Poisonous Plants and Phytochemicals in Drug Discovery. Группа авторов

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Poisonous Plants and Phytochemicals in Drug Discovery - Группа авторов


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Research Part C: Embryo Today: Reviews 99 (4): 223–234. https://doi.org/10.1002/bdrc.21053.

      27 27 Tamokou, J.‐d.‐D. and Kuete, V. (2014). Toxic plants used in African traditional medicine. In: Toxicological Survey of African Medicinal Plants (ed. V. Kuete), 135–180. Elsevier.

      28 28 Daugherty, C.G. (1995). The death of Socrates and the toxicology of hemlock. Journal of Medical Biography 3 (3): 178–182. https://doi.org/10.1177/096777209500300310.

      29 29 Dayan, A.D. (2009). What killed Socrates? Toxicological considerations and questions. Postgraduate Medical Journal 85 (999): 34–37. https://doi.org/10.1136/pgmj.2008.074922.

      30 30 Hotti, H. and Rischer, H. (2017). The killer of Socrates: coniine and related alkaloids in the plant kingdom. Molecules 22 (11) https://doi.org/10.3390/molecules22111962.

      31 31 Iwu, M.M. (1993). Handbook of African Medicinal Plants. Boca Raton, USA: CRC Press LLC.

      32 32 Davidson, A. (1873). An account of the Madagascar ordeal poison. Journal of Anatomy and Physiology 8 (Pt 1): 97–112.

      33 33 Robb, G.L. (1957). The ordeal poisons of Madagascar and Africa. Botanical Museum Leaflets, Harvard University 17 (10): 265–316.

      34 34 Dai, H.F., Gan, Y.J., Que, D.M. et al. (2009). A new cytotoxic 19‐nor‐cardenolide from the latex of Antiaris toxicaria. Molecules 14 (9): 3694–3699. https://doi.org/10.3390/molecules14093694.

      35 35 Frédérich, M., Jacquier, M.J., Thépenier, P. et al. (2002). Antiplasmodial activity of alkaloids from various Strychnos species. Journal of Natural Products 65: 1381–1386.

      36 36 Frédérich, M., De Pauw, M.‐C., Prosperi, C. et al. (2001). Strychnogucines A and B, two new antiplasmodial bisindole alkaloids from Strychnos icaja. Journal of Natural Products 64: 12–16.

      37 37 Tulp, M. and Bohlin, L. (2004). Unconventional natural sources for future drug discovery. Drug Discovery Today 9: 450–458.

      38 38 Cannon, J.G., Burton, R.A., Wood, S.G., and Owen, N.L. (2004). Naturally occurring fish poisons from plants. Journal of Chemical Education 81 (10): 1457. https://doi.org/10.1021/ed081p1457.

      39 39 Neuwinger, H.D. (1994). Fish poisoning plants in Africa. Botanica Acta 107 (4): 263–270. https://doi.org/10.1111/j.1438‐8677.1994.tb00795.x.

      40 40 Neuwinger, H.D. (2004). Plants used for poison fishing in tropical Africa. Toxicon 44 (4): 417–430. https://doi.org/10.1016/j.toxicon.2004.05.014.

      41 41 Naude, T.W., Kellerman, T.S., and Coetzer, J.A.W. (1996). Plant poisonings and mycotoxicoses as constraints in livestock production in East Africa: the southern African experience. Journal of the South African Veterinary Association 67 (1): 8–11.

      42 42 Ito, H., Muranaka, T., Mori, K. et al. (2000). Ichthyotoxic phloroglucinol derivatives from Dryopteris fragrans and their anti‐tumor promoting activity. Chemical and Pharmaceutical Bulletin 48 (8): 1190–1195.

      43 43 Takashima, J., Chiba, N., Yoneda, K., and Ohsaki, A. (2002). Derrisin, a new Rotenoid from Derris malaccensis plain and anti‐Helicobacter pylori activity of its related constituents. Journal of Natural Products 65 (4): 611–613.

      44 44 Whiting, M.G. (1963). Toxicity of cycads. Economic Botany 17 (4): 270–302.

      45 45 Lye, K.A., Bukenya‐Ziraba, R., Tabuti, J.R.S., and Waako, P.J. (2008). Plant‐Medicinal Dictionary for East Africa. Kampala: Department of Botany, Makerere University.

      46 46 Soares, P.M., Lima, S.R., Matos, S.G. et al. (2005). Antinociceptive activity of Calotropis procera latex in mice. Journal of Ethnopharmacology 99: 125–129.

      47 47 Tamilselvan, N., Thirumalai, T., Shyamala, P., and David, E. (2014). A review on some poisonous plants and their medicinal values. Journal of Acute Disease 3 (2): 85–89. https://doi.org/10.1016/S2221‐6189(14)60022‐6.

      48 48 Rivadeneyra‐Domínguez, E. and Rodríguez‐Landa, J.F. (2014). Cycads and their association with certain neurodegenerative diseases. Neurología (English Edition) 29 (9): 517–522. https://doi.org/10.1016/j.nrleng.2013.03.005.

      49 49 Katende, A.B., Birnie, A., and Tegnäs, B. 1995). Useful trees and shrubs of Uganda. Technical Handbook No. 10. Regional Soil Conservation Unit, RSCU/SIDA, Nairobi. http://old.worldagroforestry.org/usefultrees/frontpages/Useful_Trees_Uganda.pdf (accessed 14 October 2019).

      50 50 Laqueur, G.L., Mickelsen, O., Whiting, M.G., and Kurland, L.T. (1963). Carcinogenic properties of nuts from Cycas circinalis L. indigenous to Guam. Journal of the National Cancer Institute 31 (4): 919–951.

      51 51 Hirono, I., Kachi, H., and Kato, T. (1970). A survey of acute toxicity of cycads and mortality rate from cancer in the Miyako islands, Okinawa. Pathology International 20 (3): 327–337. https://doi.org/10.1111/j.1440‐1827.1970.tb03074.

      52 52 Duncan, M.W., Steele, J.C., Kopin, I.J., and Markey, S.P. (1990). 2‐Amino‐3‐(methylamino)‐propanoic acid (BMAA) in cycad flour. An unlikely cause of amyotrophic lateral sclerosis and parkinsonism‐dementia of Guam. Neurology 40 (5): 767–767. https://doi.org/10.1212/wnl.40.5.767.

      53 53 Balagopalan, C., Padmaja, G., Nanda, S., and Morthy, S. (1988). Cassava in Food, Feed and Industry, 190–194. Boca Raton, FL: CRC Press.

      54 54 Montagnac, J.A., Davis, C.R., and Tanumihardjo, S.A. (2009). Processing techniques to reduce toxicity and antinutrients of cassava for use as a staple food. Comprehensive Reviews in Food Science and Food Safety 8 (1): 17–27. https://doi.org/10.1111/j.1541‐4337.2008.00064.x.

      55 55 Molyneux, R.J., Panter, K.E., and Zhao, M. (2014). Global perspectives on poisonous plants: the 9th international symposium on poisonous plants. Journal of Agricultural and Food Chemistry 62 (30): 7323–7325. https://doi.org/10.1021/jf500540x.

      56 56 Isman, M.B. (2006). Botanical insecticides, deterrents, and repellents in modern agriculture and an increasingly regulated world. Annual Review of Entomology 51: 45–66. https://doi.org/10.1146/annurev.ento.51.110104.151146.

      57 57 Isman, M.B. and Paluch, G. (2011). Needles in the haystack: exploring chemical diversity of botanical insecticides. In: Green Trends in Insect Control (eds. O. Lopez and J. Fernandez‐Bolanos), 248–265. The Royal Society of Chemistry.

      58 58 Xu, H.H. and Huang, J.G. (2001). Advances in the research of rotenone. Journal of Southwest Agricultural University 2: 841–930.

      59 59 Fowler, M.E. (1983). Plant poisoning in free‐living wild animals: a review. Journal of Wildlife Diseases 19 (1): 34–43.

      60 60 Smit, H.F., Woerdenbag, H.J., Singh, R.H. et al. (1995). Ayurvedic herbal drugs with possible cytostatic activity. Journal of Ethnopharmacology 47: 75–84.

      61 61 Campos, E.V.R., Proença, P.L.F., Oliveira, J.L. et al. (2019). Use of botanical insecticides for sustainable agriculture: future perspectives. Ecological Indicators 105: 483–495. https://doi.org/10.1016/j.ecolind.2018.04.038.

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