Neutralization of toxic activities of Bothrops asper venom by plants of ethnomedical use in Central America: plants collected in Guatemala
DOI:
https://doi.org/10.36829/63CTS.v9i2.922Abstract
There are few scientific studies that explore the use of medicinal plants for snakebite envenoming in Central America, although plant-based therapies have been traditionally used in the region. This work reviews the studies conducted in Central America to assess the ability of extracts obtained from plants of local ethnomedical use to inhibit toxic activities of the venom of Bothrops asper, the snake responsible for approximately half of the snakebite envenomings in these countries. The search prioritized the description of the plants used in Guatemala since most of the studies described in this work were conducted in that country, although references to other countries are included. Information concerning secondary metabolites and other pharmacological activities of these plant species, relevant to the treatment of snakebites, was also described. The literature search was conducted in the Google Scholar, PubMed, and Scopus databases and completed with locally available literature. It was found that extracts of 12 plant species inhibited the hemorrhagic effect of the venom and three neutralized the edema-forming activity, while inhibition of proteolytic and phospholipase A2 (PLA2) activities was achieved by three and one plant species, respectively. Only Brownea rosa-de-monte was able to effectively counteract the in vitro coagulant effect of the venom. Some plant extracts screened in Guatemala demonstrated procoagulant or anti-thrombin intrinsic effects that might aggravate the coagulopathy induced by the venom. These findings underscore the need to carry out scientific studies aimed at validating the inhibitory potential of Central American plant extracts and their metabolites against B. asper venom
Downloads
References
Abad, M. J., Bermejo, P., Carretero, E., Martínez-Acitores, C., Noguera, B., & Villar, A. (1996). Antiinflammatory activity of some medicinal plant extracts from Venezuela. Journal of Ethnopharmacology, 55(1), 63-68. https://doi.org/10.1016/s0378-8741(96)01478-x
Aguilar-Girón, J. I. (1966). Relación de unos aspectos de la Flora útil de Guatemala. Ministerio de Agricultura.
Akah, P. A. (1993). Mechanism of hemostatic activity of Eupatorium odoratum. International Journal of Crude Drug Research, 28(4), 253-256. https://doi.org/10.3109/13880209009082829
Almeida, R. N., Navarro, D. S., & Barbosa-Filho, J. M. (2001). Plants with central analgesic activity. Phytomedicine, 8(4), 310-322. https://doi.org/10.1078/0944-7113-00050
Al-Rehaily, A. J., Al-Said, M. S., Al-Yahya, M. A., Mossa, J. S., & Rafatullah, S. (2002). Ethnopharmacological studies on allspice (Pimenta dioica) in laboratory animals. Pharmaceutical Biology, 40, 200-205. https://doi.org./10.1076/phbi.40.3.200.5829
Angulo, Y., & Lomonte, B. (2009). Biochemistry and toxicology of toxins purified from the venom of the snake Bothrops asper. Toxicon, 54(7), 949-957. https://doi.org/10.1016/j.toxicon.2008.12.014
Ardón Manchamé, C. E. (2008). Descripción y uso de especies con propiedades medicinales en las comunidades de San Francisco Chancó, Salitrón y Corral de Piedra de la Microcuenca del río Chancó del Municipio de San Juan Ermita, Departamento de Chiquimula [Grade thesis, Universidad de San Carlos de Guatemala]. http://www.repositorio.usac.edu.gt/12538/1/19%20A%20T-1203-518-Ardon.pdf
Arvigo, R., & Balick, M. (1993). Bursera simaruba. In R. Arvigo & M. Balick (Eds.), Rainforest remedies. One hundred healing herbs of Belize (2nd ed., pp. 118-119). Lotus Press.
Asha, M. M., Chaithra, M., Kambar, Y., Vivek, M. N., & Kekuda, P. T. R. (2013). Antibacterial activity of leaf and bark extracts of Pimenta dioica (Linn.) Merill against clinical isolates of Staphylococcus aureus and Streptococcus mutans. World Journal of Pharmacy and Pharmaceutical Sciences, 2(5), 3207-3215.
Badilla, B., Chaves, F., Mora, G., & Poveda, L. J. (2006). Edema induced by Bothrops asper (Squamata: Viperidae) snake venom and its inhibition by Costa Rican plant extracts. Revista de Biología Tropical, 54(2), 245-252. https://doi.org/10.15517/rbt.v54i2.13865.
Badilla, B., Chaves-Mora, F., Jiménez-Castro, S., Rodríguez-Rodríguez, G., & Poveda-Alvarez, L. J. (2008). Effects of an extract of Cissampelos pareira on the hemorrhagic and proteolytic activities from Bothrops asper venom. Pharmacognosy Magazine, 4, 27-30.
Balick, M. J., & Arvigo, R. (1998). The rainforest. Lotus Press.
