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肾远端肾小管细胞系(A6)中的调节性容积减小。I. 钾离子和氯离子的作用。

Regulatory volume decrease in a renal distal tubular cell line (A6). I. Role of K+ and Cl-.

作者信息

De Smet P, Simaels J, Van Driessche W

机构信息

Laboratory of Physiology, K. U. Leuven, Campus Gasthuisberg, B-3000 Leuven, Belgium.

出版信息

Pflugers Arch. 1995 Oct;430(6):936-44. doi: 10.1007/BF01837407.

Abstract

Changes in volume of A6 epithelial cells were monitored by recording cell thickness (Tc). The response of Tc to a reduction of the basolateral osmolality from 260 to 140 mosmol/kg was recorded while transepithelial Na+ transport was inhibited by 20 microM amiloride. With Cl--containing bathing media, this osmotic challenge elicited a rapid rise in Tc followed by a regulatory volume decrease (RVD). Substitution of SO4(2-) or gluconate for Cl- markedly reduced the RVD, whereas cells completely maintained their ability to regulate their volume after replacing Cl- by NO3(-). A conductive pathway for Cl- excretion is suggested, which is insensitive to NPPB [5-nitro-2-(3-phenylpropylamino)benzoic acid], an inhibitor of some types of Cl- channels. Ba2+ (5 or 20 mM) reduced the RVD. A more pronounced inhibition of the RVD was obtained with 500 microM quinine, a potent blocker of volume-activated K+ channels. K+-induced depolarization of the basolateral membranes of tissues incubated with SO4(2-)-containing solutions completely abolished the RVD. Noise analysis in the presence of Ba2+ showed the activation of an apical K+ conductive pathway. These results demonstrate that cell volume regulation is controlled by processes involving Cl- and K+ excretion through conductive pathways.

摘要

通过记录细胞厚度(Tc)来监测A6上皮细胞的体积变化。在20μM氨氯吡脒抑制跨上皮Na⁺转运的情况下,记录Tc对基底外侧渗透压从260 mosmol/kg降至140 mosmol/kg的反应。在含Cl⁻的浴液中,这种渗透刺激引发了Tc的快速升高,随后是调节性容积减小(RVD)。用SO₄²⁻或葡萄糖酸盐替代Cl⁻显著降低了RVD,而在用NO₃⁻替代Cl⁻后,细胞完全保持了调节其容积的能力。提示存在一条对某些类型Cl⁻通道的抑制剂NPPB [5-硝基-2-(3-苯丙基氨基)苯甲酸]不敏感的Cl⁻排泄传导途径。Ba²⁺(5或20 mM)降低了RVD。用500μM奎宁(一种有效的容积激活K⁺通道阻滞剂)对RVD有更明显的抑制作用。用含SO₄²⁻的溶液孵育组织时,K⁺诱导的基底外侧膜去极化完全消除了RVD。在Ba²⁺存在下的噪声分析显示顶端K⁺传导途径被激活。这些结果表明,细胞容积调节受涉及通过传导途径排泄Cl⁻和K⁺的过程控制。

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