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.