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首页> 外文期刊>American Journal of Physiology >Inhibition by cytoplasmic nucleotides of a new cation channel in freshly isolated human and rat type II pneumocytes.
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Inhibition by cytoplasmic nucleotides of a new cation channel in freshly isolated human and rat type II pneumocytes.

机译:在新鲜分离的人和大鼠II型肺细胞中被新阳离子通道的胞质核苷酸抑制。

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Here we report a 26- to 29-pS cation channel abundantly expressed in freshly isolated and primary cultured type II cells from rat or healthy human lungs. The channel was never spontaneously active in cell-attached patches but could be activated by cell permeabilization with beta-escin. Excised patch-clamp experiments revealed activation by Ca(2+) concentrations at the cytoplasmic side in the micromolar range. High concentrations of amiloride (>10 microM) at the extracellular side did not inhibit. The channel was equally permeable for K(+) and Na(+) but was essentially impermeable for Cl(-), Ca(2+), and Mg(2+). It was blocked by adenosine nucleotides (cytoplasmic side) with the following order of potency: AMP approximately ADP (EC(50) ATP adenosine cyclic AMP. The blocking effect of ATP was reproduced by its nonhydrolyzable analogs AMPPNP or ATP-gamma-S. GTP did not inhibit. Cd(2+) blocked the channel with an EC(50) approximately 55.5 nM. We conclude that type II cells express a Ca(2+)-dependent, nucleotide-inhibited, nonselective, and Ca(2+)-impermeable cation channel (NSC(Ca/AMP)) with tonically suppressed activity. RT-PCR confirmed expression of TRPM4b, a channel with functional characteristics almost identical with NSC(Ca/AMP). Potential physiological roles are discussed.
机译:在这里我们报告26-29 pS阳离子通道在大鼠或健康人肺的新鲜分离和原代培养的II型细胞中大量表达。该通道在附着细胞的贴片中从未自发激活,但可以通过β-七叶皂苷的细胞通透性激活。切除的膜片钳实验揭示了由Ca(2+)浓度在微摩尔范围内的细胞质侧激活。细胞外一侧的高浓度阿米洛利(> 10 microM)没有被抑制。该通道对K(+)和Na(+)具有相同的渗透性,但对Cl(-),Ca(2+)和Mg(2+)基本不渗透。它被腺苷核苷酸(胞质侧)阻断,其效力顺序如下:AMP约ADP(EC(50) ATP 腺苷环状AMP。 ATP的阻断作用由其不可水解的类似物AMPPNP或ATP-γ-S再现。 GTP没有抑制。 Cd(2+)用约55.5 nM的EC(50)阻塞了通道。我们得出的结论是,II型细胞表达具有音调抑制活性的Ca(2+)依赖性,核苷酸抑制,非选择性和Ca(2+)不可渗透阳离子通道(NSC(Ca / AMP))。 RT-PCR证实了TRPM4b的表达,该通道具有与NSC(Ca / AMP)几乎相同的功能特性。潜在的生理作用进行了讨论。

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