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Mevalonate Cascade Inhibition by Simvastatin Induces the Intrinsic Apoptosis Pathway via Depletion of Isoprenoids in Tumor Cells

The mevalonate (MEV) cascade is responsible for cholesterol biosynthesis and the formation of the intermediate metabolites geranylgeranylpyrophosphate (GGPP) and farnesylpyrophosphate (FPP) used in the prenylation of proteins. Here we show that the MEV cascade inhibitor simvastatin induced significa...

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Autores principales: Alizadeh, Javad, Zeki, Amir A., Mirzaei, Nima, Tewary, Sandipan, Rezaei Moghadam, Adel, Glogowska, Aleksandra, Nagakannan, Pandian, Eftekharpour, Eftekhar, Wiechec, Emilia, Gordon, Joseph W., Xu, Fred. Y., Field, Jared T., Yoneda, Ken Y., Kenyon, Nicholas J., Hashemi, Mohammad, Hatch, Grant M., Hombach-Klonisch, Sabine, Klonisch, Thomas, Ghavami, Saeid
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5366866/
https://www.ncbi.nlm.nih.gov/pubmed/28344327
http://dx.doi.org/10.1038/srep44841
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author Alizadeh, Javad
Zeki, Amir A.
Mirzaei, Nima
Tewary, Sandipan
Rezaei Moghadam, Adel
Glogowska, Aleksandra
Nagakannan, Pandian
Eftekharpour, Eftekhar
Wiechec, Emilia
Gordon, Joseph W.
Xu, Fred. Y.
Field, Jared T.
Yoneda, Ken Y.
Kenyon, Nicholas J.
Hashemi, Mohammad
Hatch, Grant M.
Hombach-Klonisch, Sabine
Klonisch, Thomas
Ghavami, Saeid
author_facet Alizadeh, Javad
Zeki, Amir A.
Mirzaei, Nima
Tewary, Sandipan
Rezaei Moghadam, Adel
Glogowska, Aleksandra
Nagakannan, Pandian
Eftekharpour, Eftekhar
Wiechec, Emilia
Gordon, Joseph W.
Xu, Fred. Y.
Field, Jared T.
Yoneda, Ken Y.
Kenyon, Nicholas J.
Hashemi, Mohammad
Hatch, Grant M.
Hombach-Klonisch, Sabine
Klonisch, Thomas
Ghavami, Saeid
author_sort Alizadeh, Javad
collection PubMed
description The mevalonate (MEV) cascade is responsible for cholesterol biosynthesis and the formation of the intermediate metabolites geranylgeranylpyrophosphate (GGPP) and farnesylpyrophosphate (FPP) used in the prenylation of proteins. Here we show that the MEV cascade inhibitor simvastatin induced significant cell death in a wide range of human tumor cell lines, including glioblastoma, astrocytoma, neuroblastoma, lung adenocarcinoma, and breast cancer. Simvastatin induced apoptotic cell death via the intrinsic apoptotic pathway. In all cancer cell types tested, simvastatin-induced cell death was not rescued by cholesterol, but was dependent on GGPP- and FPP-depletion. We confirmed that simvastatin caused the translocation of the small Rho GTPases RhoA, Cdc42, and Rac1/2/3 from cell membranes to the cytosol in U251 (glioblastoma), A549 (lung adenocarcinoma) and MDA-MB-231(breast cancer). Simvastatin-induced Rho-GTP loading significantly increased in U251 cells which were reversed with MEV, FPP, GGPP. In contrast, simvastatin did not change Rho-GTP loading in A549 and MDA-MB-231. Inhibition of geranylgeranyltransferase I by GGTi-298, but not farnesyltransferase by FTi-277, induced significant cell death in U251, A549, and MDA-MB-231. These results indicate that MEV cascade inhibition by simvastatin induced the intrinsic apoptosis pathway via inhibition of Rho family prenylation and depletion of GGPP, in a variety of different human cancer cell lines.
