Open Access
Issue |
E3S Web of Conf.
Volume 388, 2023
The 4th International Conference of Biospheric Harmony Advanced Research (ICOBAR 2022)
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Article Number | 01032 | |
Number of page(s) | 5 | |
Section | Sustainable Infrastucture, Industry, Architecture, and Food Technology | |
DOI | https://doi.org/10.1051/e3sconf/202338801032 | |
Published online | 17 May 2023 |
- C. S. Lai, R. H. Mas, N. K. Nair, S. M. Mansor, V. Navaratnam, Chemical constituents and in vitro anticancer activity of typhonium flagelliforme (araceae), J. Ethnopharmacol 127, pp. 486–494 DOI: 10.1016/j.jep.2009.10.009 (2010) [CrossRef] [Google Scholar]
- S. Mohan, A. B. Abdul, S. I. Abdelwahab, A. Al-Zubairi, M. Sukari, R. Abdullah, M. M. Elhassan Taha, M. Y. Ibrahim, S. Syam, Typhonium flagelliforme induces apoptosis in CEMss cells via activation of caspase-9, PARP cleavage, and cytochrome c release: its activation coupled with G0/G1 phase cell cycle arrest, J. Ethnopharmacol 131, pp. 592–600 DOI: 10.1016/j.jep.2010.07.043 (2010) [CrossRef] [Google Scholar]
- A. Nurrochmad, E. Lukitaningsih, E. Meiyanto, Anticancer activity of rodent tuber (typhonium flagelliforme (lodd.) blume on human breast cancer T47D cells, Int J. Phytomed 2, pp. 138–146 (2011) [Google Scholar]
- A. Putra, W. Tjahjono, The effectiveness of typhonium flagelliforme tuber extract of diclorometanolic fraction on the inhibition of proliferation of MCF-7 human breast cancer cell-line, J. Indonesia Medical Association 62, pp. 10–15 (2012) [Google Scholar]
- N. F. Sianipar, R. Purnamaningsih, D. L. Gumanti, R. Rosaria, M. Vidianty, Analysis of gamma irradiated fourth generation mutant of rodent tuber (typhonium flagelliforme lodd.) based on morphology and RAPD markers, J. Teknol 78, pp. 41–49 (2015) [Google Scholar]
- N. F. Sianipar, R. Purnamaningsih, D. L. Gumanti, V. M. Rosaria, Analysis of gamma irradiated-third generation mutants of rodent tuber (typhonium flagelliforme lodd.) based on morphology, RAPD, and GC-MS markers, Pertanika J. Trop Agric Sci 40, pp. 185–202 (2017) [Google Scholar]
- N. F. Sianipar, R. Purnamaningsih, I. Darwati, D. Laurent, Gas chromatography-mass spectrometry (GC-MS) analysis of phytochemicals of first generation gamma-irradiated typhonium flagelliforme lodd. mutants, J. Teknol 78, pp. 1–7 DOI: 10.11113/jt.v78.9883 (2016) [Google Scholar]
- N. F. Sianipar, K. Assidqi, R. Purnamaningsih, T. Herlina, In vitro cytotoxic activity of rodent tuber mutant plant (typhonium flagelliforme lodd.) against to MCF-7 breast cancer cell line, Asian J. Pharm Clin Res 12, pp. 185–189 (2019) [CrossRef] [Google Scholar]
- N. F. Sianipar, Y. E. Hadisaputri, K. Assidqi, P. Simanjuntak, R. Purnamaningsih, A study of anticancer activity from the fractions of rodent tuber superior mutant extract (typhonium flagelliforme) by prestoblue assay method, Rasayan J. Chem 13, pp. 1992–1998 DOI: 10.31788/RJC.20 20.1335703 (2020) [CrossRef] [Google Scholar]
- N. F. Sianipar, R. Purnamaningsih, Enhancement of the contents of anticancer bioactive compounds in mutant clones of rodent tuber (typhonium flagelliforme lodd.) based on GCMS analysis, Pertanika J. Trop Agric Sci 41, pp. 305–320 (2018) [Google Scholar]
- T. Ghosh, T. K. Maity, J. Singh, Evaluation of antitumor activity of stigmasterol, a constituent isolated from bacopa monnieri linn aerial parts against ehrlich ascites carcinoma in mice, Orient Pharm Exp Med 11, pp. 41–49 DOI: 10.1007/s13596-011-0001-y (2011) [CrossRef] [Google Scholar]
- T. Kangsamaksin, S. Chaithongyot, C. Wootthicha irarangsan, R. Hanchaina, C. Tangshewinsirikul, J. Svasti, Lupeol and stigmasterol suppress tumor angiogenesis and inhibit cholangiocarcinoma growth in mice via downregulation of tumor necrosis factor-a, PLoS ONE 12, pp. 1–16 (2017) [Google Scholar]
- H. Haslan, F. H. Suhaimi, Z. C. Thent, S. Das, The underlying mechanism of action for various medicinal properties of piper betle (betel), Clin Ter 166, 5, pp. 208-214 DOI: 10.7417/CT.2015.1880 (2015) [PubMed] [Google Scholar]
