Antitumor activity of Cuphea ignea extract against benzo(a)pyrene-induced lung tumorigenesis in Swiss Albino mice

dc.AffiliationOctober University for modern sciences and Arts (MSA)
dc.contributor.authorHassan S.K.
dc.contributor.authorMousa A.M.
dc.contributor.authorEl-Sammad N.M.
dc.contributor.authorAbdel-Halim A.H.
dc.contributor.authorKhalil W.K.B.
dc.contributor.authorElsayed E.A.
dc.contributor.authorAnwar N.
dc.contributor.authorLinscheid M.W.
dc.contributor.authorMoustafa E.S.
dc.contributor.authorHashim A.N.
dc.contributor.authorNawwar M.
dc.contributor.otherDepartment of Biochemistry
dc.contributor.otherNational Research Centre
dc.contributor.otherDokki
dc.contributor.otherCairo
dc.contributor.otherEgypt; Department of Cell Biology
dc.contributor.otherNational Research Centre
dc.contributor.otherDokki
dc.contributor.otherCairo
dc.contributor.otherEgypt; Bioproducts Research Chair
dc.contributor.otherZoology Department
dc.contributor.otherCollege of Science
dc.contributor.otherKing Saud University
dc.contributor.otherRiyadh
dc.contributor.otherSaudi Arabia; Department of Chemistry of Natural and Microbial Products
dc.contributor.otherNational Research Centre
dc.contributor.otherDokki
dc.contributor.otherCairo
dc.contributor.otherEgypt; Department of Pathology
dc.contributor.otherNational Cancer Institute
dc.contributor.otherCairo University
dc.contributor.otherCairo
dc.contributor.otherEgypt; Laboratory of Applied Analytical and Environmental Chemistry
dc.contributor.otherHumboldt-University
dc.contributor.otherBerlin
dc.contributor.otherGermany; October University of Modern Sciences and Arts
dc.contributor.other6th October City
dc.contributor.otherEgypt; Department of Phytochemistry and Plant Systematics
dc.contributor.otherNational Research Centre
dc.contributor.otherCairo
dc.contributor.otherEgypt
dc.date.accessioned2020-01-09T20:40:46Z
dc.date.available2020-01-09T20:40:46Z
dc.date.issued2019
dc.descriptionScopus
dc.description.abstractLung cancer has one of the highest mortality rates among various types of cancer and is the most frequent cancer in the world. The incidence of lung cancer is increasing rapidly, in parallel with an increased incidence of smoking. Effective chemoprevention may be an alternative strategy to control the incidence of lung cancer. Thus, the objective of current work was to ascertain the possible preventive and therapeutic efficacies of Cuphea ignea extract in a mouse model of lung tumorigenesis and its cytotoxicity toward the A549 human lung cancer cell line. Lung tumorigenesis was induced by the oral administration of benzo(a)pyrene (50 mg/kg b.w.) twice per week to Swiss albino mice for 4 weeks. Benzo(a)pyrene-treated mice were orally administered C. ignea (300 mg/kg body weight, 5 days/week) for 2 weeks before or 9 weeks after the first benzo(a)pyrene dose, for a total of 21 weeks. At the end of the administration period, various parameters were measured in the serum and lung tissues. The results revealed that the oral administration of benzo(a)pyrene resulted in increases in relative lung weight, serum levels of tumor markers (ADA, AHH, and LDH), and the inflammatory marker NF-?B, and a decreased total antioxidant capacity compared with the control. In addition, decreased levels of enzymatic and non-enzymatic antioxidants, with a concomitant increase in lipid peroxidation, metalloproteinases (MMP-2 and MMP-12), and the angiogenic marker VEGF were detected in lung tissues. Moreover, benzo(a)pyrene administration induced the upregulation of PKC?, COX-2, and Bcl-2 expression, with the downregulation of BAX and caspase-3 expression. C. ignea treatment alleviated all alterations in these parameters, which was further confirmed by the histopathological analysis of lung tissues. The findings of the current work provide the first verification of the preventive and therapeutic potentials of C. ignea extract against benzo(a)pyrene-induced lung tumorigenesis in mice. � 2019 The Authorsen_US
dc.identifier.doihttps://doi.org/10.1016/j.toxrep.2019.10.004
dc.identifier.doiPubMedID
dc.identifier.issn22147500
dc.identifier.otherhttps://doi.org/10.1016/j.toxrep.2019.10.004
dc.identifier.otherPubMedID
dc.identifier.urihttps://t.ly/Gggez
dc.language.isoEnglishen_US
dc.publisherTaylor and Francis Ltd.
