MicroRNA-1 prevents high-fat diet-induced endothelial permeability in apoE knock-out mice

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Abstract

The development of atherosclerosis (AS) is a multifactorial process in which elevated plasma cholesterol levels play a central role. As a new class of players involved in AS, the regulation and function of microRNAs (miR) in response to AS remain poorly understood. This study analyzed the effects of miR-1 (antagomir and mimic) on endothelial permeability and myosin light chain kinase (MLCK) expression and activity in the artery wall of apoE knock-out mice after feeding them a high-cholesterol diet. Further, we tested to determine whether that effects are involved in ERK phosphorylation. Here, we show that a high-cholesterol diet induces a significant decrease of miR-1 expression. Histopathologic examination demonstrated that miR-1 antagomir enhances endothelial permeability induced by high cholesterol and miR-1 mimic attenuated endothelial barrier dysfunction. Consistent with endothelial permeability, Western blotting, qPCR, and γ-32P-ATP phosphate incorporation showed that MLCK expression and activity were further increased inmiR- 1 antagomir-treated mice and decreased in miR-1 mimictreated mice compared with those of mice receiving control miR. Further mechanistic studies showed that high-cholesterol- induced extracellular signal regulated kinase (ERK) activation was enhanced by miR-1 antagomir and attenuated by miR-1mimic. Collectively, those results indicate that miR- 1 contributes to endothelial barrier function via mechanisms involving not only MLCK expression and activity but also ERK phosphorylation. © The Author(s) 2013.

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APA

Wang, H., Zhu, H. Q., Wang, F., Zhou, Q., Gui, S. Y., & Wang, Y. (2013). MicroRNA-1 prevents high-fat diet-induced endothelial permeability in apoE knock-out mice. Molecular and Cellular Biochemistry, 378(1–2), 153–159. https://doi.org/10.1007/s11010-013-1606-x

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