Zacytuj

1. A. A. S. Pereira, E. de Castro Ferreira, A. C. V. M. da Rocha Lima, G. B. Tonelli, F. D. Rêgo, A. P. Paglia, J. D. Andrade-Filho, G. F. Paz and C. M. F. Gontijo, Detection of Leishmania spp in silvatic mammals and isolation of Leishmania (Viannia) braziliensis from Rattus rattus in an endemic area for leishmaniasis in Minas Gerais State, Brazil, PLoS One12 (2017) e0187704 (9 pages); https://doi.org/10.1371/journal.pone.018770410.1371/journal.pone.0187704570352929176902Search in Google Scholar

2. I. Bennis, S. Thys, H. Filali, V. de Brouwere, H. Sahibi and M. Boelaert, Psychosocial impact of scars due to cutaneous leishmaniasis on high school students in Errachidia province, Morocco, Infect. Dis. Pov.6 (2017) Article ID 46 (8 pages); https://doi.org/10.1186/s40249-017-0267-510.1186/s40249-017-0267-5538395528385151Search in Google Scholar

3. World Health Organization (WHO), Leishmaniasis, Copenhagen 2020; http://www.who.int/media-centre/factsheets/fs375/en/; last access date June 16, 2020Search in Google Scholar

4. M. Khraiwesh, S. Leed, N. Roncal, J. Johnson, R. Sciotti, P. Smith, L. Read, R. Paris, T. Hudson, M. Hickman and M. Grogl, Antileishmanial activity of compounds derived from the medicines for malaria venture open access box against intracellular Leishmania major amastigotes, Am. J. Trop. Med. Hyg.94 (2016) 340–347; https://doi.org/10.4269/ajtmh.15-044810.4269/ajtmh.15-0448475193926503273Search in Google Scholar

5. R. Delgado-Altamirano, L. Monzote, A. Piñón-Tápanes, H. Vibrans, J. F. Rivero-Cruz, C. Ibarra-Alvarado and A. Rojas-Molina, In vitro antileishmanial activity of Mexican medicinal plants, Heliyon3 (2017) e00394 (19 pages); https://doi.org/10.1016/j.heliyon.2017.e0039410.1016/j.heliyon.2017.e00394559630828932821Search in Google Scholar

6. G. M. Cragg and D. J. Newman, Natural products: A continuing source of novel, Biochim. Biophys. Acta1830 (2013) 3670–3695; https://doi.org/10.1016/j.bbagen.2013.02.00810.1016/j.bbagen.2013.02.008367286223428572Search in Google Scholar

7. B. B. Jensen, C. D. Comandolli-Wyrepkowski, A. M. C. Barros, F. V. Soares, I. Grafova, A. Grafov and A. M. R. Franco, Evaluation of activity anti-Leishmania in vitro of Tanacetum vulgare (Asteraceae), Acta Bras.1 (2017) 33–37; https://doi.org/10.22571/Actabra1220171610.22571/Actabra12201716Search in Google Scholar

8. A. G. Brenton and A. R. Godfrey, Accurate mass measurement: Terminology and treatment of data, J. Am. Soc. Mass Spectrom.21 (2010) 1821–1835; https://doi.org/10.1016/j.jasms.2010.06.00610.1016/j.jasms.2010.06.00620650651Search in Google Scholar

9. V. M. Marcussi, L. M. Marcussi, I. P. Barbosa-Tessmann, M. V. C. Lonardoni and T. G. V Silveira, Leishmania (Viannia) braziliensis: New primers for identification using polymerase chain reaction, Exp. Parasitol.120 (2008) 300–305; https://doi.org/10.1016/j.exppara.2008.08.00510.1016/j.exppara.2008.08.00518786532Search in Google Scholar

10. C. Williams, O. A. Espinosa, H. Montenegro, L. Cubilla, T. L. Capson, E. Ortega-Barrıa and L. I. Romero, Hydrosoluble formazan XTT: its application to natural products drug discovery for Leish-mania, J. Microbiol. Methods55 (2003) 813–816; https://doi.org/10.1016/J.MIMET.2003.08.01310.1016/j.mimet.2003.08.01314607426Search in Google Scholar

11. R. H. Valdez, L. T. D. Tonin, T. Ueda-Nakamura, B. P. D. Filho, J. A. Morgado-Diaz, M. H. Sarragiotto and C. V. Nakamura, Biological activity of 1,2,3,4-tetrahydro-β-carboline-3-carboxamides against Trypanosoma cruzi, Acta Trop.110 (2009) 7–14; https://doi.org/10.1016/J.ACTATROPICA.2008.11.00810.1016/j.actatropica.2008.11.00819063858Search in Google Scholar