dc.publisherElsevier Inc.en_US
dc.relation.ispartofseriesToxicology Reports
dc.relation.ispartofseries6
dc.subjectOctober University for Modern Sciences and Arts
dc.subjectUniversity for Modern Sciences and Arts
dc.subjectMSA University
dc.subjectجامعة أكتوبر للعلوم الحديثة والآداب
dc.subjectBenzo(a)pyreneen_US
dc.subjectCuphea igneaen_US
dc.subjectLung tumorigenesisen_US
dc.subjectPlant phenolicsen_US
dc.subjectadenosine deaminaseen_US
dc.subjectantineoplastic agenten_US
dc.subjectbenzo[a]pyreneen_US
dc.subjectbeta actinen_US
dc.subjectcaspase 3en_US
dc.subjectCuphea ignea extracten_US
dc.subjectcyclooxygenase 2en_US
dc.subjectimmunoglobulin enhancer binding proteinen_US
dc.subjectlactate dehydrogenaseen_US
dc.subjectmacrophage elastaseen_US
dc.subjectplant extracten_US
dc.subjectprotein Baxen_US
dc.subjectprotein bcl 2en_US
dc.subjecttumor markeren_US
dc.subjectunclassified drugen_US
dc.subjectunspecific monooxygenaseen_US
dc.subjectvasculotropinen_US
dc.subjectA-549 cell lineen_US
dc.subjectaerial plant parten_US
dc.subjectalbino mouseen_US
dc.subjectanimal cellen_US
dc.subjectanimal experimenten_US
dc.subjectanimal modelen_US
dc.subjectanimal tissueen_US
dc.subjectantineoplastic activityen_US
dc.subjectArticleen_US
dc.subjectbody weighten_US
dc.subjectcancer incidenceen_US
dc.subjectcarbon nuclear magnetic resonanceen_US
dc.subjectcarcinogenesisen_US
dc.subjectcell cultureen_US
dc.subjectcell viability assayen_US
dc.subjectchemoprophylaxisen_US
dc.subjectcolumn chromatographyen_US
dc.subjectcontrolled studyen_US
dc.subjectcytotoxicityen_US
dc.subjectDNA fragmentationen_US
dc.subjectdrug induced diseaseen_US
dc.subjectelectrospray mass spectrometryen_US
dc.subjectgene expressionen_US
dc.subjectheteronuclear multiple bond correlationen_US
dc.subjectheteronuclear single quantum coherenceen_US
dc.subjecthistopathologyen_US
dc.subjectIC50en_US
dc.subjectin vitro studyen_US
dc.subjectin vivo studyen_US
dc.subjectlipid peroxidationen_US
dc.subjectliquid chromatography-mass spectrometryen_US
dc.subjectlung canceren_US
dc.subjectlung parenchymaen_US
dc.subjectlung weighten_US
dc.subjectmaleen_US
dc.subjectmouseen_US
dc.subjectMTT assayen_US
dc.subjectnonhumanen_US
dc.subjectoxidative stressen_US
dc.subjectpaper chromatographyen_US
dc.subjectpriority journalen_US
dc.subjectproton nuclear magnetic resonanceen_US
dc.subjectreal time polymerase chain reactionen_US
dc.subjectsmokingen_US
dc.subjectthin layer chromatographyen_US
dc.titleAntitumor activity of Cuphea ignea extract against benzo(a)pyrene-induced lung tumorigenesis in Swiss Albino miceen_US
dc.typeArticleen_US
dcterms.isReferencedBySikdar, S., Mukherjee, A., Khuda-Bukhsh, A.R., Ethanolic extract of Marsdenia condurango ameliorates benzo[a]pyrene-induced lung cancer of rats: condurango ameliorates B(a)P-induced lung cancer in rats (2014) J. Pharmacopuncture, 17, pp. 7-17; Bray, F., Ferlay, J., Soerjomataram, I., Siegel, R.L., Torre, L.A., Jemal, A., Global cancer statistics 2018: GLOBOCAN estimates of incidence and mortality worldwide for 36 cancers in 185 countries (2018) CA Cancer J. Clin., 68, pp. 