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首页> 外文期刊>American Journal of Physiology >pH-responsive, gluconeogenic renal epithelial LLC-PK1-FBPase+cells: A versatile in vitro model to study renal proximal tubule metabolism and function
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pH-responsive, gluconeogenic renal epithelial LLC-PK1-FBPase+cells: A versatile in vitro model to study renal proximal tubule metabolism and function

机译:pH-响应,葡糖来肾上皮LLC-PK1-FBP酶+细胞:多功能体外模型,用于研究肾近端小管代谢和功能

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摘要

Ammoniagenesis and gluconeogenesis are prominent metabolic features of the renal proximal convoluted tubule that contribute to maintenance of systemic acid-base homeostasis. Molecular analysis of the mechanisms that mediate the coordinate regulation of the two pathways required development of a cell line that recapitulates these features in vitro. By adapting porcine renal epithelial LLC-PK1 cells to essentially glucose-free medium, a gluconeogenic subline, termed LLC-PK1-FBPase+ cells, was isolated. LLC-PK1-FBPase+ cells grow in the absence of hexoses and pentoses and exhibit enhanced oxidative metabolism and increased levels of phosphate-dependent glutaminase. The cells also express significant levels of the key gluconeogenic enzymes, fructose-1,6-bisphosphatase (FBPase) and phosphoenolpyruvate carboxykinase (PEPCK). Thus the altered phenotype of LLC-PK1-FBPase+ cells is pleiotropic. Most importantly, when transferred to medium that mimics a pronounced metabolic acidosis (9 mM HCO3 -, pH 6.9), the LLC-PK1-FBPase+ cells exhibit a gradual increase in NH4 + ion production, accompanied by increases in glutaminase and cytosolic PEPCK mRNA levels and proteins. Therefore, the LLC-PK1-FBPase+ cells retained in culture many of the metabolic pathways and pH-responsive adaptations characteristic of renal proximal tubules. The molecular mechanisms that mediate enhanced expression of the glutaminase and PEPCK in LLC-PK1-FBPase+ cells have been extensively reviewed. The present review describes novel properties of this unique cell line and summarizes the molecular mechanisms that have been defined more recently using LLC-PK1-FBPase+ cells to model the renal proximal tubule. It also identifies future studies that could be performed using these cells.
机译:氨基胺和葡糖生成是肾近端复合小管的突出代谢特征,有助于维持全身酸碱稳态。介导两种途径坐标调节的机制的分子分析需要在体外​​培养这些特征的细胞系。通过将猪肾上皮LLC-PK1细胞适应基本上无葡萄糖的培养基,分离出一种葡萄糖原血管发动的LLC-PK1-FBP酶+细胞。 LLC-PK1-FBPase +细胞在没有己糖的情况下生长,并且表现出增强的氧化代谢和磷酸依赖性谷氨酰胺酶的增加。细胞还表达了关键葡糖来酶,果糖-1,6-双磷酸酶(FBP酶)和磷酸丙酮酸羧基酶(PEPCK)的显着水平。因此,LLC-PK1-FBPase +细胞的改变表型是脂肪酸的。最重要的是,当转移到模拟明显代谢酸中毒(9mM HCO3 - ,pH6.9)的培养基时,LLC-PK1-FBP酶+细胞表现出NH4 +离子产生的逐渐增加,伴随着谷氨酰胺酶和细胞溶质PEPCK mRNA水平的增加和蛋白质。因此,LLC-PK1-FBP酶+细胞保留在培养中的许多代谢途径和肾近端小管的pH-响应性调整。广泛地审查了在LLC-PK1-FBP酶+细胞中增强谷氨酰胺酶和PEPCK的增强表达的分子机制。本综述描述了这种独特细胞系的新颖性,并总结了使用LLC-PK1-FBPase +细胞更新的分子机制,以模拟肾近管。它还识别未来的研究可以使用这些细胞进行。

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