Literature DB >> 27592281

Citral reduces breast tumor growth by inhibiting the cancer stem cell marker ALDH1A3.

Margaret Lois Thomas1, Roberto de Antueno2, Krysta Mila Coyle1, Mohammad Sultan1, Brianne Marie Cruickshank1, Michael Anthony Giacomantonio1, Carman Anthony Giacomantonio3, Roy Duncan2, Paola Marcato4.   

Abstract

Breast cancer stem cells (CSCs) can be identified by increased Aldefluor fluorescence caused by increased expression of aldehyde dehydrogenase 1A3 (ALDH1A3), as well as ALDH1A1 and ALDH2. In addition to being a CSC marker, ALDH1A3 regulates gene expression via retinoic acid (RA) signaling and plays a key role in the progression and chemotherapy resistance of cancer. Therefore, ALDH1A3 represents a druggable anti-cancer target of interest. Since to date, there are no characterized ALDH1A3 isoform inhibitors, drugs that were previously described as inhibiting the activity of other ALDH isoforms were tested for anti-ALDH1A3 activity. Twelve drugs (3-hydroxy-dl-kynurenine, benomyl, citral, chloral hydrate, cyanamide, daidzin, DEAB, disulfiram, gossypol, kynurenic acid, molinate, and pargyline) were compared for their efficacy in inducing apoptosis and reducing ALDH1A3, ALDH1A1 and ALDH2-associated Aldefluor fluorescence in breast cancer cells. Citral was identified as the best inhibitor of ALDH1A3, reducing the Aldefluor fluorescence in breast cancer cell lines and in a patient-derived tumor xenograft. Nanoparticle encapsulated citral specifically reduced the enhanced tumor growth of MDA-MB-231 cells overexpressing ALDH1A3. To determine the potential mechanisms of citral-mediated tumor growth inhibition, we performed cell proliferation, clonogenic, and gene expression assays. Citral reduced ALDH1A3-mediated colony formation and expression of ALDH1A3-inducible genes. In conclusion, citral is an effective ALDH1A3 inhibitor and is able to block ALDH1A3-mediated breast tumor growth, potentially via blocking its colony forming and gene expression regulation activity. The promise of ALDH1A3 inhibitors as adjuvant therapies for patients with tumors that have a large population of high-ALDH1A3 CSCs is discussed. Crown
Copyright © 2016. Published by Elsevier B.V. All rights reserved.

Entities:  

Keywords:  ALDH1A3; Aldefluor; Breast cancer; Cancer stem cell

Mesh:

Substances:

Year:  2016        PMID: 27592281      PMCID: PMC5423215          DOI: 10.1016/j.molonc.2016.08.004

Source DB:  PubMed          Journal:  Mol Oncol        ISSN: 1574-7891            Impact factor:   6.603


  42 in total

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2.  Citral reduces breast tumor growth by inhibiting the cancer stem cell marker ALDH1A3.

Authors:  Margaret Lois Thomas; Roberto de Antueno; Krysta Mila Coyle; Mohammad Sultan; Brianne Marie Cruickshank; Michael Anthony Giacomantonio; Carman Anthony Giacomantonio; Roy Duncan; Paola Marcato
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8.  Antitumor Potential of Lippia citriodora Essential Oil in Breast Tumor-Bearing Mice.

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9.  Profiling of the transcriptional response to all-trans retinoic acid in breast cancer cells reveals RARE-independent mechanisms of gene expression.

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Review 10.  Anticancer Properties of Essential Oils and Other Natural Products.

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