394-424; McCarthy, W.J., Meza, R., Jeon, J., Moolgavkar, S.H., Chapter 6: Lung cancer in never smokers: epidemiology and risk prediction models (2012) Risk Anal., 32, pp. S69-84; Moorthy, B., Chu, C., Carlin, D.J., Polycyclic aromatic hydrocarbons: from metabolism to lung cancer (2015) Toxicol. Sci., 145, pp. 5-15; Vu, A.T., Taylor, K.M., Holman, M.R., Ding, Y.S., Hearn, B., Watson, C.H., Polycyclic aromatic hydrocarbons in the mainstream smoke of popular US cigarettes (2015) Chem. Res. Toxicol., 28, pp. 1616-1626; Klaunig, J.E., Kamendulis, L.M., Chemical carcinogenesis (2007) Casarett and Doull's Toxicology: The Basic Science of Poisons, pp. 329-380. , 7th ed. McGraw-Hill New York; Wang, S., Zang, W., Yang, Y., Zhang, Q., Zhao, M., Gao, Z., Tanshinone IIA and Baicalin inhibiting the formation of benzo [a] pyrene and benzo [a] pyrene induced cytotoxicity: correlation with scavenging free radical (2013) Environ. Toxicol. Pharmacol., 36, pp. 403-410; Bodduluru, L.N., Kasala, E.R., Thota, N., Barua, C.C., Sistla, R., Chemopreventive and therapeutic effects of nimbolide in cancer: the underlying mechanisms (2014) Toxicol. In Vitro, 28, pp. 1026-1035; Attalla, F.E., Anti-angiogenic effectiveness of the pomegranate against benzo(a)pyrene induced lung carcinoma in mice (2015) Int. J. Cancer Res., 11, pp. 164-174; Raffa, D., Maggio, B., Raimondi, M.V., Plescia, F., Daidone, G., Recent discoveries of anticancer flavonoids (2017) Eur. J. Med. Chem., 142, pp. 213-228; Graham, S.A., Freudenstein, J.V., Luker, M., A Phylogenetic study of Cuphea (Lythraceae) based on morphology and nuclear rDNA ITS Sequences (2006) Syst. Bot., 31, pp. 764-778; Floridata, �Cuphea ignea� (2010), Retrieved 2010-07-30; Moustafa, E.S., Swilam, N.F., Ghanem, O.B., Hashim, A.N., Nawwar, M.A., Lindequist, U., A coumarin with an unusual structure from Cuphea ignea, its cytotoxicity and antioxidant activities (2018) Pharmazie, 73, pp. 241-243; Al-Salahi, R., Elsayed, E.A., El Dib, R.A., Wadaan, M., Ezzeldin, E., Marzouk, M., Synthesis, characterization and cytotoxicity evaluation of 5-hydrazono-[1,2,4]triazolo[1,5-a]quinazolines (Part I) (2016) Lat. Am. J. Pharm, 35, pp. 58-65; Al-Salahi, R., Elsayed, E.A., El Dib, R.A., Wadaan, M., Ezzeldin, E., Marzouk, M., Cytotoxicity of new 5-hydrazono-[1,2,4]triazolo[1,5-a]quinazolines (Part II) (2016) Lat. Am. J. Pharm., 35, pp. 66-73; Elsayed, E.A., Sharaf-Eldin, M.A., El-Enshasy, H.A., Wadaan, M., In vitro assessment of anticancer properties of Moringa peregrina essential seed oil on different cell lines (2016) Pak. J. Zool., 48, pp. 853-859; Elsayed, E.A., Sharaf-Eldin, M.A., Wadaan, M., In vitro evaluation of cytotoxic activities of essential oil from Moringaoleifera seeds on HeLa, HepG2, MCF-7, CACO-2 and L929 cell lines (2015) Asian Pac. J. Cancer Prev., 16, pp. 4671-4675; Elsayed, E.A., Farooq, M., Dailin, D., El-Enshasy, H.A., Othman, N.Z., Malek, R., In vitro and in vivo biological screening of kefiran polysaccharide produced by Lactobacillus kefiranofaciens (2017) Biomed. Res., 28, pp. 594-600; Borenfreund, E., Puerner, J.A., A simple quantitative