12. Y. Gavamukulya, F. Wamunyokoli and H. A. El-Shemy, Annona muricata: Is the natural therapy to most disease conditions including cancer growing in our backyard? A systematic review of its research history and future prospects, Asian Pac. J. Trop. Med.10 (2017) 835–848; https://doi.org/10.1016/j.apjtm.2017.08.00910.1016/j.apjtm.2017.08.009Search in Google Scholar

13. L. C. T. Thiesen, E. Y. Y. Sugauara, V. Tešević, J. Glamočlija, M. Soković, J. E. Gonçalves, Z. C. Gazim, G. A. Linde and N. B. Colauto, Antimicrobial activity and chemical composition of Brunfelsia uni-flora flower oleoresin extracted by supercritical carbon dioxide, Genet. Mol. Res.16 (2017) Article ID 16029548 (12 pages); https://doi.org/10.4238/gmr1602954810.4238/gmr16029548Search in Google Scholar

14. P. R. Orsi, L. N. Seito, L. Claudio and D. Stasi, Hymenaea stigonocarpa Mart. ex Hayne: A tropical medicinal plant with intestinal anti-inflammatory activity in TNBS model of intestinal inflammation in rats, J. Ethnopharmacol.151 (2014) 380–385; https://doi.org/10.1016/j.jep.2013.10.05610.1016/j.jep.2013.10.056Search in Google Scholar

15. J. J. M. M. Andrade, A. L. Aboy, M. A. Apel, M. C. B. Raseira, J. F. M. Pereira and A. T. Henriques, Phenolic composition in different genotypes of guabiju fruits (Myrcianthes pungens) and their potential as antioxidant and antichemotactic agents, J. Food Sci.76 (2011) 1181–1187; https://doi.org/10.1111/j.1750-3841.2011.02375.x10.1111/j.1750-3841.2011.02375.xSearch in Google Scholar

16. F. R. Garcez, W. S. Gacez, L. Hamerski and C. H. Miguita, Phenylpropanoids and other bioactive constituents from Nectandra megapotamica, Quim. Nova32 (2009) 407–411; https://doi.org/10.1590/S0100-4042200900020002610.1590/S0100-40422009000200026Search in Google Scholar

17. C. M. M. Fernandez-Andrade, K. Z. Bernuci, R. Y. Makimori and B. P. Dias, Atividade antifúngica do extrato hidroalcoólico de Piper corcovadensis (Miq.) C. DC., 6o Congresso Ciências Farmacêuticas do Mercosul, 6º Simpósio em Ciência e Tecnologia de Alimentos do Mercosul, Cascavel-Paraná-Brazil, November 16-18, 2016.Search in Google Scholar

18. K. de S. Farias, S. A. Auharek, A. L. Cunha-Laura, J. M. E. de Souza, G. A. Damasceno-Junior, M. C. Toffoli-Kadri, W. F. de O. Filiú, E. dos A. dos Santos, M. R. Chang and C. A. Carollo, Adulteration and contamination of commercial sap of Hymenaea species, Evid.-Based Complement. Altern. Med.2017 (2017) Article ID 1919474 (13 pages); https://doi.org/10.1155/2017/191947410.1155/2017/1919474Search in Google Scholar

19. P. C. Veggi, J. M. Prado, G. A. Bataglion, M. N. Eberlin and M. A. A. Meireles, Obtaining phenolic compounds from jatoba (Hymenaea courbaril L.) bark by supercritical fluid extraction, J. Supercrit. Fluids89 (2014) 68–77; https://doi.org/10.1016/j.supflu.2014.02.01610.1016/j.supflu.2014.02.016Search in Google Scholar

20. K. Sasaki, Y. Matsukura, K. Shijima, M. Miyake, D. Fujiwara and Y. Konishi, High-performance liquid chromatographic purification of oligomeric procyanidins, trimers up to nonamers, derived from the bark of jatoba (Hymenaea courbaril), Biosci. Biotechnol. Biochem.73 (2014) 1274–1279; https://doi.org/10.1271/bbb.8074710.1271/bbb.80747Search in Google Scholar

