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Am J Physiol Renal Physiol ; 318(5): F1220-F1228, 2020 05 01.
Article de Anglais | MEDLINE | ID: mdl-32281419

RÉSUMÉ

Consumption of a Western diet (WD) induces central aortic stiffening that contributes to the transmittance of pulsatile blood flow to end organs, including the kidney. Our recent work supports that endothelial epithelial Na+ channel (EnNaC) expression and activation enhances aortic endothelial cell stiffening through reductions in endothelial nitric oxide (NO) synthase (eNOS) and bioavailable NO that result in inflammatory and oxidant responses and perivascular fibrosis. However, the role that EnNaC activation has on endothelial responses in the renal circulation remains unknown. We hypothesized that cell-specific deletion of the α-subunit of EnNaC would prevent WD-induced central aortic stiffness and protect the kidney from endothelial dysfunction and vascular stiffening. Twenty-eight-week-old female αEnNaC knockout and wild-type mice were fed either mouse chow or WD containing excess fat (46%), sucrose, and fructose (17.5% each). WD feeding increased fat mass, indexes of vascular stiffening in the aorta and renal artery (in vivo pulse wave velocity and ultrasound), and renal endothelial cell stiffening (ex vivo atomic force microscopy). WD further impaired aortic endothelium-dependent relaxation and renal artery compliance (pressure myography) without changes in blood pressure. WD-induced renal arterial stiffening occurred in parallel to attenuated eNOS activation, increased oxidative stress, and aortic and renal perivascular fibrosis. αEnNaC deletion prevented these abnormalities and support a novel mechanism by which WD contributes to renal arterial stiffening that is endothelium and Na+ channel dependent. These results demonstrate that cell-specific EnNaC is important in propagating pulsatility into the renal circulation, generating oxidant stress, reduced bioavailable NO, and renal vessel wall fibrosis and stiffening.


Sujet(s)
Aorte/métabolisme , Régime occidental/effets indésirables , Canaux sodium épithéliaux/métabolisme , Artère rénale/physiopathologie , Maladies vasculaires/métabolisme , Rigidité vasculaire , Animaux , Aorte/anatomopathologie , Aorte/physiopathologie , Élasticité , Canaux sodium épithéliaux/déficit , Canaux sodium épithéliaux/génétique , Femelle , Fibrose , Souris de lignée C57BL , Souris knockout , Monoxyde d'azote/métabolisme , Nitric oxide synthase type III/métabolisme , Stress oxydatif , Artère rénale/anatomopathologie , Transduction du signal , Maladies vasculaires/génétique , Maladies vasculaires/anatomopathologie , Maladies vasculaires/physiopathologie , Remodelage vasculaire
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