procedure using monolayer cultures for cytotoxicity assays (1984) J. Tissue Cult. Methods, 9, pp. 7-9; Kasala, E.R., Bodduluru, L.N., Barua, C.C., Madhana, R.M., Dahiya, V., Budhani, M.K., Chemopreventive effect of chrysin, a dietary flavone against benzo (a) pyrene induced lung carcinogenesis in Swiss albino mice (2016) Pharmacol. Rep., 68, pp. 310-318; Aebi, H., Catalase in vitro (1984) Methods Enzymol., 105, pp. 121-126; Beutler, E., Duron, O., Kelly, B.M., Improved method for the determination of blood glutathione (1963) J. Lab. Clin. Med., 61, pp. 882-888; Lef'evre, G., Beljean-Leymarie, M., Beyerle, F., Bonnefont-Rousselot, D., Cristol, J.P., Th�rond, P., (1998), pp. 305-319. , Evaluation of lipid peroxidation by measuring thiobarbituric acid reactive substances. Ann. Biol. Clin. 56; Zay, K., Loo, S., Xie, C., Devine, D.V., Wright, J., Churg, A., Role of neutrophils and alpha-1-antitrypsin in coal- and silica-induced connective tissue breakdown (1999) Am. J. Physiol., 276, pp. L269-L279; Frederiks, W.M., Mook, O.R., Metabolic mapping of proteinase activity with emphasis on in Situ zymography of gelatinases: review and protocols (2004) J. Histochem. Cytochem., 52 (6), pp. 711-722; Khalil, W.K.B., Booles, H.F., Protective role of selenium against over-expression of cancer-related apoptotic genes induced by o-cresol in mice (2011) Arh. Hig. Rada Toksikol., 62, pp. 121-129; Nilufer Yonguc, G., Dodurga, Y., Kurtulus, A., Boz, B., Acar, K., Caspase 1, caspase 3, TNF-alpha, p53, and Hif1-alpha gene expression status of the brain tissues and hippocampal neuron loss in short-term dichlorvos exposed rats (2012) Mol. Biol. Rep., 39, pp. 10355-10360; Lu, T., Xu, Y., Mericle, M.T., Mellgren, R.L., Participation of the conventional calpains in apoptosis (2002) Biochim. Biophys. Acta, 1590, pp. 16-26; Bancroft, J., Gamble, M., Theory and Practice of Histological Techniques (2001), 5th ed. Churchil Livingston London; Nawwar, M.A., Hashem, A.N., Hussein, S.A., Swilam, N.F., Becker, A., Haertel, B., Phenolic profiling of an extract from Eugenia jambos L. (Alston) - the structure of three flavonoid glycosides�antioxidant and cytotoxic activities (2016) Pharmazie, 71, pp. 162-168; Arumugam, P., Arunkumar, K., Sivakumar, L., Murugan, M., Murugan, K., Anticancer effect of fucoidan on cell proliferation, cell cycle progression, genetic damage and apoptotic cell death in HepG2 cancer cells (2019) Toxicol. Rep., 6, pp. 556-563; Zayed Mohamed, N., Aly, H.F., Moneim El-Mezayen, H.A., El-Salamony, H.E., Effect of co-administration of Bee honey and some chemotherapeutic drugs on dissemination of hepatocellular carcinoma in rats (2019) Toxicol. Rep., 6, pp. 875-888; Oke, G.O., Abiodun, A.A., Imafidon, C.E., Monsi, B.F., Zingiber officinale (Roscoe) mitigates CCl4-induced liver histopathology and biochemical derangements through antioxidant, membrane-stabilizing and tissue-regenerating potentials (2019) Toxicol. Rep., 6, pp. 416-425; Parathodi Illam, S., Hussain, A., Elizabeth, A., Narayanankutty, A., Raghavamenon, A.C., Natural combination of phenolic glycosides from fruits resists