Balick, M. J., & Arvigo, R. (2015). Message from the Gods. A guide to the useful plants of Belize. Oxford University Press,
Barreno-Ortiz, F. M. (2012). Estudio etnobotánico medicinal en 11 municipios de la reserva de usos múltiples Cuenca del Lago de Atitlán, Sololá [Tesis de licenciatura, Universidad de San Carlos de Guatemala]. https://biblioteca-farmacia.usac.edu.gt/Tesis/B238.pdf
Berger, I., Passreiter, C. M., Cáceres, A., & Kubelka, W. (2001). Antiprotozoal activity of Neurolaena lobata. Phytotherapy Research, 15(4), 327-330. https://doi.org/10.1002/ptr.782
Cáceres, A., & Cruz, S. M. (2019). Detection and validation of native plants traditionally used as medicine in Guatemala. Current Traditional Medicine, 5(1), 5-30. https://doi.org/10.2174/221508380566610327172409
Cáceres, A., López, B., González, S., Berger, I., Tada, I., & Maki, J. (1998). Plants used in Guatemala for the treatment of protozoal infections. I. Screening of activity to bacteria, fungi and American trypanosomes of 13 native plants. Journal of Ethnopharmacology, 62(3), 195-202. https://doi.org/10.1016/s0378-8741(98)00140-8
Campbell, J. A., & Lamar, W. W. (1989). The Venomous Reptiles of Latin America. Cornell University Press.
Camporese, A., Balick, M. J., Arvigo, R., Esposito, R. G., Morsellino, N., De Simone, F., & Tubaro, A. (2003). Screening of anti-bacterial activity of medicinal plants from Belize (Central America). Journal of Ethnopharmacology, 87(1), 103-107. https://doi.org/10.1016/s0378-8741(03)00115-6
Carretero, M. E., López-Pérez, J. L., Abad, M. J., Bermejo, P., Tillet, S., Israel, A., & Noguera-P, B. (2008). Preliminary study of the anti-inflammatory activity of hexane extract and fractions from Bursera simaruba (Linneo) Sarg. (Burseraceae) leaves. Journal of Ethnopharmacology, 116(1), 11-15. https://doi.org/10.1016/j.jep.2007.10.034
Carvalho, B. M. A., Santos, J. D. L., Xavier, B. M., Almeida, J. R., Resende, L. M., Martins, W., Marcussi, S., Marangoni, S., Stábeli, R.G., Calderon, L.A., Soares, A.M., Da Silva, S.L., & Marchi-Salvador, D. P. (2013). Snake venom PLA2s inhibitors isolated from Brazilian plants: Synthetic and natural molecules. BioMed Research International, Article 153045. https://doi.org/10.1155/2013/153045
Castro, O., Gutiérrez, J. M., Barrios, M., Castro, I., Romero M., & Umaña, E. (1999). Neutralización del efecto hemorrágico inducido por veneno de Bothrops asper (Serpentes: Viperidae) por extractos de plantas tropicales. Revista de Biología Tropical, 47(3), 605-616.
Chacón, F., Oviedo, A., Escalante, T., Solano, G., Rucavado, A., & Gutiérrez, J. M. (2015). The lethality test used for estimating the potency of antivenoms against Bothrops asper snake venom: Pathophysiological mechanisms, prophylactic analgesia, and a surrogate in vitro assay. Toxicon, 93, 41-50. https://doi.org/10.1016/j.toxicon.2014.11.223
Coe, F. G., & Anderson, G. J. (2005). Snakebite ethnopharmacopoeia of Eastern Nicaragua. Journal of Ethnopharmacology, 96(1-2), 303-323. https://doi.org/10.1016/j.jep.2004.09.026
Comerford, S. C. (1996). Medicinal plants of two Mayan healers from San Andrés, Petén, Guatemala. Economic Botany, 50, 327-336. https://doi.org/10.1007/BF0207342
Díaz, C., Gutiérrez, J. M., Lomonte, B., & Gené, J. A. (1991). The effect of myotoxins isolated from Bothrops snake venoms on multilamellar liposomes: Relationship to phospholipase A2, anticoagulant and myotoxic activities. Biochimica et Biophysica Acta, 1070, 455-460. https://doi.org/10.1016/0005-2736(91)90086-n
Duke, J. A. (1970). Ethnobotanical observations on the Choco Indians. Economic Botany, 24(3), 344-366. https://doi.org/10.1070/BF02860669
Félix-Silva, J., Silva-Junior, A. A., Zucolotto, S. M., & Fernandes-Pedrosa M. (2017). Medicinal plants for the treatment of local tissue damage induced by snake venoms: An overview from traditional use to pharmacological evidence. Evidence-Based Complementary and Alternative Medicine, Article 5748256. https://doi.org/10.1155/2017/5748256
García, M. D., Sáenz, M. T., Gómez, M. A., & Fernández, M. A. (1999). Topical anti-inflammatory activity of phytosterols isolated from Eryngium foetidum on chronic and acute inflammation models. Phytotherapy Research, 13(1), 78-80. https://doi.org/10.1002/(SICI)1099-1573(199902)13:1<78::AID-PTR384>3.0.CO;2-F
