Planta Med 2017; 83(16): 1289-1296
DOI: 10.1055/s-0043-107241
Natural Product Chemistry and Analytical Studies
Original Papers
Georg Thieme Verlag KG Stuttgart · New York

Terpenoids from Leaves of Guarea macrophylla Display In Vitro Cytotoxic Activity and Induce Apoptosis In Melanoma Cells

Geanne Alexandra A. Conserva
1   Instituto de Ciências Ambientais, Químicas e Farmacêuticas, Universidade Federal de São Paulo, Brazil
2   Centro de Ciências Naturais e Humanas, Universidade Federal do ABC, Santo Andre, Brazil
,
Natalia Girola
3   Departamento de Microbiologia, Imunologia e Parasitologia,Universidade Federal de São Paulo, Brazil
,
Carlos R. Figueiredo
3   Departamento de Microbiologia, Imunologia e Parasitologia,Universidade Federal de São Paulo, Brazil
4   Department of Molecular and Clinical Cancer Medicine, University of Liverpool, United Kingdom
,
Ricardo A. Azevedo
5   Laboratório de Imunologia de Tumores, Instituto de Ciências Biomédicas, Universidade de São Paulo, Brazil
,
Sasha Mousdell
4   Department of Molecular and Clinical Cancer Medicine, University of Liverpool, United Kingdom
,
Patricia Sartorelli
1   Instituto de Ciências Ambientais, Químicas e Farmacêuticas, Universidade Federal de São Paulo, Brazil
,
Marisi G. Soares
6   Instituto de Química, Universidade Federal de Alfenas, Brazil
,
Guilherme M. Antar
7   Departamento de Botânica, Instituto de Biociências, Universidade de São Paulo, Brazil
,
João Henrique G. Lago
2   Centro de Ciências Naturais e Humanas, Universidade Federal do ABC, Santo Andre, Brazil
› Author Affiliations
Further Information

Publication History

received 12 November 2016
revised 07 February 2017

accepted 20 March 2017

Publication Date:
10 April 2017 (online)

Abstract

Guarea macrophylla is a Brazilian plant species that has been used in folk medicine to treat a range of diseases. Our ongoing work focuses on the discovery of new bioactive natural products derived from Brazilian flora. The current study describes the identification of cytotoxic compounds from the EtOH extract of leaves from G. macrophylla using bioactivity-guided fractionation. This approach resulted in the isolation and characterization of four compounds: cycloart-23E-ene-3β,25-diol (1), (23S*,24S*)-dihydroxycicloart-25-en-3-one (2), isopimara-7,15-diene-2α,3β-diol (3), and isopimara-7,15-dien-3β-ol (4), in which 2 and 3 are identified as new derivatives. In vitro assays were conducted to evaluate the cytotoxic activity of compounds 14 against a panel of cancer cell lines and to determine the possible mechanism(s) related to the activity of the compounds on B16F10Nex2 cells. The most active compound 1 induced cytotoxic effects on tumor cells, with IC50 values of 18.3, 52.1, and 58.9 µM against HL-60, HeLa, and B16F10-Nex2 tumor cells, respectively. Furthermore, it was observed in melanoma cells that compound 1 induced several specific apoptotic hallmarks, such as morphological changes in the cell shape structure, nuclear DNA condensation, specific chromatin fragmentation, and disruption in the mitochondrial membrane potential, which are related to the intrinsic apoptotic pathway.