pro-oxidant insults to colon cells and enhances intrinsic antioxidant status in mice (2019) Toxicol. Rep., 6, pp. 703-711; Anantharaju, P.G., Gowda, P.C., Vimalambike, M.G., Madhunapantula, S.V., An overview on the role of dietary phenolics for the treatment of cancers (2016) Nutr. J., 15, p. 99; Baradaran, A., Samadi, F., Ramezanpour, S.S., Yousefdoust, S., Hepatoprotective effects of silymarin on CCl4-induced hepatic damage in broiler chickens model (2019) Toxicol. Rep., 6, pp. 788-794; Ma, C., Song, M., Zhang, Y., Yan, M., Zhang, M., Bi, H., Nickel nanowires induce cell cycle arrest and apoptosis by generation of reactive oxygen species in HeLa cells (2014) Toxicol. Rep., 1, pp. 114-121; Gibellini, L., Pinti, M., Nasi, M., Montagna, J.P., De Biasi, S., Roat, E., Quercetin and cancer chemoprevention (2011) Evid. Complement. Alternat. Med., 2011. , Article ID 591356; Rajendran, P., Rengarajan, T., Nishigaki, I., Ekambaram, G., Sakthisekaran, D., Potent chemopreventive effect of mangiferin on lung carcinogenesis in experimental Swiss albino mice (2014) J. Cancer Res. Ther., 10, pp. 1033-1039; Magesh, V., Singh, J.P., Selvendiran, K., Ekambaram, G., Sakthisekaran, D., Antitumour activity of crocetin in accordance to tumor incidence, antioxidant status, drug metabolizing enzymes and histopathological studies (2006) Mol. Cell. Biochem., 287, pp. 127-135; Brihoum, H., Maiza, M., Sahali, H., Boulmeltout, M., Barratt, G., Benguedouar, L., Dual effect of Algerian propolis on lung cancer: antitumor and chemopreventive effects involving antioxidant activity (2018) Braz. J. Pharm. Sci., 54; Nikkhoo, B., Sigari, N., Ghaderi, B., Afkhamzadeh, A., Azadi, N.A., Mohsenpour, B., Diagnostic utility of adenosine deaminase in serum and bronchoalveolar lavage fluid for screening lung cancer in western Iran (2013) J. Med. Biochem., 32, pp. 109-115; Sauer, A.V., Brigida, I., Carriglio, N., Aiuti, A., Autoimmune dysregulation and purine metabolism in adenosine deaminase deficiency (2012) Front. Immunol., 3, p. 265; Akyol, O., Gokbulut, I., Koksal, N., Akin, H., Ozyurt, H., Yildirim, Z., The activities of purine catabolizing enzymes in plasma and bronchial washing fluid in patients with lung cancer and pneumonia (2001) Clin. Biochem., 34, pp. 251-254; Sadeck, N.E., Ibrahim, B.M., Alassal, M.A., Cytochrome P450-isoenzyme 1A1 in susceptibility to tobacco-related lung cancer (2014) Asian Cardiovasc. Thoracic Annal., 22, pp. 315-318; Rao, P.S.S., Kumar, S., Polycyclic aromatic hydrocarbons and cytochrome P450 in HIV pathogenesis (2015) Front. Microbiol., 6, p. 550; Kasala, E.R., Bodduluru, L.N., Barua, C.C., Sriram, C.S., Gogoi, R., Benzo (a) pyrene induced lung cancer: role of dietary phytochemicals in chemoprevention (2015) Pharmacol. Rep., 67, pp. 996-1009; Anandakumar, P., Kamaraj, S., Jagan, S., Ramakrishnan, G., Naveenkumar, C., Asokkumar, S., Capsaicin alleviates the imbalance in xenobiotic metabolizing enzymes and tumor markers during experimental lung tumorigenesis (2009) Mol. Cell. Biochem., 331, pp. 135-143; Jin, N.Z., Zhu, Y.P., Zhou, J.W., Mao, L., Zhao, R.C., Fang, T.H., Preventive