Dept. of Molecular and Integrative Physiology, 3901 Rainbow Blvd., Kansas City, KS 66160.
Am J Physiol Renal Physiol. 2013 Sep 15;305(6):F797-812. doi: 10.1152/ajprenal.00248.2013. Epub 2013 Jun 12.
The classic role of the Na-K-ATPase is that of a primary active transporter that utilizes cell energy to establish and maintain transmembrane Na(+) and K(+) gradients to preserve cell osmotic stability, support cell excitability, and drive secondary active transport. Recent studies have revealed that Na-K-ATPase located within cholesterol-containing lipid rafts serves as a receptor for cardiotonic steroids, including ouabain. Traditionally, ouabain was viewed as a toxin produced only in plants, and it was used in relatively high concentrations to experimentally block the pumping action of the Na-K-ATPase. However, the new and unexpected role of the Na-K-ATPase as a signal transducer revealed a novel facet for ouabain in the regulation of a myriad of cell functions, including cell proliferation, hypertrophy, apoptosis, mobility, and metabolism. The seminal discovery that ouabain is endogenously produced in mammals and circulates in plasma has fueled the interest in this endogenous molecule as a potentially important hormone in normal physiology and disease. In this article, we review the role of the Na-K-ATPase as an ion transporter in the kidney, the experimental evidence for ouabain as a circulating hormone, the function of the Na-K-ATPase as a signal transducer that mediates ouabain's effects, and novel results for ouabain-induced Na-K-ATPase signaling in cystogenesis of autosomal dominant polycystic kidney disease.
钠钾 ATP 酶的经典作用是作为初级主动转运体,利用细胞能量建立和维持跨膜钠离子和钾离子梯度,以维持细胞渗透压稳定、支持细胞兴奋性,并驱动次级主动转运。最近的研究揭示了位于含有胆固醇的脂筏中的钠钾 ATP 酶可作为强心甾类化合物(包括哇巴因)的受体。传统上,哇巴因被视为仅在植物中产生的毒素,并且曾被用于相对较高的浓度来实验性地阻断钠钾 ATP 酶的泵作用。然而,钠钾 ATP 酶作为信号转导器的新的和意外作用揭示了哇巴因在调节多种细胞功能中的新作用,包括细胞增殖、肥大、凋亡、迁移和代谢。哇巴因在哺乳动物中内源性产生并在血浆中循环的开创性发现,激发了人们对这种内源性分子作为正常生理和疾病中潜在重要激素的兴趣。在本文中,我们回顾了钠钾 ATP 酶作为肾脏中离子转运体的作用、哇巴因作为循环激素的实验证据、钠钾 ATP 酶作为信号转导器介导哇巴因作用的功能,以及哇巴因诱导的常染色体显性多囊肾病囊肿发生中钠钾 ATP 酶信号转导的新结果。