Supporting information

 
  • References

  • 1 Correa MP. Dicionário de Plantas Úteis e das Exóticas Cultivadas, Vol. 1. Rio de Janeiro: Ministério da Agricultura; 1984
  • 2 Lago JHG, Brochini CB, Roque NF. Terpenes from leaves of Guarea macrophylla (Meliaceae). Phytochemistry 2000; 55: 727-731
  • 3 Lago JHG, Roque NF. Cycloartane triterpenoids from Guarea macrophylla . Phytochemistry 2002; 60: 329-332
  • 4 Morais TR, Coutinho AP, Camilo FF, Martins T, Sartorelli P, Massaoka M, Figueiredo CR, Lago JHG. Application of an ionic liquid in the microwave assisted extraction of cytotoxic metabolites from fruits of Schinus terebinthifolius Raddi (Anacardiaceae). J Braz Chem Soc 2017; 28: 492-497
  • 5 Girola N, Figueiredo CR, Farias CF, Azevedo RA, Ferreira AK, Teixeira SF, Capello TM, Martins EGA, Matsuo AL, Travassos LR, Lago JHG. Camphene isolated from essential oil of Piper cernuum (Piperaceae) induces intrinsic apoptosis in melanoma cells and displays antitumor activity in vivo . Biochem Biophys Res Commun 2015; 467: 928-934
  • 6 Lago JHG, Roque NF. Estudo fitoquímico da madeira de Guarea macrophylla (Meliaceae). Quím Nova 2009; 32: 2351-2354
  • 7 Toume K, Nakazawa T, Ohtsuki T, Arai MA, Koyano T, Kowithayakorn T, Ishibashi M. Cycloartane triterpenes isolated from Combretum quadrangulare in a screening program for death-receptor expression enhancing activity. J Nat Prod 2011; 74: 249-255
  • 8 Toume K, Nakazawa T, Hoque T, Ohtsuki T, Arai MA, Koyano T, Kowithayakorn T, Ishibashi M. Cycloartane triterpenes and ingol diterpenes isolated from Euphorbia neriifolia in a screening program for death-receptor expression-enhancing activity. Planta Med 2012; 78: 1370-1377
  • 9 Mohamad K, Martin MT, Leroy E, Tempete C, Sevenet T, Awang K, Païs M. Argenteanones C–E and argenteanols B–E, cytotoxic cycloartanes from Aglaia argentea . J Nat Prod 1997; 60: 81-85
  • 10 Herz W, Watanabe K, Kulanthaivel P, Blunt FJ. Cycloartanes from Lindheimera texana . Phytochemistry 1985; 24: 2645-2654
  • 11 Lago JHG, Roque NF. New diterpenoids from leaves of Guarea macrophylla (Meliaceae). J Braz Chem Soc 2005; 16: 643-646
  • 12 Aggarwal BB, Sethi G, Baladandayuthapani V, Krishnan S, Shishodia S. Targeting cell signaling pathways for drug discovery: an old lock needs a new key. J Cell Biochem 2007; 102: 580-592
  • 13 Ma YY, Zhao DG, Li Y, Chen JJ, Zeng J, Zhao QQ, Gao K. Cytotoxic triterpenes with diverse skeletons from Amoora tsangii . Phytochem Lett 2016; 15: 251-255
  • 14 Grossman D, Altieri DC. Drug resistance in melanoma: mechanisms, apoptosis, and new potential therapeutic targets. Cancer Metastasis Rev 2001; 20: 3-11
  • 15 Galluzzi L, Vitale I, Abrams JM, Alnemri ES, Baehrecke EH, Blagosklonny MV, Dawson TM, Dawson VL, El-Deiry WS, Fulda S, Gottlieb E, Green DR, Hengartner MO, Kepp O, Knight RA, Kumar S, Lipton SA, Lu X, Madeo F, Malorni W, Mehlen P, Nuñez G, Peter ME, Piacentini M, Rubinsztein DC, Shi Y, Simon HU, Vandenabeele P, White E, Yuan J, Zhivotovsky B, Melino G, Kroemer G. Molecular definitions of cell death subroutines: recommendations of the Nomenclature Committee on Cell Death 2012. Cell Death Differ 2012; 19: 107-120
  • 16 Elmore S. Apoptosis: a review of programmed cell death. Toxicol Pathol 2007; 35: 495-516
  • 17 Kroemer G, Galluzzi L, Vandenabeele P, Abrams J, Alnemri ES, Baehrecke EH, Blagosklonny MV, El-Deiry WS, Golstein P, Green DR, Hengartner M, Knight RA, Kumar S, Lipton SA, Malorni W, Nuñez G, Peter ME, Tschopp J, Yuan J, Piacentini M, Zhivotovsky B, Melino G. Classification of cell death: recommendations of the Nomenclature Committee on Cell Death 2009. Cell Death Differ 2009; 16: 3-11
  • 18 Kyrylkova K, Kyryachenko S, Leid M, Kioussi C. Detection of apoptosis by TUNEL assay. Methods Mol Biol 2012; 887: 41-47
  • 19 Saelens X, Festjens N, Vande Walle L, van Gurp M, Van Loo G, Vandenabeele P. Toxic proteins released from mitochondria in cell death. Oncogene 2004; 23: 2861-2874
  • 20 Figueiredo CR, Matsuo AL, Azevedo RA, Massaoka MH, Girola N, Polonelli L, Travassos LR. A novel microtubule de-stabilizing complementarity-determining region C36L1 peptide displays antitumor activity against melanoma in vitro and in vivo . Sci Rep 2015; 5: 14310-14327