Giovannini, P., & Howes M. R. (2017). Medicinal plants used to treat snakebite in Central America: Review and assessment of scientific evidence. Journal of Ethnopharmacology, 199, 240-256. https://doi.org/10.1016/j.jep.2017.02.011
Girón, L. M., Freire, V., Alonzo, A., & Cáceres, A. (1991). Ethnobotanical survey of the medicinal flora used by the Caribs of Guatemala. Journal of Ethnopharmacology, 34(2-3), 173-187. https://doi.org/10.1016/0378-8741(91)90035-c
Gracioso, J. S., Hiruma, C. A., & Souza Brito. (2000). Antiulcerogenic effect of a hydroalcoholic extract and its organic fractions of Neurolaena lobata (L.) R. Br. Phytomedicine, 7(4), 283-289. https://doi.org/10.1016/S0944-7113(00)80045-8
Gracioso, J. S., Paulo, M. Q., Hiruma, Lima C. A., & Souza Brito, A. (1998). Antinociceptive effect in mice of a hydroalcoholic extract of Neurolaena lobata (L.) R. Br. and its organic fractions. Journal of Pharmacy and Pharmacology, 50, 1425-1429. https://doi.org/10.1111/j.2042-71581998.tb03370.x
Guerra-Centeno, D. (2016). Perfil epidemiológico del accidente ofídico en las tierras bajas de Guatemala. Ciencia, Tecnología y Salud, 3(2), 127-138. https://doi.org/10.36829/63CTS.v3i2.112
Gupta, M. P., Correa, M. D., Solís, P. N., Jones, A., Galdames, C., & Guionneau-Sinclair, F. (1993). Medicinal plant inventory of Kuna Indians: Part 1. Journal of Ethnopharmacology, 40(2), 77-109. https://doi.org/10.1016/0378-8741(93)90054-9
Gutiérrez, J. M. (2002). Comprendiendo los venenos de serpientes: 50 años de investigaciones en América Latina. Revista de Biología Tropical, 50(2), 377-394.
Gutiérrez, J. M. (2014). Current challenges for confronting the public health problem of snakebite envenoming in Central America. Journal of Venomous Animals and Toxins including Tropical Diseases, 20, Article 7. https://doi.org/10.1186/1678-9199-20-7
Gutiérrez, J. M. (2021). Snakebite envenomation in Central America. Epidemiology, pathophysiology and treatment. In S.P. Mackessy (Ed.), Handbook of venoms andtToxins of reptiles (pp. 543-558). CRC Press.
Gutiérrez, J. M., Albulescu, L.-O., Clare, R. H., Casewell, N. R., Abd El-Aziz, T. M., Escalante, T., & Rucavado, A. (2021). The Search for Natural and Synthetic Inhibitors That Would Complement Antivenoms as Therapeutics for Snakebite Envenoming. Toxins, 13(7), Article 451. https://doi.org/10.3390/toxins13070451
Gutiérrez, J. M., Calvete, J. J., Habib, A. G., Harrison, R. A., Williams, D. J., & Warrell, D. A. (2017). Snakebite envenoming. Nature Reviews. Disease Primers, 3, Article 17063. https://doi.org/ 10.1038/nrdp.2017.63
Gutiérrez, J. M., Escalante, T., Hernández, R., Gastaldello, S., Saravia-Otten, P., & Rucavado, A. (2018). Why is skeletal muscle regeneration impaired after myonecrosis induced by viperid snake venoms? Toxins, 10(5), Article 182. https://doi.org/10.3390/toxins10050182
Gutiérrez, J. M., Escalante, T., & Rucavado, A. (2009). Experimental pathophysiology of systemic alterations induced by Bothrops asper snake venom. Toxicon, 54(7), 976-987. https://doi.org/10.1016/j.toxicon.2009.01.039
Gutiérrez, J. M., León, G., Rojas, G., Lomonte, B., Rucavado, A., & Chaves, F. (1998). Neutralization of local tissue damage induced by Bothrops asper (terciopelo) snake venom. Toxicon, 36(11), 1529-1538. https://doi.org/10.1016/s0041-0101(98)00145-7
Gutiérrez, J. M., Lomonte, B., León, G., Rucavado, A., Chaves, F., & Angulo, Y. (2007). Trends in snakebite envenomation therapy: Scientific, technological and public health considerations. Current Pharmaceutical Design, 13(28), 2935-2950. https://doi.org/10.2174/138161207782023784
Gutiérrez, J. M., Rucavado, A., Chaves, F., Díaz, C., & Escalante, T. (2009). Experimental pathology of local tissue damage induced by Bothrops asper snake venom. Toxicon, 54(7), 958-975. https://doi.org/10.1016/j.toxicon.2009.01.038
Gutiérrez, J. M., Rucavado, A., & Escalante, T. (2010). Snake venom metalloproteinases: Biological roles and participation in the pathophysiology of envenomation. In S. P. Mackessy (Ed.), Handbook of venoms and toxins of reptiles (pp. 115-138). CRC Press.