effects of quercetin against benzo [a] pyrene?induced DNA damages and pulmonary precancerous pathologic changes in mice (2006) Basic Clin. Pharmacol. Toxicol., 98, pp. 593-598; Miao, P., Sheng, S., Sun, X., Liu, J., Huang, G., Lactate dehydrogenase A in cancer: a promising target for diagnosis and therapy (2013) IUBMB Life, 65, pp. 904-910; Asokkumar, S., Naveenkumar, C., Raghunandhakumar, S., Kamaraj, S., Anandakumar, P., Jagan, S., Antiproliferative and antioxidant potential of beta-ionone against benzo (a) pyrene-induced lung carcinogenesis in Swiss albino mice (2012) Mol. Cell. Biochem., 363, pp. 335-345; Xie, H., Hanai, J.I., Ren, J.G., Kats, L., Burgess, K., Bhargava, P., Targeting lactate dehydrogenase-a inhibits tumorigenesis and tumor progression in mouse models of lung cancer and impacts tumor-initiating cells (2014) Cell Metab., 19, pp. 795-809; Anandakumar, P., Kamaraj, S., Ramakrishnan, G., Jagan, S., Devaki, T., Chemopreventive task of capsaicin against benzo (a) pyrene?induced lung cancer in Swiss albino mice (2009) Basic Clin. Pharmacol. Toxicol., 104, pp. 360-365; Garg, R., Benedetti, L.G., Abera, M.B., Wang, H., Abba, M., Kazanietz, M.G., Protein kinase C and cancer: what we know and what we do not (2014) Oncogene, 33, p. 5225; Kasala, E.R., Bodduluru, L.N., Barua, C.C., Gogoi, R., Antioxidant and antitumor efficacy of Luteolin, a dietary flavone on benzo (a) pyrene-induced experimental lung carcinogenesis (2016) Biomed. Pharmacother., 82, pp. 568-577; El-Kott, A.F., Anti-angiogenic effectiveness of the pomegranate against benzo (a)pyrene induced lung carcinoma in mice (2015) Cancer Res., 11, pp. 164-174; Galano, A., Alvarez-Idaboy, J.R., Glutathione: mechanism and kinetics of its non-enzymatic defense action against free radicals (2011) RSC Adv., 1, pp. 1763-1771; Kumar, M., Sharma, V.L., Sehgal, A., Jain, M., Protective effects of green and white tea against benzo(a)pyrene induced oxidative stress and DNA damage in murine model (2012) Nutr. Cancer, 64, pp. 300-306; Girija, D., Asha, S., Study of level of antioxidants in Benzo[a]Pyrene induced experimental lung cancer in Swiss albino mice (2011) J. Pharm. Res., 4, pp. 2016-2018; Sehgal, A., Kumar, M., Jain, M., Dhawan, D., Synergistic effects of piperine and curcumin in modulating benzo (a) pyrene induced redox imbalance in mice lungs (2012) Toxicol. Mech. Methods, 22, pp. 74-80; Kurek-G�recka, A., Rzepecka-Stojko, A., G�recki, M., Stojko, J., Sosada, M., Swierczek-Zieba, G., Structure and antioxidant activity of polyphenols derived from propolis (2014) Molecules, 19, pp. 78-101; Jafri, S.H., Shi, R., Mills, G., Advance lung cancer inflammation index (ALI) at diagnosis is a prognostic marker in patients with metastatic non-small cell lung cancer (NSCLC): a retrospective review (2013) BMC Cancer, 13, p. 158; Naugler, W.E., Karin, M., NF-kB and cancer-identifying targets and mechanisms (2008) Curr. Opin. Genet. Dev., 18, pp. 19-26; Lawrence, T., Inflammation and cancer: a failure of resolution? (2007) Trends Pharmacol. Sci., 28, pp. 162-165; Chen, R., Alvero, A.B., Silasi, D.A., Mor, G., Inflammation, cancer