 1-10.
Anna, K., Anna, R., Michal, G., Jerzy, S. and Grazyna, S. 2014. Structure and antioxidant activity of polyphenols derived from Propolis. – Molecules 19: 78-101.
Benavente-Garcia, O. and Castillo, J. 2008. Update on uses and properties of citrus flavonoids: new findings in anticancer, cardiovascular, and anti-inflammatory activity. – J. Agric. Food. Chem. 56: 6185-6205.
Carlos, M.P., Carol, W., Arran, K. T., Peter, M., Graeme, C. and James, M. 2016. Antitumour activity of the novel flavonoid Oncamex in preclinical breast cancer models. – British J. Cancer 114: 905-916.
Chang, H., Mi, M., Ling, W., Zhu, J., Zhang, Q., Wei, N.A., Zhou, Y., Tang, Y., Yu, X. and Zhang, T.I.N. 2010. Structurally related anticancer activity of flavonoids: involvement of reactive oxygen species generation. – J. Food Biochem. 34:1-14.
Chou, C.C., Yang, J.S, Lu, H.F., Ip, S.W., Lo, C., Wu, C.C., Lin, J.P., Tang, N.Y., Chung, J.G. and Chou, M.J. 2010. Quercetin-mediated cell cycle arrest and apoptosis involving activation of a caspase cascade through the mitochondrial pathway in human breast cancer MCF-7 cells. – Arch. Pharm. Res. 33: 1181-1191.
Elisa, R.C. Paolo, N. Francisco, M. and Iván L.M. 2017. The enzymatic sphingomyelin to ceramide conversion increases the shear membrane viscosity at the air-water interface. – Adv. Colloid Interface Sci. 247: 555-560.
Galati, G.O'. Brien, P.J. 2004. Potential toxicity of flavonoids and other dietary phenolics: significance for their chemopreventive and anticancer properties. – Free Radic. Biol. Med. 37: 287-303.
Geraldine, R., Christophe, S., Benoit, L., Hervé, S., Hamid, M., Hassan, E.L., Btaouri, S. and Dedieu, L.M. 2009. De novo ceramide synthesis is responsible for the anti-tumor properties of camptothecin and doxorubicin in follicular thyroid carcinoma. – Int. J. Biochem. Cell Biol. 41: 1165-1172.
Guohua, H., Lei, Z., Yefei, R., Xiaoling, N. and Yihong Sun. 2014. Downstream carcinogenesis signaling pathways by green tea polyphenols: A translational perspective of chemoprevention and treatment for cancers. – Curr. Drug Metabol. 15: 14-22.
Han, D.H., Jeong, J.I.N.H. and Kim, J.H.E.E. 2009. Anti-proliferative and apoptosis induction activity of green tea polyphenols on human promyelocytic leukemia HL-60 cells. – Anticancer Res. 29: 1417-1421.
Jeong, J.H., An, J.Y., Kwon, Y.T., Rhee, J.G. and Lee, Y.J. 2009. Effects of low dose quercetin: cancer cell-specific inhibition of cell cycle progression. – J. Cell Biochem. 106: 73-82.
Ki Duk, P., Sul, Gi, L., Sung, U.K.K., Sung Han, K., Won Suck, S., Sung Jin, C. and Do Hyeon, J. 2004. Anticancer activity of 3-O-acyl and alkyl-(-)-epicatechin derivatives. – Bioorg. Med. Chem. 14: 5189-5192.
Kim, M.E., Ha, T.K., Yoon, J.H. and Lee, J.S. 2014. Myricetin induces cell death of human colon cancer cells via BAX/BCL2-dependent pathway. – Anticancer Res. 34: 701-6.
Krishna, P.B., Burkhard, K., Andrea, H. and Christoph, A. 2013. Effective inhibition of acid and neutral ceramidases by novel B-13 and LCL-464 analogues. – Bioorg. Med. Chem. 21: 874-882.
Kumar, G. and Baojun, X. 2018. Telomerase inhibitors from natural products and their anticancer potential. ‒ Int. J. Mol. Sci. 19: 2-26.
Lafont, E., Dupont, R., Andrieu-Abadie, N., Okazaki, T. and Schulze-Osthoff, K. 2012. Ordering of ceramide formation and caspase-9 activation in CD95L-induced Jurkat leukemia T cell apoptosis. – Biochim. Biophys. Acta. 1821:684-693.
Leah, J. Siskind. 2005. Mitochondrial Ceramide and the Induction of Apoptosis. – J. Bioenerg. Biomembr. 37: 143-153.
Lee, Y.K, Park, S.Y, Kim, Y.M., Lee, W.S. and Park, O.J. 2009. AMP kinase/cyclooxygenase-2 pathway regulates proliferation and apoptosis of cancer cells treated with quercetin. ‒ Exp. Mol. Med. 41: 201-207.
Lin, C.F, Chen, C.L. andLin, Y.S. 2006. Ceramide in apoptotic signaling and anticancer therapy. ‒ Curr. Med. Chem. 13:1609-1616.
