Buffin-Meyer B, Verbavatz J M, Cheval L, Marsy S, Younes-Ibrahim M, Le Moal C, Doucet A
Laboratoire de Biologie Intégrée des Cellules Rénales, Service de Biologie Cellulaire, Centre d'Etudes de Saclay, Gif sur Yvette, France.
J Am Soc Nephrol. 1998 Apr;9(4):538-50. doi: 10.1681/ASN.V94538.
Because in outer medullary collecting ducts (OMCD) of K(+)-depleted rats, K+ secretion is abolished, whereas Na+, K(+)-ATPase, which energizes this secretion, is markedly stimulated, it has been proposed that Na+, K(+)-ATPase was mislocated to the apical cell membrane and energized K+ reabsorption. This hypothesis has been supported by paradoxical effects of ouabain in K(+)-depleted compared with normal rats. However, we have recently shown that ouabain inhibits not only Na+, K(+)-ATPase but also apical H+, K(+)-ATPase in the OMCD of K(+)-depleted rats. Therefore, this study was designed to evaluate whether previous observations were accounted for by Na+, K(+)-ATPase or by ouabain-sensitive H+, K(+)-ATPase. Na+, K(+)-ATPase was distinguished from H+, K(+)-ATPase by its insensitivity to Sch-28080. Results indicate that the hydrolytic and transport activities of Na+, K(+)-ATPase, the number of its functional units, and the expression of mRNA of its alpha 1 and beta 1 subunits were increased threefold or more in the OMCD of rats fed a K(+)-depleted diet for 2 wk. By immunofluorescence, Na+, K(+)-ATPase staining was strongly increased in K(+)-depleted rats but remained localized to the basolateral pole of OMCD principal cells. In conclusion, K+ depletion is associated with marked induction of functional Na+, K+ pumps at the basolateral pole of rat OMCD. Therefore, reduced K+ secretion might result from inhibition of apical K+ conductances and stimulation of basolateral K+ recycling. It is proposed that increased Na+, K(+)-ATPase participates in the increased Na+ reabsorption prevailing in collecting ducts of K(+)-depleted rats.
由于在低钾大鼠的外髓集合管(OMCD)中,钾分泌被消除,而为这种分泌提供能量的钠钾ATP酶却受到显著刺激,因此有人提出钠钾ATP酶错位到了顶端细胞膜并为钾重吸收提供能量。与正常大鼠相比,哇巴因在低钾大鼠中产生的矛盾效应支持了这一假说。然而,我们最近发现,哇巴因不仅抑制低钾大鼠OMCD中的钠钾ATP酶,还抑制顶端氢钾ATP酶。因此,本研究旨在评估先前的观察结果是由钠钾ATP酶还是由哇巴因敏感的氢钾ATP酶引起的。钠钾ATP酶因其对Sch-28080不敏感而与氢钾ATP酶区分开来。结果表明,在低钾饮食喂养2周的大鼠的OMCD中,钠钾ATP酶的水解和转运活性、其功能单位的数量以及其α1和β1亚基的mRNA表达增加了三倍或更多。通过免疫荧光法,低钾大鼠中钠钾ATP酶染色显著增加,但仍局限于OMCD主细胞的基底外侧极。总之,低钾与大鼠OMCD基底外侧极功能性钠钾泵的显著诱导有关。因此,钾分泌减少可能是由于顶端钾电导的抑制和基底外侧钾循环的刺激所致。有人提出,增加的钠钾ATP酶参与了低钾大鼠集合管中普遍存在的钠重吸收增加。