230
Views
7
CrossRef citations to date
0
Altmetric
Original Articles

Ethanolic Extract of Bark from Salix aegyptiaca Ameliorates 1,2-dimethylhydrazine-induced Colon Carcinogenesis in Mice by Reducing Oxidative Stress

, , , , &
Pages 495-506 | Received 20 Jan 2015, Accepted 21 Oct 2015, Published online: 19 Apr 2016

References

  • Chan DS, Lau R, Aune D, Vieira R, Greenwood DC, et al.: Red and processed meat and colorectal cancer incidence: meta-analysis of prospective studies. PLoS ONE 6, e20456, 2011.
  • Fearon ER: Molecular genetics of colorectal cancer. Annu Rev Pathol 6, 479–507, 2011.
  • Weng CJ and Yen GC: Chemopreventive effects of dietary phytochemicals against cancer invasion and metastasis: phenolic acids, monophenol, polyphenol, and their derivatives. Cancer Treat Rev 38, 76–87, 2012.
  • Mahdi JG, Mahdi AJ, and Bowen ID: The historical analysis of aspirin discovery, its relation to the willow tree and antiproliferative and anticancer potential. Cell Proliferat 39, 147–155, 2006.
  • Chrubasik S, Kunzel O, Model A, Conradt C, and Black A: Treatment of low back pain with a herbal or synthetic anti-rheumatic: a randomized controlled study. Willow bark extract for low back pain. Rheumatology 40, 1388–1393, 2001.
  • Fiebich BL and Chrubasik S: Effects of an ethanolic Salix extract on the release of selected inflammatory mediators in vitro. Phytomedicine 11, 135–138, 2004.
  • Hostanska K, Jurgenliemk G, Abel G, Nahrstedt A, and Saller R: Willow bark extract (BNO1455) and its fractions suppress growth and induce apoptosis in human colon and lung cancer cells. Cancer Detect Prev 31, 129–139, 2007.
  • Vlachojannis J, Magora F, and Chrubasik S: Willow species and aspirin: different mechanism of actions. Phytother Res 25, 1102–1104, 2011.
  • Karimi I, Hayatgheybi H, Shamspur T, Kamalak A, Pooyanmehr M, et al.: Chemical composition and effect of an essential oil of Salix aegyptiaca (musk willow) in hypercholesterolemic rabbit model. Rev Bras Farmacogn 21, 407–414, 2011.
  • Enayat S and Banerjee S: Comparative antioxidant activity of extracts from leaves, bark and catkins of Salix aegyptiaca sp. Food Chem 116, 23–28, 2009.
  • Enayat S, Ceyhan MS, Basaran AA, Gursel M, and Banerjee S: Anticarcinogenic effects of the ethanolic extract of salix aegyptiaca in colon cancer cells: involvement of Akt/PKB and MAPK pathways. Nutr Cancer 65, 1045–1058, 2013.
  • Agnolet S, Wiese S, Verpoorte R, and Staerk D: Comprehensive analysis of commercial willow bark extracts by new technology platform: combined use of metabolomics, high-performance liquid chromatography-solid-phase extraction-nuclear magnetic resonance spectroscopy and high-resolution radical scavenging assay. J Chromatogr A 1262, 130–137, 2012.
  • Enayat S and Banerjee S: The ethanolic extract of bark from Salix aegyptiaca inhibits the metastatic potential and epithelial to mesenchymal transition of colon cancer cell lines. Nutr Cancer 66, 999–1008, 2014.
  • Bounaama A, Djerdjouri B, Laroche-Clary A, Le Morvan V, and Robert J: Short curcumin treatment modulates oxidative stress, arginase activity, aberrant crypt foci, and TGF-beta1 and HES-1 transcripts in 1,2-dimethylhydrazine-colon carcinogenesis in mice. Toxicology 302, 308–317, 2012.
  • Raju J: Azoxymethane-induced rat aberrant crypt foci: relevance in studying chemoprevention of colon cancer. World J Gastroenterol 14, 6632–6635, 2008.
  • N'Guessan JD, Bidie AP, Lenta BN, Weniger B, Andre P, et al.: In vitro assays for bioactivity-guided isolation of antisalmonella and antioxidant compounds in Thonningia sanguinea flowers. Afr J Biotechnol 6, 1685–1689, 2007.
  • Amrouche-Mekkioui I and Djerdjouri B: N-acetylcysteine improves redox status, mitochondrial dysfunction, mucin-depleted crypts and epithelial hyperplasia in dextran sulfate sodium-induced oxidative colitis in mice. Eur J Pharmacol 691, 209–217, 2012.
  • Bradford MM: A rapid and sensitive method for the quantitation of microgram quantities of protein utilizing the principle of protein-dye binding. Anal Biochem 72, 248–254, 1976.
  • Ohkawa H, Ohishi N, and Yagi K: Assay for lipid peroxides in animal tissues by thiobarbituric acid reaction. Anal Biochem 95, 351–358, 1979.
  • Beutler E, Duron O, and Kelly BM: Improved method for the determination of blood glutathione. J Lab Clin Med 61, 882–888, 1963.
