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Published on: June 6, 2025
Both high and low maternal salt intake in pregnancy alter kidney development in the offspring
Nadezda Koleganova1, Grzegorz Piecha, Eberhard Ritz
1Institute of Pathology, Univ. of Heidelberg, Germany. nad_ko@gmx.de
Insights
Maternal high or low salt intake during pregnancy reduces offspring kidney glomeruli number and increases later hypertension risk. This highlights critical impacts of prenatal nutrition on long-term health.
Area of Science:
- Nephrology
- Developmental Biology
- Cardiovascular Science
Background:
- Low glomerular number in humans is linked to adult hypertension and renal disease.
- Maternal diet during pregnancy can significantly influence offspring development and long-term health outcomes.
Purpose of the Study:
- To investigate how abnormal maternal dietary salt intake (high or low) during pregnancy affects offspring nephron number and blood pressure.
- To identify molecular mechanisms in kidney development altered by maternal sodium consumption.
Main Methods:
- Sprague-Dawley rats received low (0.07%), intermediate (0.51%), or high (3.0%) sodium diets during pregnancy and lactation.
- Offspring kidney structure and protein expression were assessed at specific postnatal ages.
- Offspring blood pressure was monitored via telemetry from 2 to 9 months of age.
Main Results:
- Offspring from dams on high- or low-sodium diets had significantly fewer glomeruli compared to the intermediate-sodium group.
- Male offspring exposed to extreme maternal sodium diets exhibited higher mean arterial blood pressure after 5 months.
- Prenatal high-salt diet increased amniotic fluid marinobufagenin and kidney sprouty-1 and glial cell-derived neurotrophic factor expression.
Conclusions:
- Both excessive high and low maternal sodium intake during pregnancy reduce final nephron number in offspring.
- These dietary modifications alter kidney protein expression, increasing the risk of developing hypertension later in life.
Abstract:
In humans, low glomerular numbers are related to hypertension, cardiovascular, and renal disease in adult life. The present study was designed 1) to explore whether above- or below-normal dietary salt intake during pregnancy influences nephron number and blood pressure in the offspring and 2) to identify potential mechanisms in kidney development modified by maternal sodium intake. Sprague-Dawley rats were fed low (0.07%)-, intermediate (0.51%)-, or high (3.0%)-sodium diets during pregnancy and lactation. The offspring were weaned at 4 wk and subsequently kept on a 0.51% sodium diet. The kidney structure was assessed at postnatal weeks 1 and 12 and the expression of proteins of interest at term and at week 1. Blood pressure was measured in male offspring by telemetry from postnatal month 2 to postnatal month 9. The numbers of glomeruli at weeks 1 and 12 were significantly lower and, in males, telemetrically measured mean arterial blood pressure after month 5 was higher in offspring of dams on a high- or low- compared with intermediate-sodium diet. A high-salt diet was paralleled by higher concentrations of marinobufagenin in the amniotic fluid and an increase in the expression of both sprouty-1 and glial cell-derived neutrophic factor in the offspring's kidney. The expression of FGF-10 was lower in offspring of dams on a low-sodium diet, and the expression of Pax-2 and FGF-2 was lower in offspring of dams on a high-sodium diet. Both excessively high and excessively low sodium intakes during pregnancy modify protein expression in offspring kidneys and reduce the final number of glomeruli, predisposing the risk of hypertension later in life.
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