Highly Oxygenated Limonoids and Lignans from Phyllanthus flexuosus

Natural Products and Bioprospecting - Tập 4 - Trang 233-242 - 2014
Jian-Qiang Zhao1,2, Yan-Ming Wang1,2, Hong-Tao Zhu1, Dong Wang1, Sheng-Hong Li1, Rong-Rong Cheng1, Chong-Ren Yang1, Yi-Fei Wang3, Min Xu1, Ying-Jun Zhang1
1State Key Laboratory of Phytochemistry and Plant Resources in West China, Kunming Institute of Botany, Chinese Academy of Sciences, Kunming, People’s Republic of China
2University of Chinese Academy of Sciences, Beijing, People’s Republic of China
3Guangzhou Jinan Biomedicine Research and Development Center, Guangzhou, People’s Republic of China

Tóm tắt

Two new highly oxygenated limonoids, flexuosoids A (1) and B (2), and three new arylnaphthalene lignan glycosides, phyllanthusmins D–F (3–5), were isolated from the roots of Phyllanthus flexuosus, in addition to three known lignans, phyllanthusmin C, arabelline, and (+)-diasyringaresinol. Their structures were elucidated on the basis of detailed spectroscopic analysis and chemical methods. Compounds 1 and 2, two new decaoxygenated limonoids with a C-19/29 lactol bridge and heptaoxygenated substituents at C-1, C-2, C-3, C-7, C-11, C-17, and C-30, represent the second example of limonoids in the Euphorbiaceae family. Most of the isolates were tested for their antifeedant, anti-herpes simplex virus 1, and cytotoxic activities. The new limonoids 1 and 2 showed promising antifeedant activity against the beet army worm (Spodoptera exigua) with EC50 values of 25.1 and 17.3 μg/cm2, respectively. In addition, both of them displayed moderate cytotoxicity against the ECA109 human esophagus cancer cell line, along with the known lignan glycoside, phyllanthusmin C, with the IC50 values of 11.5 (1), 8.5 (2), and 7.8 (phyllanthusmin C) μM, respectively. Two new highly oxygenated limonoids, flexuosoids A (1) and B (2), and three new arylnaphthalene lignan glycosides, phyllanthusmins D–F (3–5), were isolated from the roots of Phyllanthus flexuosus, along with three known lignans. Flexuosoids A (1) and B (2) showed promising antifeedant activity against the beet army worm (Spodoptera exigua) with EC50 values of 25.1 and 17.3 μg/cm2, respectively. In addition, both of them and the known lignan glycoside, phyllanthusmin C, displayed moderate cytotoxicity against the ECA109 human esophagus cancer cell line, with the IC50 values of 11.5, 8.5, and 7.8 μM, respectively.

