Maternal obesity alters the placental transcriptome in a fetal sex-dependent manner

Amy Kelly1,2, Jeannie Chan3, Theresa L Powell2,4

  • 1Department of Surgery, University of Arizona College of Medicine, Tucson, AZ, United States.

Insights

Maternal obesity alters placental gene expression differently in male and female fetuses, impacting pathways like oxidative phosphorylation. These findings in mice and humans highlight sex-specific placental responses to maternal obesity.

Area of Science:

  • Reproductive biology
  • Developmental biology
  • Metabolic disease research

Background:

  • Maternal obesity increases offspring risk for obesity and metabolic disorders.
  • Placental function is implicated in mediating these risks, but mechanisms are unclear.
  • Sex-specific effects are increasingly recognized in developmental programming.

Purpose of the Study:

  • To investigate sex-specific placental gene expression changes in response to maternal obesity using a mouse model.
  • To identify molecular pathways affected by maternal obesity during pregnancy.
  • To compare findings with human placental data from pregnancies with large-for-gestational-age babies.

Main Methods:

  • Diet-induced obesity mouse model with fetal overgrowth.
  • RNA sequencing (RNA-seq) of placentas at embryonic day 18.5.
  • Protein expression analysis of oxidative phosphorylation and mitochondrial complexes.
  • Comparison with human placental data.

Main Results:

  • Maternal obesity caused significant, sex-specific changes in placental gene expression in mice.
  • In male placentas, oxidative phosphorylation pathways were downregulated, while others were upregulated.
  • In female placentas, pathways related to lipid metabolism and endocytosis were downregulated, with others upregulated; sex-specific protein changes mirrored some transcriptomic findings.

Conclusions:

  • Maternal obesity differentially regulates placental transcriptome in male and female fetuses.
  • Oxidative phosphorylation is a key pathway affected, particularly in male placentas.
  • Sex-specific placental responses may contribute to differential offspring risk for metabolic diseases.

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