Institute of Physiology and Zurich Center for Integrative Human Physiology. Univ. of Zurich, Winterthurerstrasse 190, 8057 Zurich, Switzerland.
Am J Physiol Renal Physiol. 2014 Apr 15;306(8):F833-43. doi: 10.1152/ajprenal.00133.2013. Epub 2014 Feb 19.
The proximal renal epithelia express three different Na-dependent inorganic phosphate (Pi) cotransporters: NaPi-IIa/SLC34A1, NaPi-IIc/SLC34A3, and PiT2/SLC20A2. Constitutive mouse knockout models of NaPi-IIa and NaPi-IIc suggested that NaPi-IIa mediates the bulk of renal reabsorption of Pi whereas the contribution of NaPi-IIc to this process is minor and probably restricted to young mice. However, many reports indicate that mutations of NaPi-IIc in humans lead to hereditary hypophosphatemic rickets with hypercalciuria (HHRH). Here, we report the generation of a kidney-specific and inducible NaPi-IIc-deficient mouse model based on the loxP-Cre system. We found that the specific removal of the cotransporter from the kidneys of young mice does not impair the capacity of the renal epithelia to transport Pi. Moreover, the levels of Pi in plasma and urine as well as the circulating levels of parathyroid hormone, FGF-23, and vitamin D3 remained unchanged. These findings are in agreement with the data obtained with the constitutive knockout model and suggest that, under steady-state conditions of normal dietary Pi, NaPi-IIc is not an essential Na-Pi cotransporter in murine kidneys. However, and unlike the constitutive mutants, the kidney-specific depletion of NaPi-IIc does not result in alteration of the homeostasis of calcium. This suggests that the calcium-related phenotype observed in constitutive knockout mice may not be related to inactivation of the cotransporter in kidney.
近端肾上皮表达三种不同的 Na 依赖性无机磷酸盐 (Pi) 共转运蛋白:NaPi-IIa/SLC34A1、NaPi-IIc/SLC34A3 和 PiT2/SLC20A2。NaPi-IIa 和 NaPi-IIc 的组成型小鼠敲除模型表明,NaPi-IIa 介导了 Pi 在肾脏中的大部分重吸收,而 NaPi-IIc 对该过程的贡献较小,可能仅限于幼鼠。然而,许多报道表明,人类 NaPi-IIc 的突变导致遗传性低磷血症性佝偻病伴高钙尿症 (HHRH)。在这里,我们报告了基于 loxP-Cre 系统的肾脏特异性和诱导型 NaPi-IIc 缺陷型小鼠模型的产生。我们发现,年轻小鼠肾脏中转运蛋白的特异性缺失不会损害肾脏上皮细胞转运 Pi 的能力。此外,血浆和尿液中的 Pi 水平以及甲状旁腺激素、FGF-23 和维生素 D3 的循环水平保持不变。这些发现与组成型敲除模型获得的数据一致,表明在正常饮食 Pi 的稳态条件下,NaPi-IIc 不是小鼠肾脏中必需的 Na-Pi 共转运蛋白。然而,与组成型突变体不同的是,NaPi-IIc 的肾脏特异性耗竭不会导致钙稳态的改变。这表明在组成型敲除小鼠中观察到的钙相关表型可能与肾脏中转运蛋白失活无关。