首页> 外文期刊>Journal of cell biology >Transport ATPase cytochemistry: ultrastructural localization of potassium-dependent and potassium-independent phosphatase activities in rat kidney cortex.
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Transport ATPase cytochemistry: ultrastructural localization of potassium-dependent and potassium-independent phosphatase activities in rat kidney cortex.

机译:运输ATPase细胞化学:大鼠肾皮质中钾依赖性和非钾依赖性磷酸酶活性的超微结构定位。

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A cytochemical method for the light and electron microscope localization of the K- and Mg-dependent phosphatase component of the Na-K-ATPase complex was applied to rat kidney cortex, utilizing p-nitrophenylphosphate (NPP) as substrate. Localization of K-N-ATPase activity in kidneys fixed by perfusion with 1% paraformaldehyde -0.25% glutaraldehyde demonstrated that distal tubules are the major cortical site for this sodium transport enzyme. Cortical collecting tubules were moderately reactive, whereas activity in proximal tubules was resolved only after short fixation times and long incubations. In all cases, K-NPPase activity was restricted to the cytoplasmic side of the basolateral plasma membranes, which are characterized in these neplron segments by elaborate folding of the cell surface. Although the rat K-NPPase appeared almost completely insensitive to ouabain with this cytochemical medium, parallel studies with the more glycoside-sensitive rabbit kidney indicated that K-NPPase activity in these nephron segments is sensitive to this inhibitor. In addition to K-NPPase, nonspecific alkaline phosphatase also hydrolyzed NPP. The latter could be differentiated cytochemically from the specific phosphatase, since alkaline phosphatase was K-independent, insensitive to ouabain, and specifically inhibited by cysteine. Unlike K-NPPPase, alkaline phosphatase was localized primarily to the extracellular side of the microvillar border of proximal tubules. A small amount of cysteine-sensitive activity was resolved along peritubular surfaces of proximal tubules. Distal tubules were unreactive. In comparative studies, Mg-ATPase activity was localized along the extracellular side of the luminal and basolateral surfaces of proximal and distal tubules and the basolateral membranes of collecting tubules.
机译:利用对硝基苯基磷酸酯(NPP)作为底物,将细胞化学方法用于光和电子显微镜对Na-K-ATPase复合物的K-和Mg依赖性磷酸酶成分进行定位,并将其应用于大鼠肾皮质。通过用1%多聚甲醛-0.25%戊二醛灌注固定的肾脏中K-N-ATPase活性的定位表明,远端小管是该钠转运酶的主要皮质位点。皮质收集小管反应中等,而近端小管中的活动只有在固定时间短和孵育时间长后才能解决。在所有情况下,K-NPPase的活性都局限于基底外侧质膜的细胞质侧,其特征是在这些神经元片段中,细胞表面经过精心折叠。尽管大鼠K-NPPase在这种细胞化学培养基中对哇巴因几乎完全不敏感,但对糖苷敏感度更高的兔肾脏的平行研究表明,在这些肾单位中的K-NPPase活性对此抑制剂敏感。除K-NPPase外,非特异性碱性磷酸酶也水解NPP。后者可以在细胞化学上与特定的磷酸酶区分开,因为碱性磷酸酶不依赖钾,对哇巴因不敏感,并被半胱氨酸特异性抑制。与K-NPPPase不同,碱性磷酸酶主要定位在近端小管微静脉边界的细胞外侧。沿近端小管的小管周表面分辨出少量的半胱氨酸敏感活性。远端小管无反应。在比较研究中,Mg-ATPase活性沿近端和远端小管的腔外和基底外表面以及收集小管的基底外膜定位在细胞外。

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