Literature DB >> 23811531

In vitro antioxidant and antiproliferative effects of ellagic acid and its colonic metabolite, urolithins, on human bladder cancer T24 cells.

Zhenpeng Qiu1, Benhong Zhou, Long Jin, Honglian Yu, Lijuan Liu, Youyi Liu, Chengchen Qin, Shuixiang Xie, Fan Zhu.   

Abstract

Urolithins were the metabolites of ellagic acid by intestinal flora in gastrointestinal tract. In previous research, it was found that urolithins could mainly inhibit prostate cancer and colon cancer cell growth. However, there is no report about bladder cancer therapy of urolithins. In this paper, three urolithin-type compounds (urolithin A, urolithin B, 8-OMe-urolithin A) and ellagic acid were evaluated for antiproliferative activity in vitro against human bladder cancer cell lines T24. The IC₅₀ values for T24 cell inhibition were 43.9, 35.2, 46.3 and 33.7 μM for urolithin A, urolithin B, 8-OMe-urolithin A and ellagic acid, respectively. After the administration of urolithins and ellagic acid, we found these compounds could increase mRNA and protein expression of Phospho-p38 MAPK, and decrease mRNA and protein expression of MEKK1 and Phospho-c-Jun in T24 cells. Caspase-3 was also activated and PPAR-γ protein expression increased in drug-induced apoptosis. And what's more, the antioxidant assay afforded by three urolithins and EA treatments were associated with decreases in the intracellular ROS and MDA levels, and increased SOD activity in H₂O₂-treated T24 cells. The results suggested that these compounds could inhibit cell proliferation by p38-MAPK and/or c-Jun medicated caspase-3 activation and reduce the oxidative stress status in bladder cancer.
Copyright © 2013 Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  Antioxidant; Antiproliferative; Apoptosis; Ellagic acid; Urolithin

Mesh:

Substances:

Year:  2013        PMID: 23811531     DOI: 10.1016/j.fct.2013.06.025

Source DB:  PubMed          Journal:  Food Chem Toxicol        ISSN: 0278-6915            Impact factor:   6.023


  30 in total

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9.  Molecular and biochemical evidence on the protective role of ellagic acid and silybin against oxidative stress-induced cellular aging.

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