Lotito, S.B. and Frei, B. 2006. Consumption of Flavonoid-rich foods and increased plasma antioxidant capacity in human: cause, consequence or epiphenomenon. – Free Radic. Biol. Med. 41: 1727-1746.
Maggioni, D., Nicolini, G., Rigolio, R., Biffi, L., Pignataro, L., Gaini, R. and Garavello, W. 2014. Myricetin and naringenin inhibit human squamous cell carcinoma proliferation and migration in vitro. ‒ Nutr. Cancer 66: 1257-67.
Maurya P.K. and Rizvi, S.I. 2009. Protective role of tea catechins on erythrocytes subjected to oxidative stress during human aging. – Nat. Prod. Res. 23: 1072-1079.
Mendosa-Wilson, A.M., and Glossman-Mitnik, D. 2006. Theoretical study of the molecular properties and chemical reactivity of (+) - catechin and (-)-epicatechin related to their antioxidant ability. – J. Mol. Struct. 761: 97-106.
Mi Sun, K., Kyong Hoon, A., Seok Kyun, K., Hyung, J.J., Jung Eun, J., Jong Min, C., Kwang Mook, J., Sung Yun, J. and Dae Kyong, K. 2010. Hypoxia-induced neuronal apoptosis is mediated by de novo synthesis of ceramide through activation of serine palmitoyltransferase. ‒ Cell. Signal. 22: 610-618.
Moretti, E. Mazzi, L., Terzuoli, G., Bonechi, C., Lacoponi, F., Martini, S., Rossi, C. and Collodel, G. 2012. Effect of quercetin, rutin, naringenin and epicatechin on lipid peroxidation on lipid peroxidation induced in human sperm. – Reprod. Toxicol. 34: 651-657.
Munawar, A., Farhan, S., Faqir, M., Anjum, M.A., Tabussam, T. and Muhammad Shakeel, B. 2017. Natural polyphenols: An overview. ‒ Int. J. Food Prop. 20:1689-1699.
Negrão, R., Costa, R., Duarte, D., Taveira, G.T., Mendanha, M. and Moura, L. 2010. Angiogenesis and inflammation signaling are targets of beer polyphenols on vascular cells. – J. Cell Biochem. 111: 1270-1279.
Ogretmen, B. and Hannun, Y.A. 2004. Biologically active sphingolipids in cancer pathogenesis and treatment. – Nat. Rev. Cancer 4: 604-616.
Sak, K. 2014. Dependence of DPPH radical scavenging activity of dietary flavonoid quercetin on reaction environment. – Mini Rev. Med. Chem. 14: 494-504.
Shyi-Neng, L., Ya-Siou, H. and Chi-Tang, H. 2014. Flavonoid compositions and antioxidant activity of calamondin extracts prepared using different solvents. – J. Food Drug Anal. 22: 290-295.
Smarajit, M., Aarifa, N., Nandita, M., Ritesh, P. and Tamal Kanti, G. 2019. Flavonoids green tea against oxidant stress and inflammation with related human diseases. – Clin. Nutr. Experi. 24: 1-14.
Soares, R., Balogh, G., Guo, S., Gartner, F., Russo, J. and Schmitt, F. 2004. Evidence for the notch signaling pathway on the role of estrogen in angiogenesis. – Mol. Endocrinolgy 18: 2333-2343.
Subhadra, R. 2016. Cancer, a preventable disease of the modern age-an overview from the Indian perspective. – Intl. J. Bioinf. Biol. Sci. 4: 1-4.
Teillet, F., Boumendjel, A., Boutonnat, J. and Ronot, X. 2008. Flavonoids as RTK inhibitors and potential anticancer agents. – Med. Res. Rev. 28: 715-745.
Wang, H., Maurer, B.J., Reynolds, C.P. and Cabot, M.C. 2001. N-(4-hydroxyphenyl) retinamide elevates ceramide in neuroblastoma cell lines by coordinate activation of serine palmitoyltransferase and ceramide synthase. – Cancer Res. 61: 5102-5105.
Williams, R.J., Spencer, J.P. and Rice-Evans, C. 2004. Flavonoids: antioxidants or signalling molecules? – Free Radic. Biol. Med. 36: 838-849.
Xingxuan, H., Arie, D., Shimon, G. and Edward, H.S. 2005. Simultaneous quantitative analysis of ceramide and sphingosine in mouse blood by naphthalene-2,3-dicarboxyaldehyde derivatization after hydrolysis with ceramidase. – Anal. Biochem. 340: 113-122.
Yasuhiro, H., Yasuhiro, H., Keishi, S., Nozomu, O. and Makoto, I. 2005. A sensitive and reproducible assay to measure the activity of glucosylceramide synthase and lactosylceramide synthase using HPLC and Fluorescence substrates. – Anal. Biochem. 345: 181-186.
Zhou, M., Diwu, Z., Panchuk-Voloshina, N. and Haugland, R.P. 1997. A stable nonfluorescent derivative of resorufin for the fluorometric determination of trace hydrogen peroxide: applications in detecting the activity of phagocyte NADPH oxidase and other oxidases. – Anal. Biochem. 253: 62-68.