Tài liệu tham khảo

D.W. Unander, G.L. Webster, B.S. Blumberg, J. Ethnopharmacol. 45, 1–18 (1995) Y.J. Zhang, T. Abe, T. Tanaka, C.R. Yang, I. Kouno, J. Nat. Prod. 64, 1527–1532 (2001) Y.J. Zhang, T. Tanaka, Y. Iwamoto, C.R. Yang, I. Kouno, J. Nat. Prod. 63, 1507–1510 (2000) R. Ratnayake, D. Covell, T.T. Ransom, K.R. Gustafson, J.A. Beutler, Org. Lett. 11, 57–60 (2009) G.R. Pettit, D.E. Schaufel-berger, R.A. Nieman, C. Dufresne, J.A. Saenz-Renauld, J. Nat. Prod. 53, 1406–1413 (1990) Q. Liu, Y.F. Wang, R.J. Chen, M.Y. Zhang, Y.F. Wang, C.R. Yang, Y.J. Zhang, J. Nat. Prod. 72, 969–972 (2009) Y.J. Zhang, T. Nagao, T. Tanaka, C.R. Yang, H. Okabe, I. Kouno, Biol. Pharm. Bull. 27, 251–255 (2004) B.T. Li, Flora of China, vol. 44. (Science Press, Beijing, 1994), pp. 86 R. Tanaka, Y. Kinouchi, S. Wada, H. Tokuda, Planta Med. 70, 1234–1236 (2004) R. Tanaka, M. Tabuse, S. Matsunaga, Phytochemistry 27, 3563–3567 (1988) R. Tanaka, K. Masuda, S. Matsunaga, Phytochemistry 32, 472–474 (1993) R. Tanaka, Y. In, T. Ishida, S. Matsunaga, J. Nat. Prod. 57, 1123–1128 (1994) J.Q. Zhao, J.J. Lv, Y.M. Wang, M. Xu, H.T. Zhu, D. Wang, C.R. Yang, Y.F. Wang, Y.J. Zhang, Tetrahedron Lett. 54, 4670–4674 (2013) Y. Pei, Y.F. Xiang, J.N. Chen, C.H. Lu, J. Hao, Q. Du, C.C. Lai, C. Qu, S. Li, H.Q. Ju, Z. Ren, Q.Y. Liu, S. Xiong, C.W. Qian, F.L. Zeng, P.Z. Zhang, C.R. Yang, Y.J. Zhang, J. Xu, K. Kitazato, Y.F. Wang, Antiviral Res. 89, 98–108 (2011) L.W. Tian, Y. Pei, Y.J. Zhang, Y.F. Wang, C.R. Yang, J. Nat. Prod. 72, 1057–1060 (2009) H.Q. Ju, S.Y. Wang, Y. Pei, Y.F. Xiang, S. Li, Y.J. Zhang, C.R. Yang, Y.F.J. Wang, Chin. Med. Mater. 34, 242–245 (2011) G. Liu, S. Xiong, Y.F. Xiang, C.W. Guo, F. Ge, C.R. Yang, Y.J. Zhang, Y.F. Wang, K. Kitazato, Arch. Virol. 156, 1359–1369 (2011) S.J. Wu, T.S. Wu, Chem. Pharm. Bull. 54, 1223–1225 (2006) Y. Al-Abed, S. Sabri, M.A. Zarga, Z. Shah, Atta-Ur-Rahman, J. Nat. Prod. 53, 1152–1161 (1990) F.R. Chang, Y.C. Chao, C.M. Teng, Y.C. Wu, J. Nat. Prod. 61, 863–866 (1998) J. Polonsky, Z. Varon, B. Arnoux, C. Pascard, G.R. Pettit, J.M. Schmidt, L.M. Lange, J. Am. Chem. Soc. 22, 7731–7733 (1978) T.R. Govindachari, N. Viswanathan, B.R. Pai, T.S. Savitri, Tetrahedron Lett. 16, 901–906 (1964) J.C. Vardamidesa, E. Dongo, A.E. Nkengfack, Z.T. Fomum, T.M. Ngando, B. Vogler, W. Kraus, Fitoterapia 72, 386–393 (2001) R.C. Huang, H. Okamura, T. Iwagawa, M. Nakatani, Bull. Chem. Soc. Jpn. 67, 2468–2472 (1994) K. Takeya, Z.S. Qiao, C. Hirobe, H. Itokawa, Bioorg. Med. Chem. 4, 1355–1359 (1996) I. Kitagawa, M. Saito, T. Taniyama, M. Yoshikawa, Chem. Pharm. Bull. 33, 598–608 (1985) K.C. Lewis, A.R. Maxwell, S. McLean, W.F. Reynolds, R.G. Enriquez, Magn. Reson. Chem. 38, 771–774 (2000) J.Y. Cai, Y. Zhang, S.H. Luo, D.Z. Chen, G.H. Tang, C.M. Yuan, Y.T. Di, S.H. Li, X.J. Hao, H.P. He, Org. Lett. 14, 2524–2527 (2012) Q.G. Tan, X.D. Luo, Chem. Rev. 111, 7437–7522 (2011) J.Q. Zhao, Y.M. Wang, H.P. He, S.H. Li, X.N. Li, C.R. Yang, D. Wang, H.T. Zhu, M. Xu, Y.J. Zhang, Org. Lett. 15, 2414–2417 (2013) M.B. Isman, O. Koul, A. Luczynski, J. Kaminski, J. Agric. Food Chem. 38, 1406–1411 (1990)