21. P. R. Orsi, F. Bonamin, J. A. Severi, R. C. Santos, W. Vilegas, C. A. Hiruma-Lima and L. C. Di Stasi, Hymenaea stigonocarpa Mart. ex Hayne: A Brazilian medicinal plant with gastric and duodenal anti-ulcer and antidiarrheal effects in experimental rodent models, J. Ethnopharmacol.143 (2012) 81–90; https://doi.org/10.1016/j.jep.2012.06.00110.1016/j.jep.2012.06.001Search in Google Scholar

22. S. S. Costa and W. B. Mors, Amides of Ottonia corcovadensis, Phytochemistry20 (1981) 1305–1307; https://doi.org/10.1016/0031-9422(81)80027-110.1016/0031-9422(81)80027-1Search in Google Scholar

23. V. A. Facundo, S. M. Morais and R. B. Filho, Chemical constituents of Ottonia corcovadensis Miq. from Amazon forest - 1H and 13C chemical shift assignments, Quim Nova27 (2004) 79–83; https://doi.org/10.1590/S0100-4042200400010001710.1590/S0100-40422004000100017Search in Google Scholar

24. D. P. Bezerra, F. O. Castro, A. P. N. N. Alves, C. Pessoa, M. O. Moraes, E. R. Silveira, M. A. S. Lima, F. J. M. Elmiro and L. V. Costa-Lotufo, In vivo growth-inhibition of sarcoma 180 by piplartine and piperine, two alkaloid amides from Piper, Braz. J. Med. Biol. Res.39 (2006) 801–807; https://doi.org/10.1590/S0100-879X200600060001410.1590/S0100-879X2006000600014Search in Google Scholar

25. R. Mata, I. Morales, O. Pérez, I. Rivero-Cruz, L. Acevedo, I. Enriquez-Mendoza, R. Bye, S. Franzblau and B. Timmermann, Antimycobacterial compounds from Piper sanctum, J. Nat. Prod.67 (2004) 1961–1968; https://doi.org/10.1021/np040126010.1021/np0401260Search in Google Scholar

26. A. Matsushige, Y. Kotake, K. Matsunami, H. Otsuka, S. Ohta and Y. Takeda, Three new megastig-manes from the leaves of Annona muricata, J. Nat. Med.66 (2012) 284–291; https://doi.org/10.1007/s11418-011-0583-110.1007/s11418-011-0583-1Search in Google Scholar

27. S. H. Park, H. S. Shin, N. H. Lee, I. K. Hong and S. N. Park, Cellular protective effects and mechanisms of kaempferol and nicotiflorin isolated from Annona muricata against 1O2-induced Damage, Appl. Chem. Eng.29 (2018) 49–55; https://doi.org/10.14478/ace.2017.1097Search in Google Scholar

28. P. Dos S. da Rocha, J. F. Campos, V. Nunes-Souza, M. do C. Vieira, A. P. de A. Boleti, L. A. Rabelo, E. L. Dos Santos and K. de P. Souza, Antioxidant and protective effects of Schinus terebinthifolius Raddi against doxorubicin-induced toxicity, Appl. Biochem. Biotechnol.184 (2018) 869–884; https://doi.org/10.1007/s12010-017-2589-y10.1007/s12010-017-2589-ySearch in Google Scholar

29. M. C. Jaramillo, G. J. Arango, M. C. Gonzalez, S. M. Robledo and I. D. Velez, Cytotoxicity and anti-leishmanial activity of Annona muricata pericarp, Fitoterapia71 (2000) 183–186; https://doi.org/10.1016/s0367-326x(99)00138-010.1016/S0367-326X(99)00138-0Search in Google Scholar

30. C. Y. Ragasa, G. Soriano, O. B. Torres, D. Ming-Jaw and S. Chien-Chang, Acetogenins from Annona muricata, Pharmacogn. J.4 (2012) 32–37; https://doi.org/10.5530/pj.2012.32.710.5530/pj.2012.32.7Search in Google Scholar

31. S. Fofana, A. Keita, S. Balde, R. Ziyaev and S. F. Aripova, Alkaloids from leaves of Annona muricata, Chem. Nat. Compd.48 (2012) 714; https://doi.org/10.1007/s10600-012-0363-510.1007/s10600-012-0363-5Search in Google Scholar

32. A. V Coria-Téllez, E. N. Obledo-Vázquez, E. Padilla-Camberos, M. González-Ávila and M. Martínez-Velázquez, Bioactivity, nutritional property, and rapid chemical characterization of aqueous extract of Annona muricata leaf from Mexico, Trop. J. Pharm. Res.18 (2019) 611–617; https://doi.org/10.4314/tjpr.v18i3.2410.4314/tjpr.v18i3.24Search in Google Scholar

