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通过NADPH氧化酶依赖性β1亚基谷胱甘肽化对血管钠钾泵的氧化抑制:对血管紧张素II诱导的血管功能障碍的影响

Oxidative inhibition of the vascular Na+-K+ pump via NADPH oxidase-dependent β1-subunit glutathionylation: implications for angiotensin II-induced vascular dysfunction.

作者信息

Liu Chia-Chi, Karimi Galougahi Keyvan, Weisbrod Robert M, Hansen Thomas, Ravaie Ramtin, Nunez Andrea, Liu Yi B, Fry Natasha, Garcia Alvaro, Hamilton Elisha J, Sweadner Kathleen J, Cohen Richard A, Figtree Gemma A

机构信息

North Shore Heart Research Group, Kolling Institute of Medical Research, University of Sydney, Australia.

North Shore Heart Research Group, Kolling Institute of Medical Research, University of Sydney, Australia; Department of Cardiology, Royal North Shore Hospital, Sydney, Australia.

出版信息

Free Radic Biol Med. 2013 Dec;65:563-572. doi: 10.1016/j.freeradbiomed.2013.06.040. Epub 2013 Jun 28.

Abstract

Glutathionylation of the Na(+)-K(+) pump's β1-subunit is a key molecular mechanism of physiological and pathophysiological pump inhibition in cardiac myocytes. Its contribution to Na(+)-K(+) pump regulation in other tissues is unknown, and cannot be assumed given the dependence on specific β-subunit isoform expression and receptor-coupled pathways. As Na(+)-K(+) pump activity is an important determinant of vascular tone through effects on [Ca(2+)]i, we have examined the role of oxidative regulation of the Na(+)-K(+) pump in mediating angiotensin II (Ang II)-induced increases in vascular reactivity. β1-subunit glutathione adducts were present at baseline and increased by exposure to Ang II in rabbit aortic rings, primary rabbit aortic vascular smooth muscle cells (VSMCs), and human arterial segments. In VSMCs, Ang II-induced glutathionylation was associated with marked reduction in Na(+)-K(+)ATPase activity, an effect that was abolished by the NADPH oxidase inhibitory peptide, tat-gp91ds. In aortic segments, Ang II-induced glutathionylation was associated with decreased K(+)-induced vasorelaxation, a validated index of pump activity. Ang II-induced oxidative inhibition of Na(+)-K(+) ATPase and decrease in K(+)-induced relaxation were reversed by preincubation of VSMCs and rings with recombinant FXYD3 protein that is known to facilitate deglutathionylation of β1-subunit. Knock-out of FXYD1 dramatically decreased K(+)-induced relaxation in a mouse model. Attenuation of Ang II signaling in vivo by captopril (8 mg/kg/day for 7 days) decreased superoxide-sensitive DHE levels in the media of rabbit aorta, decreased β1-subunit glutathionylation, and enhanced K(+)-induced vasorelaxation. Ang II inhibits the Na(+)-K(+) pump in VSMCs via NADPH oxidase-dependent glutathionylation of the pump's β1-subunit, and this newly identified signaling pathway may contribute to altered vascular tone. FXYD proteins reduce oxidative inhibition of the Na(+)-K(+) pump and may have an important protective role in the vasculature under conditions of oxidative stress.

摘要

钠钾泵β1亚基的谷胱甘肽化是心肌细胞生理和病理生理状态下泵抑制的关键分子机制。其对其他组织中钠钾泵调节的作用尚不清楚,鉴于其对特定β亚基同工型表达和受体偶联途径的依赖性,不能想当然地认为它具有相同作用。由于钠钾泵活性通过对细胞内钙离子浓度的影响而成为血管张力的重要决定因素,我们研究了钠钾泵氧化调节在介导血管紧张素II(Ang II)诱导的血管反应性增加中的作用。在兔主动脉环、原代兔主动脉血管平滑肌细胞(VSMC)和人体动脉节段中,β1亚基谷胱甘肽加合物在基线时就存在,并在暴露于Ang II后增加。在VSMC中,Ang II诱导的谷胱甘肽化与钠钾ATP酶活性的显著降低有关,这种作用被NADPH氧化酶抑制肽tat-gp91ds消除。在主动脉节段中,Ang II诱导的谷胱甘肽化与钾诱导的血管舒张减少有关,钾诱导的血管舒张是泵活性的有效指标。VSMC和血管环预先与已知可促进β1亚基去谷胱甘肽化的重组FXYD3蛋白孵育后,Ang II诱导的钠钾ATP酶氧化抑制和钾诱导舒张的减少得以逆转。在小鼠模型中,敲除FXYD1显著降低了钾诱导的舒张。卡托普利(8 mg/kg/天,共7天)在体内减弱Ang II信号,降低兔主动脉中层超氧化物敏感的DHE水平,减少β1亚基谷胱甘肽化,并增强钾诱导的血管舒张。Ang II通过NADPH氧化酶依赖性的泵β1亚基谷胱甘肽化抑制VSMC中的钠钾泵,这一新发现的信号通路可能导致血管张力改变。FXYD蛋白减少钠钾泵的氧化抑制,可能在氧化应激条件下的脉管系统中发挥重要的保护作用。

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