TY - JOUR
T1 - Glycocalyx sialic acids regulate Nrf2-mediated signaling by fluid shear stress in human endothelial cells
AU - Psefteli, Paraskevi Maria
AU - Kitscha, Phoebe
AU - Vizcay-Barrena, Gema
AU - Chapple, Sarah
AU - Fleck, Roland
AU - Mann, Giovanni
AU - Fowler, Mark
AU - Siow, Richard
N1 - Funding Information:
P-M. P. was supported by a Biotechnology and Biological Sciences Research Council CASE studentship award (BB/M502741/1, R.C.S) in association with Unilever R&D, UK. P.K. was supported by a British Heart Foundation studentship award (FS/13/55/30643, R.C.S). The authors thank Dr Thomas Keeley (Target Discovery Institute, Nuffield Department of Medicine, University of Oxford) for insightful discussions and the midwives and nurses of St. Thomas' Hospital (London, UK) for assistance in the collection of umbilical cords.
Funding Information:
P-M. P. was supported by a Biotechnology and Biological Sciences Research Council CASE studentship award ( BB/M502741/1 , R.C.S) in association with Unilever R&D, UK . P.K. was supported by a British Heart Foundation studentship award ( FS/13/55/30643 , R.C.S). The authors thank Dr Thomas Keeley (Target Discovery Institute, Nuffield Department of Medicine, University of Oxford) for insightful discussions and the midwives and nurses of St. Thomas' Hospital (London, UK) for assistance in the collection of umbilical cords.
Publisher Copyright:
© 2020 The Author(s)
Copyright:
Copyright 2021 Elsevier B.V., All rights reserved.
PY - 2021/1/1
Y1 - 2021/1/1
N2 - Activation of the nuclear factor erythroid 2–related factor 2 (Nrf2) pathway is critical for vascular endothelial redox homeostasis in regions of high, unidirectional shear stress (USS), however the underlying mechanosensitive mediators are not fully understood. The endothelial glycocalyx is disrupted in arterial areas exposed to disturbed blood flow that also exhibit enhanced oxidative stress leading to atherogenesis. We investigated the contribution of glycocalyx sialic acids (SIA) to Nrf2 signaling in human endothelial cells (EC) exposed to atheroprotective USS or atherogenic low oscillatory shear stress (OSS). Cells exposed to USS exhibited a thicker glycocalyx and enhanced turnover of SIA which was reduced in cells cultured under OSS. Physiological USS, but not disturbed OSS, enhanced Nrf2-mediated expression of antioxidant enzymes, which was attenuated following SIA cleavage with exogenous neuraminidase. SIA removal disrupted kinase signaling involved in the nuclear accumulation of Nrf2 elicited by USS and promoted mitochondrial reactive oxygen species accumulation. Notably, knockdown of the endogenous sialidase NEU1 potentiated Nrf2 target gene expression, directly implicating SIA in regulation of Nrf2 signaling by USS. In the absence of SIA, deficits in Nrf2 responses to physiological flow were also associated with a pro-inflammatory EC phenotype. This study demonstrates that the glycocalyx modulates endothelial redox state in response to shear stress and provides the first evidence of an atheroprotective synergism between SIA and Nrf2 antioxidant signaling. The endothelial glycocalyx therefore represents a potential therapeutic target against EC dysfunction in cardiovascular disease and redox dyshomeostasis in ageing.
AB - Activation of the nuclear factor erythroid 2–related factor 2 (Nrf2) pathway is critical for vascular endothelial redox homeostasis in regions of high, unidirectional shear stress (USS), however the underlying mechanosensitive mediators are not fully understood. The endothelial glycocalyx is disrupted in arterial areas exposed to disturbed blood flow that also exhibit enhanced oxidative stress leading to atherogenesis. We investigated the contribution of glycocalyx sialic acids (SIA) to Nrf2 signaling in human endothelial cells (EC) exposed to atheroprotective USS or atherogenic low oscillatory shear stress (OSS). Cells exposed to USS exhibited a thicker glycocalyx and enhanced turnover of SIA which was reduced in cells cultured under OSS. Physiological USS, but not disturbed OSS, enhanced Nrf2-mediated expression of antioxidant enzymes, which was attenuated following SIA cleavage with exogenous neuraminidase. SIA removal disrupted kinase signaling involved in the nuclear accumulation of Nrf2 elicited by USS and promoted mitochondrial reactive oxygen species accumulation. Notably, knockdown of the endogenous sialidase NEU1 potentiated Nrf2 target gene expression, directly implicating SIA in regulation of Nrf2 signaling by USS. In the absence of SIA, deficits in Nrf2 responses to physiological flow were also associated with a pro-inflammatory EC phenotype. This study demonstrates that the glycocalyx modulates endothelial redox state in response to shear stress and provides the first evidence of an atheroprotective synergism between SIA and Nrf2 antioxidant signaling. The endothelial glycocalyx therefore represents a potential therapeutic target against EC dysfunction in cardiovascular disease and redox dyshomeostasis in ageing.
KW - Glycocalyx
KW - Oxidative Stress
KW - Shear stress
KW - Cardiovascular Disease
KW - Nrf2
KW - Antioxidant defenses
KW - Endothelium, Vascular
KW - Ageing
UR - http://www.scopus.com/inward/record.url?scp=85097746782&partnerID=8YFLogxK
U2 - 10.1016/j.redox.2020.101816
DO - 10.1016/j.redox.2020.101816
M3 - Article
SN - 2213-2317
VL - 38
JO - Redox Biology
JF - Redox Biology
IS - January 2021
M1 - 101816
ER -