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Impairment of autophagy in endothelial cells prevents shear-stress-induced increases in nitric oxide bioavailability
Author(s) -
Leena P. Bharath,
Robert A. Mueller,
Youyou Li,
Ting Ruan,
David Kunz,
Rebekah Goodrich,
Tyler J. Mills,
L.B. Deeter,
Ashot Sargsyan,
Pon Velayutham Anandh Babu,
Timothy E. Graham,
J. David Symons
Publication year - 2014
Publication title -
canadian journal of physiology and pharmacology
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.559
H-Index - 84
eISSN - 1205-7541
pISSN - 0008-4212
DOI - 10.1139/cjpp-2014-0017
Subject(s) - autophagy , enos , nitric oxide , microbiology and biotechnology , reactive oxygen species , nitric oxide synthase , nitric oxide synthase type iii , endothelial dysfunction , chemistry , endothelial stem cell , oxidative stress , biology , biochemistry , endocrinology , apoptosis , in vitro
Autophagy is a lysosomal catabolic process by which cells degrade or recycle their contents to maintain cellular homeostasis, adapt to stress, and respond to disease. Impairment of autophagy in endothelial cells studied under static conditions results in oxidant stress and impaired nitric oxide (NO) bioavailability. We tested the hypothesis that vascular autophagy is also important for induction of NO production caused by exposure of endothelial cells to shear stress (i.e., 3 h × ≈20 dyn/cm(2)). Atg3 is a requisite autophagy pathway mediator. Control cells treated with non-targeting control siRNA showed increased autophagy, reactive oxygen species (ROS) production, endothelial NO synthase (eNOS) phosphorylation, and NO production upon exposure to shear stress (p < 0.05 for all). In contrast, cells with >85% knockdown of Atg3 protein expression (via Atg3 siRNA) exhibited a profound impairment of eNOS phosphorylation, and were incapable of increasing NO in response to shear stress. Moreover, ROS accumulation and inflammatory cytokine production (MCP-1 and IL-8) were exaggerated (all p < 0.05) in response to shear stress. These findings reveal that autophagy not only plays a critical role in maintaining NO bioavailability, but may also be a key regulator of oxidant-antioxidant balance and inflammatory-anti-inflammatory balance that ultimately regulate endothelial cell responses to shear stress.

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