33. F.-R. Chang, C.-C. Liaw, C.-Y. Lin, C.-J. Chou, H.-F. Chiu and Y.-C. Wu, New adjacent bis-tetrahydrofuran annonaceous acetogenins from Annona muricata, Planta Med.69 (2003) 241–246; https://doi.org/10.1055/s-2003-3848510.1055/s-2003-3848512677528Search in Google Scholar

34. E. J. Oliveira, M. A. Romero, M. S. Silva, B. A. Silva and I. A. Medeiros, Intracellular calcium mobilization as a target for the spasmolytic action of scopoletin, Planta Med.67 (2001) 605–608; https://doi.org/10.1055/s-2001-1735510.1055/s-2001-1735511582535Search in Google Scholar

35. M. B. G. Martins, R. de R. Graf, A. J. Cavalheiro and S. D. Rodrigues, Caracterização anatômica, química e antibacteriana de folhas de Brunfelsia uniflora (manacá) presentes na Mata Atlântica, Braz. J. Pharmacogn.19 (2009) 106–114; https://doi.org/10.1590/S0102-695X200900010002010.1590/S0102-695X2009000100020Search in Google Scholar

36. C. Birkner, G. Stapel, S. Leyck, H. Fischer, B. Christ and K. Kesselring, Extraction of hopamidine, Ger. Pat. 3,506,643, 1986.Search in Google Scholar

37. A. L. de Almeida, M. L. Beleza, A. Campos, R. L. da Rosa, S. F. de Andrade, V. C. Filho and L. A. N. Nesello, Phytochemical profile and gastroprotective potential of Myrcianthes pungens fruits and leaves, Nutrire42 (2017) Article ID 24 (5 pages); https://doi.org/10.1186/s41110-017-0040-310.1186/s41110-017-0040-3Search in Google Scholar

38. S. K. T. Seraglio, M. Schulz, P. Nehring, F. D. Betta, A. C. Valese, H. Daguer, L. V. Gonzaga, R. Fett and A. C. O. Costa, Nutritional and bioactive potential of Myrtaceae fruits during ripening, Food Chem.239 (2018) 649–656; https://doi.org/10.1016/j.foodchem.2017.06.11810.1016/j.foodchem.2017.06.11828873617Search in Google Scholar

39. M. F. Muzitano, L. W. Tinoco, C. Guette, C. R. Kaiser, B. Rossi-Bergmann and S. S. Costa, The anti-leishmanial activity assessment of unusual flavonoids from Kalanchoe pinnata, Phytochemistry67 (2006) 2071–2077; https://doi.org/10.1016/j.phytochem.2006.06.02710.1016/j.phytochem.2006.06.02716930642Search in Google Scholar

40. M. F. Muzitano, C. A. B. Falcão, E. A. Cruz, M. C. Bergonzi, A. R. Billa, F. F. Vincieri, B. R. Rossi-Bergmann and S. S. Costa, Oral metabolism and efficacy of Kalanchoe pinnata flavonoids in a murine model of cutaneous leishmaniasis, Planta Med.75 (2009) 307–311; https://doi.org/10.1055/s-0028-108838210.1055/s-0028-108838219085683Search in Google Scholar

41. A. A. da S. Filho, S. Albuquerque, M. L. A. e Silva, M. N. Eberlin, D. M. Tomazela and J. K. Bastos, Tetrahydrofuran lignans from Nectandra megapotamica with trypanocidal activity, J. Nat. Prod.67 (2004) 42–45; https://doi.org/10.1021/np030269710.1021/np030269714738383Search in Google Scholar

42. T. G. Ribeiro, M. A. Chávez-Fumagalli, D. G. Valadares, J. R. Franca, P. S. Lage, M. C. Duarte, P. H. R. Andrade, V. T. Martins, L. E. Costa, A. L. A. Arruda, A. A. G. Faraco, E. A. F. Coelho and R. O. Castilho, Antileishmanial activity and cytotoxicity of Brazilian plants, Exp. Parasitol.143 (2014) 60–68; https://doi.org/10.1016/j.exppara.2014.05.00410.1016/j.exppara.2014.05.00424846006Search in Google Scholar

