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Culturing Primary Rat Inner Medullary Collecting Duct Cells
Published on: June 21, 2013
Prenatal programming of rat cortical collecting tubule sodium transport
Chih-Jen Cheng1, German Lozano, Michel Baum
1Dept. of Pediatrics, U.T. Southwestern Medical Center, 5323 Harry Hines Blvd., Dallas, TX 75390-9063, USA.
Insights
Maternal low-protein diet during pregnancy increases offspring’s epithelial sodium channel (ENaC) activity and sodium transport in the kidneys. This prenatal programming may contribute to adult hypertension risk.
Area of Science:
- Nephrology
- Developmental Biology
- Physiology
Background:
- Prenatal insults can program offspring for adult hypertension.
- Dietary protein restriction in pregnancy is linked to altered kidney development and function.
- Epithelial sodium channel (ENaC) plays a crucial role in sodium reabsorption in the kidney.
Purpose of the Study:
- To investigate the impact of maternal low-protein diet on epithelial sodium channel (ENaC) activity in adult offspring.
- To determine if prenatal protein restriction programs enhanced sodium transport in the cortical collecting duct.
Main Methods:
- Compared natriuretic response to benzamil in offspring of rats fed low-protein (6%) versus normal-protein (20%) diets during gestation.
- Utilized in vitro microperfusion of cortical collecting tubules from adult offspring.
- Measured sodium transport using ion-selective electrodes.
Main Results:
- Offspring of mothers on a low-protein diet exhibited a greater natriuretic response to benzamil, indicating increased in vivo ENaC activity.
- In vitro studies showed significantly higher net sodium flux in cortical collecting ducts from offspring of protein-restricted mothers.
- No differences were observed in water permeability.
Conclusions:
- Maternal low-protein diet during pregnancy directly programs enhanced sodium transport in the adult offspring's cortical collecting duct.
- This programming of ENaC-mediated sodium transport may be a mechanism linking prenatal nutrition to adult hypertension.
Abstract:
Prenatal insults have been shown to lead to elevated blood pressure in offspring when they are studied as adults. Prenatal administration of dexamethasone and dietary protein deprivation have demonstrated that there is an increase in transporter abundance for a number of nephron segments but not the subunits of the epithelial sodium channel (ENaC) in the cortical collecting duct. Recent studies have shown that aldosterone is elevated in offspring of protein-deprived mothers when studied as adults, but the physiological importance of the increase in serum aldosterone is unknown. As an indirect measure of ENaC activity, we compared the natriuretic response to benzamil in offspring of mothers who ate a low-protein diet (6%) with those who ate a normal diet (20%) for the last half of pregnancy. The natriuretic response to benzamil was greater in the 6% group (821.1 ± 161.0 μmol/24 h) compared with the 20% group (279.1 ± 137.0 μmol/24 h), consistent with greater ENaC activity in vivo (P < 0.05). In this study, we also directly studied cortical collecting tubule function from adult rats using in vitro microperfusion. There was no difference in basal or vasopressin-stimulated osmotic water permeability. However, while cortical collecting ducts of adult offspring whose mothers ate a 20% protein diet had no sodium transport (-1.9 ± 3.1 pmol·mm(-1)·min(-1)), the offspring of rats that ate a 6% protein diet during the last half of pregnancy had a net sodium flux of 10.7 ± 2.6 pmol·mm(-1)·min(-1) (P = 0.01) in tubules perfused in vitro. Sodium transport was measured using ion-selective electrodes, a novel technique allowing measurement of sodium in nanoliter quantities of fluid. Thus we directly demonstrate that there is prenatal programming of cortical collecting duct sodium transport.
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