Hanphakphoom, S., Tophon, S., Waranusantigul, P., Kangwanrangsan, N., & Krajangsang, S. (2016). Antimicrobial activity of Chromolaena odorata extracts against bacterial human skin infections. Modern Applied Science, 10(2), 159-171. https://doi.org/10.5539/mas.v10n2p159
Hay, Y.-O. (2002). Estudio etnofarmacológico de plantas utilizadas en la medicina tradicional para el tratamiento de leishmaniasis cutánea, del paludismo y de la mordedura de serpientes, en tres departamentos de Guatemala. Universidad de San Carlos de Guatemala-Service de Coopération au Développement-Institut de Recherche pour le Développement.
Hitziger, M. (2016). Mayan phytotherapy in Guatemala: A transdisciplinary study for ethnographic documentation and local empowerment [Doctoral thesis, Swiss Federal Institute of Technology]. https://doi.org/10.3929/ethz-a-010735971
Instituto Indigenista Nacional. (1978). Aspectos de la medicina popular en el área en el área rural de Guatemala. Guatemala Indígena, 13(3-4), 425-429.
Jasso de Rodríguez, D., Angulo-Sánchez, J. L., & Hernández-Castillo, D. (2006). An overview of the antimicrobial properties of Mexican medicinal plants. In M. Rai & M. Carpinella (Eds.), Naturally Occurring Bioactive Compounds (pp. 352-377). Elsevier.
Jiménez-Suárez, V., Nieto-Camacho, A., Jiménez-Estrada, A., & Alvarado-Sánchez, B. (2016). Anti-inflammatory, free radical scavenging and alpha-glucosidase inhibitory activities of Hamelia patens and its chemical constituents. Pharmaceutical Biology, 54(9), 1822-1830. https://doi.org/10.3109/13880209.2015.1129544
Joly, L. G., Guerra, S., Séptimo, R., Solís, P. N., Correa, M. D., Gupta, M. P., Levy, S., & Sandberg, F. (1987). Ethnobotanical inventory of medicinal plants used by the Guaymi Indians in western Panama. Part I. Journal of Ethnopharmacology, 20(2), 145-171. https://doi.org/10.1016/0378-8741(87)90085-7
Jorge, M. T., Ribeiro, L. A., & O´Conell, J. L. (1999). Prognostic factors for amputation in the case of envenoming by snakes of the Bothrops genus (Viperidae). Annals of Tropical Medicine and Parasitology, 93(4), 401-408. https://doi.org/10.1080/00034989958393
Junor, G. O., Porter, R. B., Facey, P. C., & Yee, T. H. (2007). Investigation of essential oil extracts from four native Jamaican species of Bursera for antibacterial activity. West Indian Medical Journal, 56(1), 22-25. https://doi.org/10.1590/s0043-31442007000100005
Kasturiratne, A., Wickremasinghe, A. R., de Silva, N., Gunawardena, N. K., Pathmeswaran, A., Premaratna, R., Savioli, L., Lalloo, D. G., & de Silva, H. J. (2008). The global burden of snakebite: A literature analysis and modelling based on regional estimates of envenoming and deaths. PLOS Medicine, 5(11), Article e218. https://doi.org/10.1371/journal.pmed.0050218
Kini, R. M. (2003). Excitement ahead: Structure, function and mechanism of snake venom phospholipase A2 enzymes. Toxicon 42(8), 827-840. https://doi.org/10.1016/j.toxicon.2003.11.002
Kufer, J., Heinrich, M., Förther, H., & Pöll, E. (2005). Historical and modern medicinal plant uses -the example of the Ch’ortí Maya and Ladinos in Eastern Guatemala. The Journal of Pharmacy and Pharmacology, 57(9), 1127-1152. https://doi.org/10.1211/jpp.57.9.0008
Küpeli, E., Kartal, M., Aslan, S., & Yesilada, E. (2006). Comparative evaluation of the anti-inflammatory and antinociceptive activity of Turkish Eryngium species. Journal of Ethnopharmacology, 107(1), 32-37. https://doi.org/10.1016/j.jep.2006.02.005
Lentz, D. L., Clark, A. M., Hufford, C. D., Meurer-Grimes, B., Passreiter, C. M., Cordero, J., Ibrahimi, O., & Okunade, A. L. (1998). Antimicrobial properties of Honduran medicinal plants. Journal of Ethnopharmacology, 63(3), 253-263. https://doi.org/10.1016/s0378-8741(98)00100-7
Lomonte, B., León, G., Angulo, Y., Rucavado, A., & Núñez, V. (2009). Neutralization of Bothrops asper venom by antibodies, natural products and synthetic drugs: Contributions to understanding snakebite envenomings and their treatment. Toxicon, 54(7), 1012-1028. https://doi.org/10.1017/j.toxicon.2009.03.015
Lomonte, B., Lundgren, J., Johansson, B., & Bagge, U. (1994). The dynamics of local tissue damage induced by Bothrops asper snake venom and myotoxin II on the mouse cremaster muscle: An intravital and electron microscopic study. Toxicon, 32(1), 41-55. https://doi.org/10.1016/0041-0101(94)90020-5