43. C. V. Nakamura, A. O. Santos, M. C. Vendrametto, P. S. Luize B. P. D. Filho, D. A. G. Cortez and T. Ueda-Nakamura, Antileishmanial activity of hydroalcoholic extract and fractions obtained from leaves of Piper regnellii (Miq.) C. DC. var. pallescens (C. DC.), Rev. Bras. Farmacogn.16 (2006) 61–66; https://doi.org/10.1590/S0102-695X200600010001110.1590/S0102-695X2006000100011Search in Google Scholar

44. V. dos S. Sales, Á. B. Monteiro, G. de A. Delmondes, E. P. do Nasimento, F. R. S. D. N. de Figuêiredo, C. K. de S. Rodrigues, J. F. E. de Lacerda, C. N. Fernandes, M. de O. Barbosa, A. X. Brasil, S. R. Tintino, M. C. V. Gomez, C. Coronel, H. D. M. Coutinho, J. G. M. da Costa, C. F. B. Felipe, I. R. A. de Menezes and M. R. Kerntopf, Antiparasitic activity and essential oil chemical analysis of the Piper tuberculatum Jacq fruit, Iran. J. Pharm. Res.17 (2018) 268–275.Search in Google Scholar

45. F. de L. Moreira, T. B. Riul, M. de L. Moreira, A. C. Pilon, M. Dias-Baruffi, M. S. S. Araújo, N. P. Lopes and A. R. M. de Oliveira, Leishmanicidal effects of piperlongumine (Piplartine) and its putative metabolites, Planta Med. 84 (2018) 1141–1148; https://doi.org/10.1055/a-0614-268010.1055/a-0614-268029763945Search in Google Scholar

46. E. Osorio, G. J. Arango, N. Jiménez, F. Alzate, G. Ruiz, D. Gutiérrez, M. A. Paco, A. Giménez and S. Robledo, Antiprotozoal and cytotoxic activities in vitro of Colombian Annonaceae, J. Ethnopharmacol.111 (2007) 630–635; https://doi.org/10.1016/j.jep.2007.01.01510.1016/j.jep.2007.01.01517296281Search in Google Scholar

47. M. J. Chan-Bacab and L. M. Peña-Rodríguez, Plant natural products with leishmanicidal activity, Nat. Prod. Rep.18 (2001) 674–688; https://doi.org/10.1039/B100455G10.1039/b100455g11820764Search in Google Scholar

48. C. E. S. Carvalho, E. P. C. Sobrinho-Junior, L. M. Brito, L. A. D. Nicolau, T. P. Carvalho, A. K. S. Moura, K. A. F. Rodrigues, S. M. P. Carneiro, D. D. R. Arcanjo, A. M. G. L. Citó and F. A. A. Carvalho, Anti-Leishmania activity of essential oil of Myracrodruon urundeuva (Engl.) Fr. All.: Composition, cytotoxity and possible mechanisms of action, Exp. Parasitol.175 (2017) 59–67; https://doi.org/10.1016/j.exppara.2017.02.01210.1016/j.exppara.2017.02.01228189487Search in Google Scholar

49. T. L. de Almeida, J. A. Monteiro, G. K. P. Lopes, L. U. R. Chiavelli, S. M. de O. Santin, C. C. da Silva, V. Kaplum, D. B. Scariot, C. V. Nakamura, A. L. T. G. Ruiz, J. E. de Carvalho, R. T. de Faria and A. M. Pomini, Estudo químico e atividades antiproliferativa, tripanocida e leishmanicida de Maxillaria picta, Quim Nov.37 (2014) 1151–1157; https://doi.org/10.5935/0100-4042.2014017910.5935/0100-4042.20140179Search in Google Scholar

50. T. S. Tiuman, T. Ueda-Nakamura, D. A. G. G. Cortez, B. P. D. Filho, J. A. Morgado-Díaz, W. de S. Souza and C. V. Nakamura, Antileishmanial activity of parthenolide, a sesquiterpene lactone isolated from Tanacetum parthenium, Antimicrob. Agents Chemother.49 (2005) 176–182; https://doi.org/10.1128/AAC.49.11.176Search in Google Scholar

51. T. F. P. de Mello, H. R. Bitencourt, R. B. Pedroso, S. M. A. Aristides, M. V. C. Lonardoni and T. G. V Silveira, Leishmanicidal activity of synthetic chalcones in Leishmania (Viannia) braziliensis, Exp. Parasitol.136 (2014) 27–34; https://doi.org/10.1016/j.exppara.2013.11.00310.1016/j.exppara.2013.11.00324269198Search in Google Scholar

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Pharmacy, other