Biomechanical Forces in Atherosclerosis-Resistant Vascular Regions Regulate Endothelial Redox Balance via Phosphoinositol 3-Kinase/Akt-Dependent Activation of Nrf2
Open Access
- 28 September 2007
- journal article
- research article
- Published by Wolters Kluwer Health in Circulation Research
- Vol. 101 (7) , 723-733
- https://doi.org/10.1161/circresaha.107.152942
Abstract
Local patterns of biomechanical forces experienced by endothelial cells (ECs) in different vascular geometries appear to play an essential role in regulating EC function and determining the regional susceptibility to atherosclerosis, even in the face of systemic risk factors. To study how biomechanical forces regulate EC redox homeostasis, an important pathogenic factor in atherogenesis, we have cultured human ECs under 2 prototypic arterial shear stress waveforms, “atheroprone” and “atheroprotective,” which were derived from 2 distinct vascular regions in vivo that are typically “susceptible” or “resistant” to atherosclerosis. We demonstrate that atheroprotective flow decreases EC intracellular redox level and protects ECs against oxidative stress–induced injury. To identify the molecular mechanisms that control this cellular response, we examined several major oxidative/antioxidative pathways and found that atheroprotective flow upregulated certain antioxidant genes and strongly activated the transcription factor Nrf2. Using a strategy of small interfering RNA inhibition of Nrf2 expression combined with genome-wide transcriptional profiling, we determined the downstream targets of Nrf2 activation and identified Nrf2 as a critical determinant for the changes in endothelial redox balance exerted by atheroprotective flow. In addition, we showed that atheroprotective flow activates Nrf2 via the phosphoinositol 3-kinase/Akt pathway, and this activation occurs differentially in atherosclerosis-resistant and atherosclerosis-susceptible regions of the mouse aorta. Taken together, our data demonstrate that hemodynamic forces present in atherosclerosis-resistant and -susceptible regions of the vasculature differentially regulate EC redox state and antioxidant potential. These alterations in redox homeostasis are primarily the result of the phosphoinositol 3-kinase/Akt-dependent activation of Nrf2 and its downstream transcriptional targets.Keywords
This publication has 42 references indexed in Scilit:
- Endothelial-Specific Expression of Mitochondrial Thioredoxin Improves Endothelial Cell Function and Reduces Atherosclerotic LesionsThe American Journal of Pathology, 2007
- KLF2 provokes a gene expression pattern that establishes functional quiescent differentiation of the endotheliumBlood, 2006
- Endothelial mechanotransduction, nitric oxide and vascular inflammationJournal of Internal Medicine, 2006
- The Role of the Multidrug Resistance Protein-1 in Modulation of Endothelial Cell Oxidative StressCirculation Research, 2005
- Reactive Oxygen Species in the VasculatureHypertension, 2003
- Oscillatory Shear Stress Stimulates Endothelial Production of from p47 -dependent NAD(P)H Oxidases, Leading to Monocyte AdhesionJournal of Biological Chemistry, 2003
- Fluid Shear Stress Attenuates Hydrogen Peroxide–Induced c-Jun NH 2 -Terminal Kinase Activation via a Glutathione Reductase–Mediated MechanismCirculation Research, 2002
- Activated Akt Protects the Lung from Oxidant-Induced Injury and Delays Death of MiceThe Journal of Experimental Medicine, 2001
- Distinct Mechanical Stimuli Differentially Regulate the PI3K/Akt Survival Pathway in Endothelial CellsAnnals of the New York Academy of Sciences, 2000
- Mitogen-activated protein kinase (ERK1/2) activation by shear stress and adhesion in endothelial cells. Essential role for a herbimycin-sensitive kinase.Journal of Clinical Investigation, 1996