Literature DB >> 22581840

Chemopreventive sphingadienes downregulate Wnt signaling via a PP2A/Akt/GSK3β pathway in colon cancer.

Ashok Kumar1, Ashok K Pandurangan, Fang Lu, Henrik Fyrst, Meng Zhang, Hoe-Sup Byun, Robert Bittman, Julie D Saba.   

Abstract

Sphingadienes (SDs) derived from soy and other natural sphingolipids are cytotoxic to colon cancer cells via an Akt-dependent mechanism and reduce adenoma formation in Apc(Min/+) mice. Wnt signaling is fundamental to colon carcinogenesis and is the basis for spontaneous tumorigenesis in Apc(Min/+) mice and patients with familial adenomatous polyposis. In the present study, we investigated the impact of SDs on Wnt signaling. Oral SD administration reduced levels of active β-catenin and Wnt targets c-Myc and cyclin D1 in Apc(Min/+) mouse intestinal tissues. Colon cancer cells treated with SDs exhibited reduced Wnt transcriptional activity, as well as reduced nuclear β-catenin localization and subsequent reduction in active-β-catenin levels. Further, we observed a decrease in phosphorylated (inactive) GSK3β in SD-treated mice and colon cancer cells. Expression of constitutively active myristoylated-Akt or inactivation of GSK3β using LiCl attenuated SD-mediated inhibition of Wnt transcriptional activity and active-β-catenin levels. SDs exhibited additive effects with inhibitors of the phosphatidylinositol-3-kinase/Akt/mTOR pathway to induce cytotoxicity. Further, a combination regime of SDs and low-dose rapamycin decreased visible polyps in Apc(Min/+) mice and reduced the levels of Wnt target gene expression and mTOR target activation. SD-mediated inhibition of Akt and Wnt pathways and cytotoxicity in colon cancer cells was dependent upon the activity of protein phosphatase 2A, as shown by reversal of these effects by pretreatment with okadaic acid or calyculin A. Our cumulative findings indicate that SDs inhibit Wnt signaling through a protein phosphatase 2A/Akt/GSK3β-dependent mechanism that may contribute to their chemopreventive effects in intestinal tumorigenesis.

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Year:  2012        PMID: 22581840      PMCID: PMC3514901          DOI: 10.1093/carcin/bgs174

Source DB:  PubMed          Journal:  Carcinogenesis        ISSN: 0143-3334            Impact factor:   4.944


  51 in total

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Review 2.  Biological Effects of Naturally Occurring Sphingolipids, Uncommon Variants, and Their Analogs.

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6.  Two Specific Sulfatide Species Are Dysregulated during Renal Development in a Mouse Model of Alport Syndrome.

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8.  Activation of β-catenin signalling by TFF1 loss promotes cell proliferation and gastric tumorigenesis.

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9.  Sphingadienes show therapeutic efficacy in neuroblastoma in vitro and in vivo by targeting the AKT signaling pathway.

Authors:  Piming Zhao; Ana E Aguilar; Joanna Y Lee; Lucy A Paul; Jung H Suh; Latika Puri; Meng Zhang; Jennifer Beckstead; Andrzej Witkowski; Robert O Ryan; Julie D Saba
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10.  Naringin, a natural dietary compound, prevents intestinal tumorigenesis in Apc (Min/+) mouse model.

Authors:  Yu-Sheng Zhang; Ye Li; Yan Wang; Shi-Yue Sun; Tao Jiang; Cong Li; Shu-Xiang Cui; Xian-Jun Qu
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