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spelling pubmed-53668662017-03-28 Mevalonate Cascade Inhibition by Simvastatin Induces the Intrinsic Apoptosis Pathway via Depletion of Isoprenoids in Tumor Cells Alizadeh, Javad Zeki, Amir A. Mirzaei, Nima Tewary, Sandipan Rezaei Moghadam, Adel Glogowska, Aleksandra Nagakannan, Pandian Eftekharpour, Eftekhar Wiechec, Emilia Gordon, Joseph W. Xu, Fred. Y. Field, Jared T. Yoneda, Ken Y. Kenyon, Nicholas J. Hashemi, Mohammad Hatch, Grant M. Hombach-Klonisch, Sabine Klonisch, Thomas Ghavami, Saeid Sci Rep Article The mevalonate (MEV) cascade is responsible for cholesterol biosynthesis and the formation of the intermediate metabolites geranylgeranylpyrophosphate (GGPP) and farnesylpyrophosphate (FPP) used in the prenylation of proteins. Here we show that the MEV cascade inhibitor simvastatin induced significant cell death in a wide range of human tumor cell lines, including glioblastoma, astrocytoma, neuroblastoma, lung adenocarcinoma, and breast cancer. Simvastatin induced apoptotic cell death via the intrinsic apoptotic pathway. In all cancer cell types tested, simvastatin-induced cell death was not rescued by cholesterol, but was dependent on GGPP- and FPP-depletion. We confirmed that simvastatin caused the translocation of the small Rho GTPases RhoA, Cdc42, and Rac1/2/3 from cell membranes to the cytosol in U251 (glioblastoma), A549 (lung adenocarcinoma) and MDA-MB-231(breast cancer). Simvastatin-induced Rho-GTP loading significantly increased in U251 cells which were reversed with MEV, FPP, GGPP. In contrast, simvastatin did not change Rho-GTP loading in A549 and MDA-MB-231. Inhibition of geranylgeranyltransferase I by GGTi-298, but not farnesyltransferase by FTi-277, induced significant cell death in U251, A549, and MDA-MB-231. These results indicate that MEV cascade inhibition by simvastatin induced the intrinsic apoptosis pathway via inhibition of Rho family prenylation and depletion of GGPP, in a variety of different human cancer cell lines. Nature Publishing Group 2017-03-27 /pmc/articles/PMC5366866/ /pubmed/28344327 http://dx.doi.org/10.1038/srep44841 Text en Copyright © 2017, The Author(s) http://creativecommons.org/licenses/by/4.0/ This work is licensed under a Creative Commons Attribution 4.0 International License. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in the credit line; if the material is not included under the Creative Commons license, users will need to obtain permission from the license holder to reproduce the material. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/
spellingShingle Article
Alizadeh, Javad
Zeki, Amir A.
Mirzaei, Nima
Tewary, Sandipan
Rezaei Moghadam, Adel
Glogowska, Aleksandra
Nagakannan, Pandian
Eftekharpour, Eftekhar
Wiechec, Emilia
Gordon, Joseph W.
Xu, Fred. Y.
Field, Jared T.
Yoneda, Ken Y.
Kenyon, Nicholas J.
Hashemi, Mohammad
Hatch, Grant M.
Hombach-Klonisch, Sabine
Klonisch, Thomas
Ghavami, Saeid
Mevalonate Cascade Inhibition by Simvastatin Induces the Intrinsic Apoptosis Pathway via Depletion of Isoprenoids in Tumor Cells
title Mevalonate Cascade Inhibition by Simvastatin Induces the Intrinsic Apoptosis Pathway via Depletion of Isoprenoids in Tumor Cells
title_full Mevalonate Cascade Inhibition by Simvastatin Induces the Intrinsic Apoptosis Pathway via Depletion of Isoprenoids in Tumor Cells
title_fullStr Mevalonate Cascade Inhibition by Simvastatin Induces the Intrinsic Apoptosis Pathway via Depletion of Isoprenoids in Tumor Cells
title_full_unstemmed Mevalonate Cascade Inhibition by Simvastatin Induces the Intrinsic Apoptosis Pathway via Depletion of Isoprenoids in Tumor Cells
title_short Mevalonate Cascade Inhibition by Simvastatin Induces the Intrinsic Apoptosis Pathway via Depletion of Isoprenoids in Tumor Cells
title_sort mevalonate cascade inhibition by simvastatin induces the intrinsic apoptosis pathway via depletion of isoprenoids in tumor cells
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5366866/
https://www.ncbi.nlm.nih.gov/pubmed/28344327
http://dx.doi.org/10.1038/srep44841
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