  • Matrella E, Valatas V, Notas G, Roumpaki H, Xidakis C, et al.: Bolus somatostatin but not octreotide reduces hepatic sinusoidal pressure by a NO-independent mechanism in chronic liver disease. Aliment Pharmacol Ther 15, 857–864, 2001.
  • Bradley PP, Priebat DA, Christensen RD, and Rothstein G: Measurement of cutaneous inflammation: estimation of neutrophil content with an enzyme marker. J Invest Dermatol 78, 206–209, 1982.
  • Cimen I, Tuncay S, and Banerjee S: 15-Lipoxygenase-1 expression suppresses the invasive properties of colorectal carcinoma cell lines HCT-116 and HT-29. Cancer Sci 100, 2283–2291, 2009.
  • Bird RP: Observation and quantification of aberrant crypts in the murine colon treated with a colon carcinogen: preliminary findings. Cancer Lett 37, 147–151, 1987.
  • Yuan JH, Li YQ, and Yang XY: Protective effects of epigallocatechin gallate on colon preneoplastic lesions induced by 2-amino-3-methylimidazo[4,5-f] quinoline in mice. Mol Med 14, 590–598, 2008.
  • Alrawi SJ, Schiff M, Carroll RE, Dayton M, Gibbs JF, et al.: Aberrant crypt foci. Anticancer Res 26, 107–119, 2006.
  • McLean MH, Murray GI, Stewart KN, et al.: The inflammatory microenvironment in colorectal neoplasia. PLoS ONE 6, e15366, 2011.
  • Circu ML and Aw TY: Intestinal redox biology and oxidative stress. Semin Cell Dev Biol 23, 729–737, 2012.
  • Cheng CW, Liu YF, Yu JC, Wang HW, Ding SL, et al.: Prognostic significance of cyclin D1, beta-catenin, and MTA1 in patients with invasive ductal carcinoma of the breast. Ann Surg Oncol 19, 4129–4139, 2012.
  • Ullman TA and Itzkowitz SH: Intestinal inflammation and cancer. Gastroenterology 140, 1807–1816, 2011.
  • Niedernhofer LJ, Daniels JS, Rouzer CA, Greene RE, and Marnett LJ: Malondialdehyde, a product of lipid peroxidation, is mutagenic in human cells. J Biol Chem 278, 31426–31433, 2003.
  • Valko M, Rhodes CJ, Moncol J, Izakovic M, and Mazur M: Free radicals, metals and antioxidants in oxidative stress-induced cancer. Chem Biol Interact 160, 1–40, 2006.
  • Myant KB, Cammareri P, McGhee EJ, Ridgway RA, Huels DJ, et al.: ROS production and NF-kappaB activation triggered by RAC1 facilitate WNT-driven intestinal stem cell proliferation and colorectal cancer initiation. Cell Stem Cell 12, 761–773, 2013.
  • Krasinskas AM: EGFR signaling in colorectal carcinoma. Patholog Res Int 2011, 932932, 2011.
  • Eberhart CE, Coffey RJ, Radhika A, Giardiello FM, Ferrenbach S, et al.: Up-regulation of cyclooxygenase 2 gene expression in human colorectal adenomas and adenocarcinomas. Gastroenterology 107, 1183–1188, 1994.
  • Hastak K, Gupta S, Ahmad N, Agarwal MK, Agarwal ML, et al.: Role of p53 and NF-kappaB in epigallocatechin-3-gallate-induced apoptosis of LNCaP cells. Oncogene 22, 4851–4859, 2003.
  • Xu ZX, Ding T, Haridas V, Connolly F, and Gutterman JU: Avicin D, a plant triterpenoid, induces cell apoptosis by recruitment of Fas and downstream signaling molecules into lipid rafts. PLoS ONE 4, e8532, 2009.
  • Coant N, Ben Mkaddem S, Pedruzzi E, Guichard C, Tréton X, et al.: NADPH oxidase 1 modulates WNT and NOTCH1 signaling to control the fate of proliferative progenitor cells in the colon. Mol Cell Biol 30, 2636–2650, 2010.
  • Higurashi T, Hosono K, Endo H, Takahashi H, Iida H, et al.: Eicosapentaenoic acid (EPA) efficacy for colorectal aberrant crypt foci (ACF): a double-blind randomized controlled trial. BMC Cancer, 12, 413, 2012.
  • Ochiai M, Ushigome M, Fujiwara K, Ubagai T, Kawamori T, et al.: Characterization of dysplastic aberrant crypt foci in the rat colon induced by 2-amino-1-methyl-6-phenylimidazo[4,5-b]pyridine. Am J Pathol, 163, 1607–1614, 2003.
  • Femia AP, Dolara P, and Caderni G: Mucin-depleted foci (MDF) in the colon of rats treated with azoxymethane (AOM) are useful biomarkers for colon carcinogenesis. Carcinogenesis, 25, 277–281, 2004.
  • Al-Henhena N, Khalifa SA, Ying RP, Hassandarvish P, Rouhollahi E, et al.: Chemopreventive effects of Strobilanthes crispus leaf extract on azoxymethane-induced aberrant crypt foci in rat colon. Sci Rep, 5, 13312, 2015.
  • Alam S, Pal A, Kumar R, Mir SS, and Ansari KM: Nexrutine inhibits azoxymethane-induced colonic aberrant crypt formation in rat colon and induced apoptotic cell death in colon adenocarcinoma cells. Mol Carcinog, doi: 10.1002/mc.22368, 2015

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.