Literature DB >> 27808511

Cytotoxic Lanostanoids from Poria cocos.

Kuei-Hung Lai1,2, Mei-Chin Lu3,4, Ying-Chi Du1, Mohamed El-Shazly1,5, Tung-Ying Wu1, Yu-Ming Hsu1, Astrid Henz2, Juan-Cheng Yang6,7, Anders Backlund2, Fang-Rong Chang1,8,9, Yang-Chang Wu1,6,7,10.   

Abstract

Six new and 16 known lanostanoids were isolated from the sclerotia of Poria cocos. The structures of the new isolates were elucidated to be 16α-hydroxy-3-oxo-24-methyllanosta-5,7,9(11),24(31)-tetraen-21-oic acid (1), 3β,16α,29-trihydroxy-24-methyllanosta-7,9(11),24(31)-trien-21-oic acid (2), 3β,16α,30-trihydroxy-24-methyllanosta-7,9(11),24(31)-trien-21-oic acid (3), 3β-acetoxy-16α,24β-dihydroxylanosta-7,9(11),25-trien-21-oic acid (4), 3β,16α-dihydroxy-7-oxo-24-methyllanosta-8,24(31)-dien-21-oic acid (5), and 3α,16α-dihydroxy-7-oxo-24-methyllanosta-8,24(31)-dien-21-oic acid (6), based on extensive spectroscopic analyses. The absolute configuration of 4 was determined using Mosher's method. The antiproliferative activity of the isolated compounds (except 3 and 4) was evaluated against four leukemic cell lines (Molt 4, CCRF-CEM, HL 60, and K562). Dehydropachymic acid (9), dehydroeburicoic acid (12), pachymic acid (14), and lanosta-7,9(11),24-trien-21-oic acid (20) exhibited an antiproliferative effect on the CCRF-CEM cancer cell line with IC50 values of 2.7, 6.3, 4.9, and 13.1 μM, respectively. Both dehydropachymic acid (9) and dehydroeburicoic acid (12) showed antiproliferative effects against Molt 4 (IC50 13.8 and 14.3 μM) and HL 60 (IC50 7.3 and 6.0 μM) leukemic cell lines. Primary computational analysis using a chemical global positioning system for natural products (ChemGPS-NP) on the active lanostanoids from P. cocos suggested that targets other than topoisomerases may be involved in the antiproliferative activity.

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Year:  2016        PMID: 27808511     DOI: 10.1021/acs.jnatprod.6b00575

Source DB:  PubMed          Journal:  J Nat Prod        ISSN: 0163-3864            Impact factor:   4.050


  6 in total

1.  Low-Frequency Sonophoresis of Chinese Medicine Formula Improves Efficacy of Malignant Pleural Effusion Treatment.

Authors:  Ai-Ping Tian; Yu-Kun Yin; Lei Yu; Bo-Yan Yang; Ning Li; Jian-Ying Li; Zhi-Min Bian; Shang-Ying Hu; Chun-Xiao Weng; Li Feng
Journal:  Chin J Integr Med       Date:  2019-08-24       Impact factor: 1.978

2.  Probing Anti-Leukemic Metabolites from Marine-Derived Streptomyces sp. LY1209.

Authors:  You-Ying Chen; Lo-Yun Chen; Po-Jen Chen; Mohamed El-Shazly; Bo-Rong Peng; Yu-Cheng Chen; Chun-Han Su; Jui-Hsin Su; Ping-Jyun Sung; Pei-Tzu Yen; Lung-Shuo Wang; Kuei-Hung Lai
Journal:  Metabolites       Date:  2022-04-02

3.  Briaviolides K-N, New Briarane-Type Diterpenoids from Cultured Octocoral Briareum violaceum.

Authors:  Jing-Hao Xu; Kuei-Hung Lai; Yin-Di Su; Yu-Chia Chang; Bo-Rong Peng; Anders Backlund; Zhi-Hong Wen; Ping-Jyun Sung
Journal:  Mar Drugs       Date:  2018-02-27       Impact factor: 5.118

4.  Inhibition of Calcium Oxalate Formation and Antioxidant Activity of Carboxymethylated Poria cocos Polysaccharides.

Authors:  Chuang-Ye Li; Li Liu; Yao-Wang Zhao; Jia-Yun Chen; Xin-Yuan Sun; Jian-Ming Ouyang
Journal:  Oxid Med Cell Longev       Date:  2021-03-01       Impact factor: 6.543

Review 5.  Pharmacological profiles and therapeutic applications of pachymic acid (Review).

Authors:  Chunyong Wei; Hezhen Wang; Xun Sun; Zhixun Bai; Jing Wang; Guohui Bai; Qizheng Yao; Yingshu Xu; Lei Zhang
Journal:  Exp Ther Med       Date:  2022-07-01       Impact factor: 2.751

6.  Anti-allergic Hydroxy Fatty Acids from Typhonium blumei Explored through ChemGPS-NP.

Authors:  Michal Korinek; Yi-Hong Tsai; Mohamed El-Shazly; Kuei-Hung Lai; Anders Backlund; Shou-Fang Wu; Wan-Chun Lai; Tung-Ying Wu; Shu-Li Chen; Yang-Chang Wu; Yuan-Bin Cheng; Tsong-Long Hwang; Bing-Hung Chen; Fang-Rong Chang
Journal:  Front Pharmacol       Date:  2017-06-19       Impact factor: 5.810

  6 in total

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