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首页> 外文期刊>Acta physiologica >Mechanisms of hypotonic inhibition of the sodium, proton exchanger type 1 (NHE1) in a biliary epithelial cell line (Mz-Cha-1).
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Mechanisms of hypotonic inhibition of the sodium, proton exchanger type 1 (NHE1) in a biliary epithelial cell line (Mz-Cha-1).

机译:低渗抑制胆管上皮细胞系(Mz-Cha-1)中钠,质子交换器1型(NHE1)的机制。

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摘要

AIM: To elucidate the cellular events that results in inhibition of Na(+), H(+) exchanger type 1 (NHE1) by hypotonicity. METHODS: Intracellular pH (pH(i)) was measured in biliary epithelial cells, with the pH-sensitive fluorochrome 2',7'-bis-(carboxyethyl)-5(6)-carboxyfluorescein (BCECF) using a spectrophotometer. Regulatory volume decrease (RVD) was analysed from confocal images. Changes in NHE1 membrane content were visualized by confocal laser scanning microscopy after transfection of Mz-Cha-1 cells with a NHE1-cMyc fusion protein. RESULTS: In Mz-Cha-1 cells hypotonicity (-80 mmol L(-1) NaCl) inhibited endogenous Na(+), H(+) exchange. Tyrosine and serine kinase inhibitors were incapable to prevent inhibition. As several signalling pathways influence Na(+), H(+) exchange, we tested the effect of the Ca(++), Calmodulin, protein kinase C or the cAMP, protein kinase A system on inhibition of Na(+), H(+) exchange by hypotonic challenge, but neither system was involved. In contrast, cytoskeleton did influence the effect of hypotonicity. Inhibition of microtubule polymerization by colchicine prevented inhibition of NHE1, and also restored Na(+), H(+) exchange kinetics. Specific inhibition of Src kinases with PP2, attenuated pH(i) recovery rate from 1.93 +/- 0.16 pH units min(-1) (normotonic environment) to 1.02 +/- 0.50 pH units min(-1) (hypotonic environment). Membrane staining of NHE1-cMyc fusion protein was maintained after hypotonic exposure in colchicine pre-treated cells as was RVD. Microfilament inhibition by cytochalasin preserved NHE1 activity. Inhibition of phosphatidylinositol-3'-kinase was unable to restore Na(+), H(+) exchange activity. CONCLUSION: We conclude that regulation of Na(+), H(+) exchange during RVD is mediated by cytoskeletal elements. This receptor independent pathway is regulated by Src.
机译:目的:阐明低渗性导致抑制Na(+),H(+)1型交换子(NHE1)的细胞事件。方法:使用分光光度计,使用pH敏感的荧光染料2',7'-双-(羧乙基)-5(6)-羧基荧光素(BCECF)测量胆道上皮细胞的细胞内pH(pH(i))。从共聚焦图像分析调节体积减少(RVD)。用NHE1-cMyc融合蛋白转染Mz-Cha-1细胞后,通过共聚焦激光扫描显微镜观察NHE1膜含量的变化。结果:在Mz-Cha-1细胞中低渗(-80 mmol L(-1)NaCl)抑制内源性Na(+),H(+)交换。酪氨酸和丝氨酸激酶抑制剂不能阻止其抑制作用。由于几个信号通路影响Na(+),H(+)交换,我们测试了Ca(++),钙调蛋白,蛋白激酶C或cAMP,蛋白激酶A系统对Na(+),H的抑制作用(+)通过低渗挑战进行交换,但没有涉及任何系统。相反,细胞骨架确实影响低渗作用。秋水仙碱对微管聚合的抑制作用阻止了NHE1的抑制作用,并且还恢复了Na(+),H(+)交换动力学。 PP2对Src激酶的特异性抑制,使pH(i)的回收率从1.93 +/- 0.16 pH单位min(-1)(降分子环境)减至1.02 +/- 0.50 pH单位min(-1)(低渗环境)。在秋水仙碱预处理的细胞中进行低渗暴露后,与RVD一样,维持NHE1-cMyc融合蛋白的膜染色。细胞松弛素对微丝的抑制保留了NHE1的活性。磷脂酰肌醇3'激酶的抑制无法恢复Na(+),H(+)交换活动。结论:我们得出结论,RVD期间Na(+),H(+)交换的调控是由细胞骨架元素介导的。该受体独立途径受Src调节。

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