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Evolving insights into the role of local shear stress in late stent failure from neoatherosclerosis formation and plaque destabilization Transseptal puncture versus patent foramen ovale or atrial septal defect access for left atrial appendage closure Functional Mitral Regurgitation Outcome and Grading in Heart Failure With Reduced Ejection Fraction Strain-Guided Management of Potentially Cardiotoxic Cancer Therapy Management and outcomes of patients with left atrial appendage thrombus prior to percutaneous closure Hemodynamic, Functional, and Clinical Responses to Pulmonary Artery Denervation in Patients With Pulmonary Arterial Hypertension of Different Causes Rivaroxaban for Thromboprophylaxis in High-Risk Ambulatory Patients With Cancer Long-Term Outcomes of Patients With Mediastinal Radiation–Associated Coronary Artery Disease Undergoing Coronary Revascularization With Percutaneous Coronary Intervention and Coronary Artery Bypass Grafting Implications of the local hemodynamic forces on the formation and destabilization of neoatherosclerotic lesions Potential Candidates for Transcatheter Tricuspid Valve Intervention After Transcatheter Aortic Valve Replacement: Predictors and Prognosis

Original Research2018 Feb;233(2):1384-1395.

JOURNAL:J Cell Physiol. Article Link

Low shear stress induces endothelial reactive oxygen species via the AT1R/eNOS/NO pathway

Chao Y, Ye P, Chen SL et al. Keywords: angiotensin II type 1 receptor; eNOS uncoupling; low shear stress; nitric oxide; reactive oxygen species

ABSTRACT


Reactive oxygen species (ROS) contribute to many aspects of physiological and pathological cardiovascular processes. However, the underlying mechanism of ROS induction by low shear stress (LSS) remains unclear. Accumulating evidence has shown that the angiotensin II type 1 receptor (AT1R) is involved in inflammation, apoptosis, and ROS production. Our aim was to explore the role of AT1R in LSS-mediated ROS induction. We exposed human umbilical vein endothelial cells (HUVECs) to LSS (3 dyn/cm2 ) for different periods of time. Western blotting and immunofluorescence showed that LSS significantly induced AT1R expression in a time-dependent manner. Using immunohistochemistry, we also noted a similar increase in AT1R expression in the inner curvature of the aortic arch compared to the descending aorta in C57BL/6 mice. Additionally, HUVECs were cultured with a fluorescent probe, either DCFH, DHE or DAF, after being subjected to LSS. Cell chemiluminescence and flow cytometry results revealed that LSS stimulated ROS levels and suppressed nitric oxide (NO) generation in a time-dependent manner, which was reversed by the AT1R antagonist Losartan. We also found that Losartan markedly increased endothelial NO synthase (eNOS) phosphorylation at Ser(633,1177) and dephosphorylation at Thr(495), which involved AKT and ERK. Moreover, the ROS level was significantly reduced by endogenous and exogenous NO donors (L-arginine, SNP) and increased by the eNOS inhibitor L-NAME. Overall, we conclude that LSS induces ROS via AT1R/eNOS/NO.