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Mevalonate Cascade Regulation of Airway Mesenchymal Cell Autophagy and Apoptosis: A Dual Role for p53

Statins inhibit the proximal steps of cholesterol biosynthesis, and are linked to health benefits in various conditions, including cancer and lung disease. We have previously investigated apoptotic pathways triggered by statins in airway mesenchymal cells, and identified reduced prenylation of small...

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Autores principales: Ghavami, Saeid, Mutawe, Mark M., Sharma, Pawan, Yeganeh, Behzad, McNeill, Karol D., Klonisch, Thomas, Unruh, Helmut, Kashani, Hessam H., Schaafsma, Dedmer, Los, Marek, Halayko, Andrew J.
Formato: Texto
Lenguaje:English
Publicado: Public Library of Science 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3031577/
https://www.ncbi.nlm.nih.gov/pubmed/21304979
http://dx.doi.org/10.1371/journal.pone.0016523
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author Ghavami, Saeid
Mutawe, Mark M.
Sharma, Pawan
Yeganeh, Behzad
McNeill, Karol D.
Klonisch, Thomas
Unruh, Helmut
Kashani, Hessam H.
Schaafsma, Dedmer
Los, Marek
Halayko, Andrew J.
author_facet Ghavami, Saeid
Mutawe, Mark M.
Sharma, Pawan
Yeganeh, Behzad
McNeill, Karol D.
Klonisch, Thomas
Unruh, Helmut
Kashani, Hessam H.
Schaafsma, Dedmer
Los, Marek
Halayko, Andrew J.
author_sort Ghavami, Saeid
collection PubMed
description Statins inhibit the proximal steps of cholesterol biosynthesis, and are linked to health benefits in various conditions, including cancer and lung disease. We have previously investigated apoptotic pathways triggered by statins in airway mesenchymal cells, and identified reduced prenylation of small GTPases as a primary effector mechanism leading to p53-mediated cell death. Here, we extend our studies of statin-induced cell death by assessing endpoints of both apoptosis and autophagy, and investigating their interplay and coincident regulation. Using primary cultured human airway smooth muscle (HASM) and human airway fibroblasts (HAF), autophagy, and autophagosome formation and flux were assessed by transmission electron microscopy, cytochemistry (lysosome number and co-localization with LC3) and immunoblotting (LC3 lipidation and Atg12-5 complex formation). Chemical inhibition of autophagy increased simvastatin-induced caspase activation and cell death. Similarly, Atg5 silencing with shRNA, thus preventing Atg5-12 complex formation, increased pro-apoptotic effects of simvastatin. Simvastatin concomitantly increased p53-dependent expression of p53 up-regulated modulator of apoptosis (PUMA), NOXA, and damage-regulated autophagy modulator (DRAM). Notably both mevalonate cascade inhibition-induced autophagy and apoptosis were p53 dependent: simvastatin increased nuclear p53 accumulation, and both cyclic pifithrin-α and p53 shRNAi partially inhibited NOXA, PUMA expression and caspase-3/7 cleavage (apoptosis) and DRAM expression, Atg5-12 complex formation, LC3 lipidation, and autophagosome formation (autophagy). Furthermore, the autophagy response is induced rapidly, significantly delaying apoptosis, suggesting the existence of a temporally coordinated p53 regulation network. These findings are relevant for the development of statin-based therapeutic approaches in obstructive airway disease.
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spelling pubmed-30315772011-02-08 Mevalonate Cascade Regulation of Airway Mesenchymal Cell Autophagy and Apoptosis: A Dual Role for p53 Ghavami, Saeid Mutawe, Mark M. Sharma, Pawan Yeganeh, Behzad McNeill, Karol D. Klonisch, Thomas Unruh, Helmut Kashani, Hessam H. Schaafsma, Dedmer Los, Marek Halayko, Andrew J. PLoS One Research Article Statins inhibit the proximal steps of cholesterol biosynthesis, and are linked to health benefits in various conditions, including cancer and lung disease. We have previously investigated apoptotic pathways triggered by statins in airway mesenchymal cells, and identified reduced prenylation of small GTPases as a primary effector mechanism leading to p53-mediated cell death. Here, we extend our studies of statin-induced cell death by assessing endpoints of both apoptosis and autophagy, and investigating their interplay and coincident regulation. Using primary cultured human airway smooth muscle (HASM) and human airway fibroblasts (HAF), autophagy, and autophagosome formation and flux were assessed by transmission electron microscopy, cytochemistry (lysosome number and co-localization with LC3) and immunoblotting (LC3 lipidation and Atg12-5 complex formation). Chemical inhibition of autophagy increased simvastatin-induced caspase activation and cell death. Similarly, Atg5 silencing with shRNA, thus preventing Atg5-12 complex formation, increased pro-apoptotic effects of simvastatin. Simvastatin concomitantly increased p53-dependent expression of p53 up-regulated modulator of apoptosis (PUMA), NOXA, and damage-regulated autophagy modulator (DRAM). Notably both mevalonate cascade inhibition-induced autophagy and apoptosis were p53 dependent: simvastatin increased nuclear p53 accumulation, and both cyclic pifithrin-α and p53 shRNAi partially inhibited NOXA, PUMA expression and caspase-3/7 cleavage (apoptosis) and DRAM expression, Atg5-12 complex formation, LC3 lipidation, and autophagosome formation (autophagy). Furthermore, the autophagy response is induced rapidly, significantly delaying apoptosis, suggesting the existence of a temporally coordinated p53 regulation network. These findings are relevant for the development of statin-based therapeutic approaches in obstructive airway disease. Public Library of Science 2011-01-31 /pmc/articles/PMC3031577/ /pubmed/21304979 http://dx.doi.org/10.1371/journal.pone.0016523 Text en Ghavami et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Ghavami, Saeid
Mutawe, Mark M.
Sharma, Pawan
Yeganeh, Behzad
McNeill, Karol D.
Klonisch, Thomas
Unruh, Helmut
Kashani, Hessam H.
Schaafsma, Dedmer
Los, Marek
Halayko, Andrew J.
Mevalonate Cascade Regulation of Airway Mesenchymal Cell Autophagy and Apoptosis: A Dual Role for p53
title Mevalonate Cascade Regulation of Airway Mesenchymal Cell Autophagy and Apoptosis: A Dual Role for p53
title_full Mevalonate Cascade Regulation of Airway Mesenchymal Cell Autophagy and Apoptosis: A Dual Role for p53
title_fullStr Mevalonate Cascade Regulation of Airway Mesenchymal Cell Autophagy and Apoptosis: A Dual Role for p53
title_full_unstemmed Mevalonate Cascade Regulation of Airway Mesenchymal Cell Autophagy and Apoptosis: A Dual Role for p53
title_short Mevalonate Cascade Regulation of Airway Mesenchymal Cell Autophagy and Apoptosis: A Dual Role for p53
title_sort mevalonate cascade regulation of airway mesenchymal cell autophagy and apoptosis: a dual role for p53
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3031577/
https://www.ncbi.nlm.nih.gov/pubmed/21304979
http://dx.doi.org/10.1371/journal.pone.0016523
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