and chemoresistance: taking advantage of the toll?like receptor signaling pathway (2007) Am. J. Reprod. Immunol., 57, pp. 93-107; Aggarwal, B.B., Shishodia, S., Sandur, S.K., Pandey, M.K., Sethi, G., Inflammation and cancer: how hot is the link? (2006) Biochem. Pharmacol., 72, pp. 1605-1621; Pantano, C., Reynaert, N.L., Vliet, A.V.D., Janssen�Heininger, Y.M., Redox-sensitive kinases of the nuclear factor-?B signaling pathway (2006) Antioxid. Redox Signal., 8, pp. 1791-1806; Agarwal, S., Reddy, G.V., Reddanna, P., Eicosanoids in inflammation and cancer: the role of COX-2 (2009) Expert Rev. Clin. Immunol., 5, pp. 145-165; Okada, T., Takigawa, N., Kishino, D., Katayama, H., Kuyama, S., Sato, K., Selective cyclooxygenase-2 inhibitor prevents cisplatin-induced tumorigenesis in A/J mice (2012) Acta Med. Okayama, 66, pp. 245-251; Khan, M., Maryam, A., Qazi, J.I., Ma, T., Targeting apoptosis and multiple signaling pathways with icariside II in cancer cells (2015) Int. J. Biol. Sci., 11, pp. 1100-1112; Zhu, Y.M., Azahri, N.S.M., Danny, C.W., Woll, P.J., Effects of COX-2 inhibition on expression of vascular endothelial growth factor and interleukin-8 in lung cancer cells (2008) BMC Cancer, 8, p. 218; Yahfoufi, N., Alsadi, N., Jambi, M., Matar, C., The immunomodulatory and anti-inflammatory role of polyphenols (2018) Nutrients, 10, p. 1618; Jab?o?ska-Trypu?, A., Matejczyk, M., Rosochacki, S., Matrix metalloproteinases (MMPs), the main extracellular matrix (ECM) enzymes in collagen degradation, as a target for anticancer drugs (2016) J. Enzyme Inhib. Med. Chem., 31, pp. 177-183; Reuter, S., Gupta, S.C., Chaturvedi, M.M., Aggarwal, B.B., Oxidative stress, inflammation, and cancer: how are they linked? (2010) Free Radic. Biol. Med., 49, pp. 1603-1616; Sand, J.M., Larsen, L., Hogaboam, C., Martinez, F., Han, M., Larsen, M.R., MMP mediated degradation of type IV collagen alpha 1 and alpha 3 chains reflects basement membrane remodeling in experimental and clinical fibrosis�validation of two novel biomarker assays (2013) PLoS One, 8; Deryugina, E.I., Quigley, J.P., Tumor angiogenesis: MMP-mediated induction of intravasation-and metastasis-sustaining neovasculature (2015) Matrix Biol., 44, pp. 94-112; Anandakumar, P., Kamaraj, S., Jagan, S., Ramakrishnan, G., Asokkumar, S., Naveenkumar, C., The anticancer role of capsaicin in experimentally induced lung carcinogenesis (2015) J. Pharmacopuncture, 18, pp. 19-25; Xu, Y., Zhang, J., Han, J., Pan, X., Cao, Y., Guo, H., Curcumin inhibits tumor proliferation induced by neutrophil elastase through the upregulation of ?1?antitrypsin in lung cancer (2012) Mol. Oncol., 6, pp. 405-417; He, J., Turino, G.M., Lin, Y.Y., Characterization of peptide fragments from lung elastin degradation in chronic obstructive pulmonary disease (2010) Exp. Lung Res., 36, pp. 548-557; Merchant, N., Nagaraju, G.P., Rajitha, B., Lammata, S., Jella, K.K., Buchwald, Z.S., Matrix metalloproteinases: their functional role in lung cancer (2017) Carcinogenesis, 38, pp. 766-780; Houghton, A.M., Rzymkiewicz, D.M., Ji, H., Gregory, A.D., Egea, E.E., Metz, H.E., Neutrophil