Good David W, George Thampi, Watts Bruns A
4.200 John Sealy Annex, The University of Texas Medical Branch, 301 University Blvd., Galveston, TX 77555-0562, USA.
Am J Physiol Cell Physiol. 2006 Mar;290(3):C757-63. doi: 10.1152/ajpcell.00391.2005. Epub 2005 Oct 26.
The relevance of nongenomic pathways to regulation of epithelial function by aldosterone is poorly understood. Recently, we demonstrated that aldosterone inhibits transepithelial HCO(3)(-) absorption in the renal medullary thick ascending limb (MTAL) through a nongenomic pathway. Here, we examined the transport mechanism(s) responsible for this regulation, focusing on Na(+)/H(+) exchangers (NHE). In the MTAL, apical NHE3 mediates H(+) secretion necessary for HCO(3)(-) absorption; basolateral NHE1 influences HCO(3)(-) absorption by regulating apical NHE3 activity. In microperfused rat MTALs, the addition of 1 nM aldosterone rapidly decreased HCO(3)(-) absorption by 30%. This inhibition was unaffected by three maneuvers that inhibit basolateral Na(+)/H(+) exchange and was preserved in MTALs from NHE1 knockout mice, ruling out the involvement of NHE1. In contrast, exposure to aldosterone for 15 min caused a 30% decrease in apical Na(+)/H(+) exchange activity over the intracellular pH range from 6.5 to 7.7, due to a decrease in V(max). Inhibition of HCO(3)(-) absorption by aldosterone was not affected by 0.1 mM lumen Zn(2+) or 1 mM lumen DIDS, arguing against the involvement of an apical H(+) conductance or apical K(+)-HCO(3)(-) cotransport. These results demonstrate that aldosterone inhibits HCO(3)(-) absorption in the MTAL through inhibition of apical NHE3, and identify NHE3 as a target for nongenomic regulation by aldosterone. Aldosterone may influence a broad range of epithelial transport functions important for extracellular fluid volume and acid-base homeostasis through direct regulation of this exchanger.
醛固酮通过非基因组途径对上皮功能调节的相关性目前了解甚少。最近,我们证明醛固酮通过非基因组途径抑制肾髓质厚升支(MTAL)中的跨上皮HCO(3)(-)吸收。在此,我们研究了负责这种调节的转运机制,重点关注Na(+)/H(+)交换体(NHE)。在MTAL中,顶端NHE3介导HCO(3)(-)吸收所需的H(+)分泌;基底外侧NHE1通过调节顶端NHE3活性影响HCO(3)(-)吸收。在微灌流的大鼠MTAL中,添加1 nM醛固酮可使HCO(3)(-)吸收迅速降低30%。这种抑制不受三种抑制基底外侧Na(+)/H(+)交换的操作的影响,并且在NHE1基因敲除小鼠的MTAL中仍然存在,排除了NHE1的参与。相反,在细胞内pH范围为6.5至7.7时,暴露于醛固酮15分钟会导致顶端Na(+)/H(+)交换活性降低30%,这是由于V(max)降低所致。醛固酮对HCO(3)(-)吸收的抑制不受0.1 mM管腔Zn(2+)或1 mM管腔DIDS的影响,这表明顶端H(+)电导或顶端K(+)-HCO(3)(-)共转运不参与其中。这些结果表明醛固酮通过抑制顶端NHE3来抑制MTAL中的HCO(3)(-)吸收,并确定NHE3是醛固酮非基因组调节的靶点。醛固酮可能通过直接调节这种交换体来影响对细胞外液容量和酸碱平衡至关重要的广泛上皮转运功能。