Lorenzo-Leal, A. C., Palou, E., López-Malo, A., & Bach, H. (2019). Antimicrobial, cytotoxic, and anti-inflammatory activities of Pimenta dioica and Rosmarinus officinalis essential oils. BioMed Research International, Article 1639726. https://doi.org/10.1155/2019/1639726
Maroyi, A. (2013). Traditional use of medicinal plants in south-central Zimbabwe: review and perspectives. Journal of Ethnobiology and Ethnomedicine, 9, Article 31. https://doi.org/10.1186/1746-4269-9-31
Maroyi, A. (2019). Sansevieria hyacinthoides (L.) Druce: A review of its botany, medicinal uses, phytochemistry, and biological activities. Asian Journal of Pharmaceutical and Clinical Research, 12(9), 21-26. https://doi.org/10.2215/ajpcr.2019.v12i9.34721
McKinnon, R., Binder, M., Zupkó, I., Afonyushkin, T., Lajter, I., Vasas, A., de Martin, R., Unger, C., Dolznig, H., Diaz, R., Frisch, R., Passreiter, C. M., Krupitza, G., Hohmann, J., Kopp, B., & Bochkov, V. N. (2014). Pharmacological insight into the anti-inflammatory activity of sesquiterpene lactones from Neurolaena lobata (L.) R. Br. ex Cass. Phytomedicine, 21(12), 1695-1701. https://doi.org/10.1016/j.phymed.2014.07.019
Mejía, J. V. (1927). Plantas medicinales. Geografía de Guatemala. Tipografía Nacional
Michel, T., Kerdudo, A., Ellong, E. N., Gonnot, V., Rocchi, S., Tanti, J. F., Boyer, L., Adenet, S., Rochefort, K., & Fernandez, X. (2016). Anti-inflammatory, cytotoxic and antimicrobial activity of Piper peltatum leaf extract. Planta Medica, 82(S 01), S1-S381. https://doi.org/10.1055/s-0036-1596571
Morton, J. F. (1981). Atlas of medicinal plants of middle America: Bahamas to Yucatán. Springfield.
Mors, W. B., Nascimento, M. C., Pereira, B. M., & Pereira, N. A. (2000). Plant natural products active against snake bite--the molecular approach. Phytochemistry, 55(6), 627-642. https://doi.org/10.1016/s0031-9422(00)00229-6
Mukhopadhyay, M. K., Banerjee, P., & Nath, D. (2012). Phytochemicals – biomolecules for prevention and treatment of human diseases - a review. International Journal of Scientific & Engineering Research, 3(7).
Nagaraj, T., Sumana, C. K., Okade, D., Kumar, S., Nigam, H, & Ggula, S. (2017). Efficacy of Pimenta dioica leaf powder in the management of chronic generalized gingivitis: A clinical trial. Journal of Medicine, Radiology, Pathology & Surgery, 4(4), 1-4.
Nayak, B. S., Ramlogan, S., Rao, A. V., & Maharaj, S. (2014). Neurolaena lobata L. promotes wound healing in Sprague Dawley rats. International Journal of Applied and Basic Medical Research, 4(2), 1060-110. https://doi.org/10.4103/2229-516X.136791
Nicolas, J. P. (1999). Plantes Medicinales des Mayas kiché du Guatemala. Ibis Press.
Noguera, B., Díaz, E., García, M. V., Feliciano, A. S., López-Pérez, J. L., & Israel, A. (2004). Antiinflammatory activity of leaf extract and fractions of Bursera simaruba (L.) Sarg (Burseraceae). Journal of Ethnopharmacology, 92(1), 129-133. https://doi.org/10.1016/j.jep.2004.02.009
Núñez, V., Castro, V., Murillo, R., Ponce-Soto, L. A., Merfort, I., & Lomonte, B. (2005). Inhibitory effects of Piper umbellatum and Piper peltatum extracts towards myotoxic phospholipases A2 from Bothrops snake venoms: Isolation of 4-nerolidylcatechol as active principle. Phytochemistry, 66(9), 1017-1025. https://doi.org/10.1016/j.phytochem.2005.03.026
Onwasigwe, E. N., Verghese, M., Sunkara R., Shaxckelford, L., & Walker, T. (2017). In vitro analysis of the antioxidant effect of allspice. Food and Nutrition Sciences, 8(7), 778-792. https://doi.org/10.4236/fns.2017.87055
Otero, R., Núñez, V., Barona, J., Fonnegra, R., Jiménez, S. L., Osorio, R. G., Saldarriaga, M., & Díaz, A. (2000). Snakebites and ethnobotany in the northwest region of Colombia. Part III: Neutralization of the haemorrhagic effect of Bothrops atrox venom. Journal of Ethnopharmacology, 73(1-2), 233-241. https://doi.org/10.1016/s0378-8741(00)00321-4
Owoyele, B. V., Oguntoye, S. O., Kare, K., Ogunbiyi, B. A., Aruboula, E. A., & Soladoye, A. O. (2008). Analgesic, anti-inflammatory and antipyretic activities from flavonoid fractions of Chromolaena odorata. Journal of Medicinal Plants Research, 2(9), 219-225.
Pandith, H., Thongpraditchote, S., Wongkrajang, Y., & Gritsanapan, W. (2012). In vivo and in vitro hemostatic activity of Chromolaena odorata leaf extract. Pharmaceutical Biology, 50(9), 1073-1077. https://doi.org/10.3109/13880209.2012.656849
Pandith, H., Zhang, X., Liggett, J., Min, K. W., Gritsanapan, W., & Baek, S. J. (2013). Hemostatic and wound healing properties of Chromolaena odorata leaf extract. International Scholarly Research Notices, Article 168269. https://doi.org/10.1155/2013/168269
Pardo Villegas, P. D., Burgos Barrios, C. L., & Cruz de León, H. W. (2011). Plantas medicinales y comestibles de la Reserva Natural de Usos Múltiples Monterrico-RNUMM-, Taxisco, Santa Rosa. Guatemala: Dirección General de Investigación (inf-2011-024). Universidad de San Carlos de Guatemala, Dirección General de Investigación, Programa Universitario de Investigación en Recursos Naturales y Ambiente y Centro de Datos para la Conservación, Centro de Estudios Conservacionistas.
Patiño, A., C., Benjumea, D. M., & Pereañez, J. A. (2013). Inhibition of venom serine proteinase and metalloproteinase activities by Renealmia alpinia (Zingiberaceae) extracts: Comparison of wild and in vitro propagated plants. Journal of Ethnopharmacology, 149(2), 590-596. https://doi.org/10.1016/j.jep.2013.07.033
Paul, J. H., Seaforth, C. E., & Tikasingh, T. (2011). Eryngium foetidum L.: A review. Fitoterapia, 82(3), 302-308. https://doi.org/10.1016/j.fitote.2010.11.010
Peraza-Sánchez, S. R., Cen-Pacheco, F., Noh-Chimal, A., May-Pat, F., Simá-Polanco, P., Dumonteil, E., García-Miss, M. R., & Mut-Martín, M. (2007). Leishmanicidal evaluation of extracts from native plants of the Yucatan peninsula. Fitoterapia, 78(4), 315-318. https://doi.org/0.1016/j.fitote.2007.03.013
Pereañez, J. A., Patiño, A. C., Núñez, V., & Osorio, E. (2014). The biflavonoid morelloflavone inhibits the enzymatic and biological activities of a snake venom phospholipase A2. Chemico-Biological Interactions, 220, 94-101. https://doi.org/10.1016/j.cbi.2014.06.015
Pilco, G., Vinueza, D., Acosta, K., & Torres, A. (2019). Actividad inhibitoria de la hialuronidasa del extracto hidroalcohólico de Piper peltatum. KnE Engineering, 5(2)247-259. https://doi.org/10.18502/keg.v512.6241
Posadas, S., Rodríguez, B., Lobo-Echeverri, T., Ramos, R. S., Hyslop, S., & Núñez, V. (2019). Effects of two fractions of Swietenia macrophylla and catechin on muscle damage induced by Bothrops venom and PLA2. Toxins (Basel), 1(1), Article 40. https://doi.org/10.3390/toxins11010040
Preciado, L, M., Comer, J., Núñez, V., Rey-Suárez, P., & Pereañez, J. A. (2018). Inhibition of a snake venom metalloproteinase by the flavonoid myricetin. Molecules, 23(10), Article 2662. https://doi.org/10.3390/molecules23102662
Rao, P. S., Navinchandra, S., & Jayaneera, K. N. (2012). An important spice, Pimenta dioica (Linn) Merill: A review. International Current Pharmaceutical Journal, 1(8), 221-225. https://doi.org/10.3329/icpj.v1i8.11255
Rojas, G., Jiménez, J. M., & Gutiérrez, J. M. (1994). Caprylic acid fractionation of hyperimmune horse plasma: Description of a simple procedure for antivenom production. Toxicon 32(3), 351-363. https://doi.org/10.1016/0041-0101(94)90087-6
Rucavado, A., & Lomonte, B. (1996). Neutralization of myonecrosis, hemorrhage, and edema induced by Bothrops asper snake venom by homologous and heterologous pre-existing antibodies in mice. Toxicon, 34(5), 567-577. https://doi.org/10.1016/0041-0101(95)00162-X
Rucavado, A., Soto, M., Escalante, T., Loría, G. D., Arni, R., & Gutiérrez, J. M. (2005). Thrombocytopenia and platelet hypoaggregation induced by Bothrops asper snake venom. Toxins involved and their contribution to metalloproteinase-induced pulmonary hemorrhage. Thrombosis and Haemostasis, 94(1), 123-131. https://doi.org/10.1160/TH05-02-0112
Sáenz, M. T., Fernández, M. A., & García, M. D. (1997). Antiinflammatory and analgesic properties from leaves of Eryngium foetidum L. (Apiaceae). Phytotherapy Research, 11(5), 380-383. https://doi.org/10.1002/(SICI)1099-1573(199708)11:5<380::AID-PTR116>3.0.CO;2-%23
Salazar, M., Chérigo, L., Acosta, H., Otero, R., & Martínez-Luis, S. (2014). Evaluation of anti-Bothrops asper venom activity of ethanolic extract of Brownea Rosademonte leaves. Acta Pharmaceutica, 64(4), 475-483. https://doi.org/10.2478/acph-2014-0033
Sánchez, E. E., Ramírez, M. S., Galán, J. A., López, G., Rodríguez, A., & Pérez, J. (2003). Cross reactivity of three antivenoms against North American snake venoms. Toxicon, 41(3), 315-320. https://doi.org/10.1016/s0041-0101(02)00293-3
Sandoval, M. A., & Ayala, M. L. (1999). Etnobotánica de las plantas medicinales usadas por la cultura k´aqchikel en el departamento de Guatemala (Proyecto Fodecyt No. 32/97). Consejo Nacional de Ciencia y Tecnología, Universidad Rural de Guatemala.