elastase-mediated degradation of IRS-1 accelerates lung tumor growth (2010) Nat. Med., 16, pp. 219-223; Moroy, G., Alix, A.J., Sapi, J., Hornebeck, W., Bourguet, E., Neutrophil elastase as a target in lung cancer (2012) Anticancer Agents Med. Chem., 12, pp. 565-579; Guzel, E.E., Kaya, N., Ozan, G., Tektemur, A., Dabak, D.O., Ozan, I.E., The investigation of effect of alpha lipoic acid against damage on neonatal rat lung to maternal tobacco smoke exposure (2018) Toxicol. Rep., 5, pp. 714-722; Yeo, C.D., Kim, Y.A., Lee, H.Y., Kim, J.W., Kim, S.J., Lee, S.H., Roflumilast treatment inhibits lung carcinogenesis in benzo (a) pyrene-induced murine lung cancer model (2017) Eur. J. Pharmacol., 812, pp. 189-195; Huang, C., Li, J., Song, L., Zhang, D., Tong, Q., Ding, M., Black raspberry extracts inhibit benzo (a) pyrene diol-epoxide�induced activator protein 1 activation and VEGF transcription by targeting the phosphotidylinositol 3-kinase/Akt pathway (2006) Cancer Res., 66, pp. 581-587; Saxena, L., Kumar, G.R., Saxena, S., Chaturvedi, U., Sahoo, A.P., Singh, L.V., Apoptosis induced by NS1 gene of Canine Parvovirus-2 is caspase dependent and p53 independent (2013) Virus Res., 173, pp. 426-430; Dai, H., Meng, X.W., Kaufmann, S.H., BCL-2 family, mitochondrial apoptosis, and beyond (2016) Cancer Transl. Med., 2, pp. 7-20; Cullen, S.P., Martin, S.J., Caspase activation pathways: some recent progress (2009) Cell Death Differ., 16, pp. 935-938; Roomi, M.W., Bhanap, B., Ahmed, T., Niedzwiecki, A., Rath, M., Induction of apoptosis in human lung cancer cells (A-549) by a novel nutrient mixture via upregulation of caspase enzymes (2018) Austin J. Lung Cancer Res., 3. , id1013; Anandakumar, P., Kamaraj, S., Jagan, S., Ramakrishnan, G., Devaki, T., Capsaicin provokes apoptosis and restricts benzo (a) pyrene induced lung tumorigenesis in Swiss albino mice (2013) Int. Immunopharmacol., 17, pp. 254-259; Mahassni, S.H., Al-Reemi, R.M., Apoptosis and necrosis of human breast cancer cells by an aqueous extract of garden cress (Lepidium sativum) seeds (2013) Saudi J. Biol. Sci., 20, pp. 131-139; Samarghandian, S., Shabestari, M.M., DNA fragmentation and apoptosis induced by safranal in human prostate cancer cell line (2013) Indian J. Urol., 29, pp. 177-183; Nair, P., Malhotra, A., Dhawan, D.K., Curcumin and quercetin trigger apoptosis during benzo (a) pyrene-induced lung carcinogenesis (2015) Mol. Cell. Biochem., 400, pp. 51-56; Hassan, M., Watari, H., AbuAlmaaty, A., Ohba, Y., Sakuragi, N., Apoptosis and molecular targeting therapy in cancer (2014) Biomed Res. Int., 2014; Costea, T., Nagy, P., Ganea, C., Sz�ll?si, J., Mocanu, M.M., Molecular mechanisms and bioavailability of polyphenols in prostate cancer (2019) Int. J. Mol. Sci., 20, p. 1062
dcterms.sourceScopus

Files

Original bundle

Now showing 1 - 2 of 2
Loading...
Thumbnail Image
Name:
avatar_scholar_256.png
Size:
6.31 KB
Format:
Portable Network Graphics
Description:
Loading...
Thumbnail Image
Name:
1-s2.0-S2214750019304032-main.pdf
Size:
3.35 MB
Format:
Adobe Portable Document Format
Description: