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Effects of moderate global maternal nutrient reduction on fetal baboon renal mitochondrial gene expression at 0.9
Susana P Pereira1, Paulo J Oliveira2, Ludgero C Tavares3
1Center for Neuroscience and Cell Biology, University of Coimbra, Coimbra, Portugal; Department of Life Sciences, School of Sciences and Technology, University of Coimbra, Coimbra, Portugal; Center for Pregnancy and Newborn Research, University of Texas Health Science Center, San Antonio, Texas; and.
Insights
Maternal nutrient reduction impacts fetal kidney mitochondrial gene expression in a sex-specific manner. This may lead to decreased mitochondrial function and later-life renal dysfunction in offspring.
Area of Science:
- Developmental biology
- Renal physiology
- Mitochondrial biology
Background:
- Early life malnutrition can cause kidney structural changes, increasing the risk of later-life renal dysfunction.
- Intrauterine growth restriction is linked to altered nephron endowment and kidney function in offspring.
- Mitochondrial bioenergetics are crucial for kidney metabolism, growth, and overall function.
Purpose of the Study:
- To investigate the effects of moderate maternal nutrient reduction (MNR) on fetal kidney mitochondrial gene expression in nonhuman primates.
- To determine if MNR leads to intrauterine growth reduction and impacts renal mitochondrial pathways.
- To assess sex-specific differences in the fetal kidney's response to maternal malnutrition.
Main Methods:
- Nonhuman primates (baboons) were subjected to normal or 70% control diet (MNR) during pregnancy.
- Fetal kidneys were collected at 0.9 gestation for analysis.
- Mitochondrial gene expression was analyzed using PCR arrays, and protein levels were assessed via immunohistochemistry.
Main Results:
- MNR did not alter the fetal kidney weight-to-body weight ratio, despite overall smaller fetal size.
- Differential mRNA expression related to mitochondrial metabolism and dynamics was observed in a sex-specific manner.
- Female fetuses showed more significant alterations in gene expression (16 transcripts) compared to males (10 transcripts).
- A decrease in mitochondrial protein cytochrome c oxidase subunit VIc was noted in MNR-exposed fetuses.
Conclusions:
- Fetal renal mitochondrial energy metabolism gene expression is sensitive to maternal nutrition in a sex-dependent way.
- These nutritional impacts on mitochondrial pathways may contribute to reduced mitochondrial fitness.
- The observed changes suggest a potential mechanism linking early-life malnutrition to later-life renal dysfunction.
Abstract:
Early life malnutrition results in structural alterations in the kidney, predisposing offspring to later life renal dysfunction. Kidneys of adults who were growth restricted at birth have substantial variations in nephron endowment. Animal models have indicated renal structural and functional consequences in offspring exposed to suboptimal intrauterine nutrition. Mitochondrial bioenergetics play a key role in renal energy metabolism, growth, and function. We hypothesized that moderate maternal nutrient reduction (MNR) would adversely impact fetal renal mitochondrial expression in a well-established nonhuman primate model that produces intrauterine growth reduction at term. Female baboons were fed normal chow diet or 70% of control diet (MNR). Fetal kidneys were harvested at cesarean section at 0.9 gestation (165 days gestation). Human Mitochondrial Energy Metabolism and Human Mitochondria Pathway PCR Arrays were used to analyze mitochondrially relevant mRNA expression. In situ protein content was detected by immunohistochemistry. Despite the smaller overall size, the fetal kidney weight-to-body weight ratio was not affected. We demonstrated fetal sex-specific differential mRNA expression encoding mitochondrial metabolite transport and dynamics proteins. MNR-related differential gene expression was more evident in female fetuses, with 16 transcripts significantly altered, including 14 downregulated and 2 upregulated transcripts. MNR impacted 10 transcripts in male fetuses, with 7 downregulated and 3 upregulated transcripts. The alteration in mRNA levels was accompanied by a decrease in mitochondrial protein cytochrome c oxidase subunit VIc. In conclusion, transcripts encoding fetal renal mitochondrial energy metabolism proteins are nutrition sensitive in a sex-dependent manner. We speculate that these differences lead to decreased mitochondrial fitness that contributes to renal dysfunction in later life.
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