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Epithelial Sodium Channel-α Mediates the Protective Effect of the TNF-Derived TIP Peptide in Pneumolysin-Induced Endothelial Barrier Dysfunction

机译:上皮钠通道-α介导TNF衍生的尖端肽在肺炎蛋白诱导的内皮屏障功能障碍中的保护作用

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Background Streptococcus pneumoniae is a major etiologic agent of bacterial pneumonia. Autolysis and antibiotic-mediated lysis of pneumococci induce release of the pore-forming toxin, pneumolysin (PLY), their major virulence factor, which is a prominent cause of acute lung injury. PLY inhibits alveolar liquid clearance and severely compromises alveolar–capillary barrier function, leading to permeability edema associated with pneumonia. As a consequence, alveolar flooding occurs, which can precipitate lethal hypoxemia by impairing gas exchange. The α subunit of the epithelial sodium channel (ENaC) is crucial for promoting Na~(+)reabsorption across Na~(+)-transporting epithelia. However, it is not known if human lung microvascular endothelial cells (HL-MVEC) also express ENaC-α and whether this subunit is involved in the regulation of their barrier function. Methods The presence of α, β, and γ subunits of ENaC and protein phosphorylation status in HL-MVEC were assessed in western blotting. The role of ENaC-α in monolayer resistance of HL-MVEC was examined by depletion of this subunit by specific siRNA and by employing the TNF-derived TIP peptide, a specific activator that directly binds to ENaC-α. Results HL-MVEC express all three subunits of ENaC, as well as acid-sensing ion channel 1a (ASIC1a), which has the capacity to form hybrid non-selective cation channels with ENaC-α. Both TIP peptide, which specifically binds to ENaC-α, and the specific ASIC1a activator MitTx significantly strengthened barrier function in PLY-treated HL-MVEC. ENaC-α depletion significantly increased sensitivity to PLY-induced hyperpermeability and in addition, blunted the protective effect of both the TIP peptide and MitTx, indicating an important role for ENaC-α and for hybrid NSC channels in barrier function of HL-MVEC. TIP peptide blunted PLY-induced phosphorylation of both calmodulin-dependent kinase II (CaMKII) and of its substrate, the actin-binding protein filamin A (FLN-A), requiring the expression of both ENaC-α and ASIC1a. Since non-phosphorylated FLN-A promotes ENaC channel open probability and blunts stress fiber formation, modulation of this activity represents an attractive target for the protective actions of ENaC-α in both barrier function and liquid clearance. Conclusion Our results in cultured endothelial cells demonstrate a previously unrecognized role for ENaC-α in strengthening capillary barrier function that may apply to the human lung. Strategies aiming to activate endothelial NSC channels that contain ENaC-α should be further investigated as a novel approach to improve barrier function in the capillary endothelium during pneumonia.
机译:背景技术肺炎链球菌是细菌肺炎的主要病因试剂。肺炎球菌和抗生素介导的裂解裂解裂解孔形成毒素,肺炎素(PLY),其主要毒力因子,这是急性肺损伤的突出原因。 PLY抑制肺泡液间隙,严重损害肺泡 - 毛细管屏障功能,导致与肺炎相关的渗透性水肿。因此,发生肺泡泛滥,这可能通过损害气体交换来沉淀致死的低氧血症。上皮钠通道(ENAC)的α亚基对于促进Na〜(+) - 输送上皮细胞的Na〜(+)重吸收至关重要。然而,如果人肺微血管内皮细胞(HL-MVEC)也表达ENAC-α并不知道,该亚基是否参与其屏障功能的调节。方法评估HL-MVEC中ENAC和蛋白磷酸化状态的α,β和γ亚基的存在。通过特异性siRNA耗尽该亚基的耗尽来检查ENAC-α在单层电阻中的作用,并采用TNF衍生的尖端肽,与ENAC-α直接结合的特定活化剂。结果HL-MVEC表达了ENAC的所有三个亚基,以及酸感测离子通道1a(ASIC1a),其具有与ENAC-α形成混合非选择性阳离子通道的能力。两种尖肽,其特异性结合ENAC-α,以及特定的ASIC1A活化剂MITTX在层面处理的HL-MVEC中显着强化了阻挡功能。 ENAC-α耗竭显着提高了对底层诱导的高透析性的敏感性,并且易于垂直,尖肽和MITTX的保护作用,表明ENAC-α和HL-MVEC屏障功能中的混合NSC通道的重要作用。尖端肽钝化钙调蛋白依赖性激酶II(Camkii)和其基材的磷酸化磷酸化,肌动蛋白结合蛋白丝素A(FLN-A),需要表达ENAC-α和ASIC1A。由于非磷酸化的FLN-A促进ENAC通道开放概率和钝性应力纤维形成,因此该活性的调节代表了在屏障函数和液体间隙中ENAC-α的保护作用的吸引力。结论我们在培养的内皮细胞中的结果表明,在强化可能适用于人肺的毛细管屏障功能方面的ENAC-α的先前未被识别的作用。旨在激活包含ENAC-α的内皮NSC通道的策略应进一步研究作为改善肺炎毛细血管内皮中屏障功能的新方法。

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