Santhosh, M. S., Hemshekhar, M., Sunitha, K., Thushara, R. M., Jnaneshwari, S., Kemparaju, K., & Girish, K. S. (2013). Snake venom induced local toxicities: Plant secondary metabolites as an auxiliary therapy. Mini Reviews in Medical Chemistry, 13(1), 106-123.
Saravia Otten, P., Cáceres, A., Velásquez, R., & Lara, O. (2001). Plantas con actividad antiofídica en Guatemala. I. Identificación y evaluación de su capacidad neutralizante (Proyecto Fodecyt No. 47-99). Consejo Nacional de Ciencia y Tecnología, Universidad de San Carlos de Guatemala, Facultad de Ciencias Químicas y Farmacia.
Saravia-Otten, P., Hernández, R., Gutiérrez, J. M., Mérida, M., & Cáceres, A. (2015). Evaluación de la capacidad neutralizante de extractos de plantas de uso popular en Guatemala como antídotos para el envenenamiento por la mordedura de Bothrops asper. Ciencia, Tecnología y Salud, 2(1), 25-37. https://doi.org/10.36829/63CTS.v2i1.34
Saravia-Otten, P., Hernández, R., Marroquín, N., García, G., Mérida, M., Cruz, S., Orozco, N., Cáceres, A., & Gutiérrez, J. M. (2017). Inhibición de los efectos coagulante, fosfolipasa A2 y proteolítico del veneno de Bothrops asper por plantas usadas tradicionalmente en Centroamérica. Ciencia, Tecnología y Salud, 4(2), 203-216. https://doi.org/10.36829/63CTS.v4i2.355
Saravia-Otten, P., Hernández, R., Marroquín, N., García, G., Nave, F., Rochac, L., Genovez, V., Mérida, M., Cruz, S. M., Cáceres, A., & Gutiérrez, J. M. (2021). Inhibición de las actividades proteolítica y fosfolipasa A2 del veneno de Bothrops asper por el extracto etanólico de Neurolaena lobata (L.) Cass. Ciencia Tecnología y Salud, 8(1), 10-23. https://doi.org/10.36829/63CTS.v8i1.865
Saravia-Otten, P., Hernández, R., Marroquín, N., Pereañez, J. A., Preciado, L. M., Vásquez, A., García, G., Nave, F., Rochac, L., Genovez, V., Mérida, M., Cruz, S. M., Orozco, N., Cáceres, A., & Gutiérrez, J. M. (2022). Inhibition of enzymatic activities of Bothrops asper snake venom and docking analysis of compounds from plants used in Central America to treat snakebite envenoming. Journal of Ethnopharmacology, 283, Article 114710. https://doi.org/10.1016/j.jep.2021.114710
Singh, A., Duggal, S., Singh, J., & Katekhaye, S. (2010). An inside preview of Ethnopharmacology of Cissampelos pareira Linn. International Journal of Biological Technology, 1(1), 114.120.
Singh, B. K., Ramakrishna, Y., & Ngachan, S.V. (2014). Spiny coriander (Eryngium foetidum L.): A commonly used, neglected spicing-culinary herb of Mizoram, India. Genetic Resources and Crop Evolution, 61, 1085-1090. https://doi.org/10.1007/s10722-014-0130-5
Singha, S. C. (1965). Medicinal plants of Nigeria. Nigeria National Press
Sirinthipaporn, A., & Jiraungkoorskul, W. (2017). Wound healing property review of Siam weed, Chromolaena odorata. Pharmacognosy Reviews, 11(21), 35-38. https://doi.org/10.4103/phrev.phrev_53_16
Six, D. A., & Dennis, E. A. (2000). The expanding superfamily of phospholipase A(2) enzymes: Classification and characterization. Biochimica et Biophysica Acta, 1488(2), 1-19. https://doi.org/10.1016/s1388-1981(00)00105-0
Soares, A. M., Ticli, F. K., Marcussi, S., Lourenço, M. V., Januário, A. H., Sampaio, S. V., Giglio, J. R., Lomonte, B., & Pereira, P. S. (2005). Medicinal plants with inhibitory properties against snake venoms. Current Medicinal Chemistry, 12(22), 2625-2641. https://doi.org/10.2174/092986705774370655
Solórzano, A. (2004). Serpientes de Costa Rica. Editorial InBio.
