The reduced autophagic response by oxidative stress in angiotensin II-induced hypertrophic H9C2 cells causes more apoptotic cell death
Journal
Experimental Biology and Medicine
Journal Volume
239
Journal Issue
12
Pages
1688-1698
Date Issued
2014-12-16
Author(s)
Abstract
Autophagy is an important process in the pathogenesis of cardiovascular diseases, and angiotensin II (Ang II) plays a causative role in the induction of cardiomyocyte autophagy. The purpose of this study was to explore whether, under conditions of oxidative stress, levels and types of cell death were different in untreated and Ang II-treated cardiomyocytes (H9C2 cells). Treatment with 20 ?M Ang II induced cardiac hypertrophy in H9C2 cells, with increased expression of the hypertrophic markers c-Fos, ?-myosin heavy chain, atrial natriuretic factor (ANF), and brain natriuretic factor (BNF). Under normal conditions, there was no difference in the levels of autophagic vacuoles and apoptotic bodies in untreated and Ang II-treated H9C2 cells. However, oxidative stress generated by 100 ?M H2O2 triggered autophagy in untreated control cells, but had a reduced effect in Ang II-induced hypertrophic cells, resulting in more cell death, and this was associated with a decrease in connexin 43 expression. Blocking this autophagic response with 3-methyladenine resulted in a significant increase in cell death and apoptosis of H9C2 cells but did not significantly affect the response of Ang II-treated cells. The autophagic response to 100 ?M H2O2 provides a survival advantage for cells and this is reduced by Ang II treatment. ? 2014 by the Society for Experimental Biology and Medicine.
Subjects
Angiotensin; Apoptosis; Autophagy; Hypertrophy; Oxidative stress
SDGs
Other Subjects
angiotensin II; atrial natriuretic factor; brain natriuretic factor; connexin 43; myosin heavy chain beta; natriuretic factor; protein c fos; unclassified drug; hydrogen peroxide; animal cell; apoptosis; Article; autophagy; cell culture; cell cycle parameters; cell line; cell size; cell survival; cell viability; controlled study; flow cytometry; H9C2 cell line; heart ventricle hypertrophy; MTT assay; nick end labeling; nonhuman; oxidative stress; polymerase chain reaction; protein expression; quantitative assay; rat; reverse transcription; RNA isolation; Western blotting; animal; autophagy; cell line; drug effects; heart muscle cell; metabolism; physiology; toxicity; Angiotensin II; Animals; Apoptosis; Autophagy; Cell Line; Cell Survival; Hydrogen Peroxide; Myocytes, Cardiac; Oxidative Stress; Rats
Type
journal article