- L. M. Evans, L. C. Stephanie, P. S. Gene, W. H. Robert, Stearate preferentially induces apoptosis in human breast cancer cells, Nutrition & Cancer 61, 5, pp. 746-753 (2009a) [CrossRef] [PubMed] [Google Scholar]
- R. W. Hardy, N. S. Wickramasinghe, S. C. Ke, A. Wells, Fatty acids and breast cancer cell proliferation, Advances in Experimental Medicine & Biology 422, pp. 57-69 (1997) [CrossRef] [PubMed] [Google Scholar]
- N. S. Wickramasinghe, H. Jo, J. M. McDonald, R. W. Hardy, Stearate inhibition of breast cancer cell proliferation a mechanism involving epidermal growth factor receptor and G-proteins, American J. Pathology 148, pp. 987-995 (1996) [Google Scholar]
- L. M. Evans, E. C. Toline, R. A. Desmond, G. P. Siegal, A. I. Hashim, R. W. Hardy, Dietary stearate reduces human breast cancer metastasis burden in athymic nude mice, Clinical and Experimental Metastasis 26, 5, pp. 415-424 (2009b) [CrossRef] [PubMed] [Google Scholar]
- V. V. Iyer, G. W. Griesgraber, R. R. Radmer, E. J. McIntee, C. R. Wagner, Synthesis, in vitro anti-breast cancer activity, and intracellura decomposition of amino acid methyl ester and alkyl amide phosphoramidate monoesters of 3’-Azido-3”-deoxythymidine (AZT), J. Medicinal Chemistry 43, 11, pp. 2266-2274 (2000) [CrossRef] [PubMed] [Google Scholar]
- C. Li, X. Zhao, E. C. Toline, G. P. Siegal, L. M. Evans, A. I. Hashim, R. A. Desmond, R. W. Hardy, Prevention of carcinogenesis and inhibition of breast cancer tumor burden by dietary stearate, Carcinogenesis 32, 8, pp. 1251-1258 (2011) [CrossRef] [Google Scholar]
- M. Saadatian-Elahi, T. Norat, J. Goudable, E. Riboli, Biomarkers of dietary fatty acid intake and the risk of breast cancer: a meta-analysis, International J. Cancer 111, pp. 584-591 (2004) [CrossRef] [PubMed] [Google Scholar]
- H. Harada, U. Yamashita, H. Kurihara, E. Fukushi, J. Kawabata, Y. Kamei, Antitumor activity of palmitic acid found as a selective cytotoxic substance in a marine red alga, Anticancer Research 22, pp. 2587-90 (2002) [PubMed] [Google Scholar]
- F. Yu, X. Lian, H. Guo, P. McGuire, R. Li, R. Wang, F. Yu, Isolation and characterization of methyl esters and derivatives from euphorbia kansui (euphorbiaceae) and their inhibitory effects on the human SGC-7901 cells, J. Pharmacy & Pharmaceutical Sciences 8, 3, pp. 528-35 (2005) [Google Scholar]
- Y. S. Kim, X. F. Li, K. H. Kang, B. Ryu, S. K. Kim, Stigmasterol isolated from marine microalgae navicula incerta induces apoptosis in human hepatoma HepG2 cells, BMB Reports 47, 8, pp. 433-438 (2014) [CrossRef] [PubMed] [Google Scholar]
- E. S. Abdel-Hameed, A. Salih, S. A. Bazaid, M. M. Shohayeb, M. M. El-Sayed, E. A. El-Wakil, Phytochemical studies and evaluation of antioxidant, anticancer and antimicrobial properties of conocarpus erectus l. growing in Taif, Saudi Arabia, European J. Medicinal Plants 2, pp. 93–112 (2012) [CrossRef] [Google Scholar]
- J. Boik, Natural compounds in cancer therapy (Oregon Medical Press, Minnesota, USA, 2001) [Google Scholar]
- F. Mericli, E. Becer, H. Kabadayi, A. Hanoglu, D. Y. hanoglu, D. O. Yavuz, T. Ozek, S. Vatansever, Fatty acid composition and anticancer activity in colon carcinoma cell lines of prunus dulcis seed oil, Pharmaceutical Biology 55, 1, pp. 1239-1248 (2017) [CrossRef] [PubMed] [Google Scholar]
- E. Purwaningsih, E. Widayanti, Y. Suciati, Cytotoxicity assay of typhonium flagelliforme lodd against breast and cervical cancer cells, Universa Medicina 33, 2, pp. 75-82 (2014) [Google Scholar]
- G. Sabithira, R. Udayakumar, GC–MS analysis of methanolic extracts of leaf and stem of marsilea minuta (linn.), J. Alternative & Complementary Medicine 3, pp. 1–13 (2017) [CrossRef] [Google Scholar]
- E. Purwaningsih, Y. Suciati, E. Widayanti, Typhonium flagelliforme decreases telomerase expression in HeLa cervical cancer cells, Universa Medicina 35, 1, pp. 3–9 (2016) [CrossRef] [Google Scholar]
- E. Purwaningsih, Y. Suciati, E. Widayanti, Anticancer effect of a typhonium flagelliforme l. in raji cells through telomerase expression, Indonesian J. Cancer Chemoprevention 8, 1, pp. 15-20 (2017) [CrossRef] [Google Scholar]
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