Sosa, S., Balick, M. J., Arvigo, R., Esposito, R. G., Pizza, C., Altinier, G., & Tubaro, A. (2002). Screening of the topical anti-inflammatory activity of some Central American plants. Journal of Ethnopharmacology, 81(2), 211-215. https://doi.org/10.1016/s0378-8741(02)00080-6
Standley, P. C., & Steyermark, J. A. (1946-1976). Flora of Guatemala. Fieldiana: Botany, 24, (1-12).
Standley, P. C., & Williams, L.O. (1975). Flora of Guatemala. Fieldiana: Botany, 24(8), 411-412.
Suárez, A., Ulate, G., & Ciccio, J. F. (1997). Cardiovascular effects of ethanolic and aqueous extracts of Pimenta dioica in Sprague-Dawley rats. Journal of Ethnopharmacology, 55(2), 107-111. https://doi.org/10.1016/s0378-8741(96)01485-7
Taiwo, O. B., Olakide, O. A., Soyannwo, O. O., & Makinde, J. M. (2000). Anti-inflammatory, antipyretic and antispasmodic properties of Chromolaena odorata. Pharmaceutical Biology, 38(5), 367-370. https://doi.org/10.1076/phbi.38.5.367.5970
Umukoro, S., & Ashorobi, R. B. (2006). Evaluation of the anti-inflammatory and membrane-stabilizing effects of Eupatorium odoratum. International Journal of Pharmacology, 2(5), 509-512.
Vijayaraghavan, K., Rajkumar, J., Bukhari, S. N. A., Al-Sayed, B., & Seyed, M. A. (2016). Chromolaena odorata: A neglected weed with a wide spectrum of pharmacological activities (Review). Molecular Medicine Reports, 15(3), 1007-1016. https://doi.org/10.3892.mmr.2017.6133
Vijayaraghavan, K., Rajkumar, J., & Seyed, M. A. (2017). Efficacy of Chromolaena odorata leaf extracts for the healing of rat excision wounds. Veterinarni Medicina, 62(10), 565-578.
Vital, P. G., & Rivera, W. L. (2009). Antimicrobial activity and cytotoxicity of Chromolaena odorata (L. f.) King and Robinson and Uncaria perrottetii (A. Rich) Merr. extracts. Journal of Medicinal Plants Research, 3(7), 511-518.
Walshe-Roussel, B., Choueiri, C., Saleem, A., Asim, M., Caal, F., Cal, V., Rojas, M. O., Pesek, T., Durst, T., & Arnason, J. T. (2013). Potent anti-inflammatory activity of sesquiterpene lactones from Neurolaena lobata (L.) R. Br. ex Cass., a Q’eqchí’ Maya traditional medicine. Phytochemistry, 92, 122-137. https://doi.org/10.1016/j.phytochem.2013.05.004.
Yasunaka, K., Abe, F., Nagayama, A., Okabe, H., Lozada-Pérez, L., López-Villafranco, E., Muñiz, E. E., Aguilar, A., & Reyes-Chilpa, R. (2005). Antibacterial activity of crude extracts from Mexican medicinal plants and purified coumarins and xanthones. Journal of Ethnopharmacology, 97(2), 293-299. https://doi.org/10.1016/j.jep.2004.11.014
World Health Organization. (2017). WHO Guidelines for production, control and regulation of snake antivenom immunoglobulins. Annex 5
World Health Organization. (2019). Snakebite Envenoming. A Strategy for Prevention and Control. https://www.who.int/snakebites/resources/9789241515641/en/
Zhang, L., & Lokeshwar, B. L. (2012). Medicinal properties of the Jamaican pepper plant Pimenta dioica and allspice. Current Drug Targets, 13, 19-1906. https://doi.org/10.2174/138945012804545641
Downloads
Published
How to Cite
Issue
Section
License
Copyright (c) 2022 Patricia Saravia-Otten
This work is licensed under a Creative Commons Attribution-NonCommercial-ShareAlike 4.0 International License.
El autor que publique en esta revista acepta las siguientes condiciones:
- El autor otorga a la Dirección General de Investigación el derecho de editar, reproducir, publicar y difundir el manuscrito en forma impresa o electrónica en la revista Ciencia, Tecnología y Salud.
- La Direción General de Investigación otorgará a la obra una licencia Creative Commons Atribución-NoComercial-CompartirIgual 4.0 Internacional