尿激酶型纤溶酶原激活物缺乏时上皮钠通道的调节
Regulation of epithelial sodium channels in urokinase plasminogen activator deficiency.
作者信息
Chen Zaixing, Zhao Runzhen, Zhao Meimi, Liang Xinrong, Bhattarai Deepa, Dhiman Rohan, Shetty Sreerama, Idell Steven, Ji Hong-Long
机构信息
Department of Cellular and Molecular Biology, The University of Texas Health Science Center at Tyler, Tyler, Texas; School of Pharmacy, China Medical University, Liaoning Shenyang, China.
Department of Cellular and Molecular Biology, The University of Texas Health Science Center at Tyler, Tyler, Texas;
出版信息
Am J Physiol Lung Cell Mol Physiol. 2014 Oct 15;307(8):L609-17. doi: 10.1152/ajplung.00126.2014. Epub 2014 Aug 29.
Epithelial sodium channels (ENaC) govern transepithelial salt and fluid homeostasis. ENaC contributes to polarization, apoptosis, epithelial-mesenchymal transformation, etc. Fibrinolytic proteases play a crucial role in virtually all of these processes and are elaborated by the airway epithelium. We hypothesized that urokinase-like plasminogen activator (uPA) regulates ENaC function in airway epithelial cells and tested that possibility in primary murine tracheal epithelial cells (MTE). Both basal and cAMP-activated Na(+) flow through ENaC were significantly reduced in monolayers of uPA-deficient cells. The reduction in ENaC activity was further confirmed in basolateral membrane-permeabilized cells. A decrease in the Na(+)-K(+)-ATPase activity in the basolateral membrane could contribute to the attenuation of ENaC function in intact monolayer cells. Dysfunctional fluid resolution was seen in uPA-disrupted cells. Administration of uPA and plasmin partially restores ENaC activity and fluid reabsorption by MTEs. ERK1/2, but not Akt, phosphorylation was observed in the cells and lungs of uPA-deficient mice. On the other hand, cleavage of γ ENaC is significantly depressed in the lungs of uPA knockout mice vs. those of wild-type controls. Expression of caspase 8, however, did not differ between wild-type and uPA(-/-) mice. In addition, uPA deficiency did not alter transepithelial resistance. Taken together, the mechanisms for the regulation of ENaC by uPA in MTEs include augmentation of Na(+)-K(+)-ATPase, proteolysis, and restriction of ERK1/2 phosphorylation. We demonstrate for the first time that ENaC may serve as a downstream signaling target by which uPA controls the biophysical profiles of airway fluid and epithelial function.
上皮钠通道(ENaC)调控跨上皮盐和液体的稳态。ENaC参与极化、细胞凋亡、上皮-间质转化等过程。纤溶蛋白酶在几乎所有这些过程中都起着关键作用,且由气道上皮细胞产生。我们推测尿激酶型纤溶酶原激活物(uPA)调节气道上皮细胞中的ENaC功能,并在原代小鼠气管上皮细胞(MTE)中验证了这一可能性。在uPA缺陷细胞单层中,通过ENaC的基础和cAMP激活的Na⁺流均显著降低。在基底外侧膜通透的细胞中进一步证实了ENaC活性的降低。基底外侧膜中Na⁺-K⁺-ATP酶活性的降低可能导致完整单层细胞中ENaC功能的减弱。在uPA破坏的细胞中可见液体清除功能障碍。给予uPA和纤溶酶可部分恢复MTE的ENaC活性和液体重吸收。在uPA缺陷小鼠的细胞和肺中观察到ERK1/2而非Akt的磷酸化。另一方面,与野生型对照小鼠相比,uPA基因敲除小鼠肺中γENaC的裂解显著降低。然而,野生型和uPA(-/-)小鼠之间caspase 8的表达没有差异。此外,uPA缺乏并未改变跨上皮电阻。综上所述,uPA在MTE中调节ENaC的机制包括增强Na⁺-K⁺-ATP酶活性、蛋白水解作用以及限制ERK1/2磷酸化。我们首次证明ENaC可能作为下游信号靶点,通过它uPA控制气道液体的生物物理特性和上皮功能。
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