The Effects of Maternal and Postnatal Dietary Methyl Nutrients on Epigenetic Changes that Lead to Non-Communicable Diseases in Adulthood

Int J Mol Sci. 2020 May 6;21(9):3290. doi: 10.3390/ijms21093290.

Abstract

The risk for non-communicable diseases in adulthood can be programmed by early nutrition. This programming is mediated by changes in expression of key genes in various metabolic pathways during development, which persist into adulthood. These developmental modifications of genes are due to epigenetic alterations in DNA methylation patterns. Recent studies have demonstrated that DNA methylation can be affected by maternal or early postnatal diets. Because methyl groups for methylation reactions come from methionine cycle nutrients (i.e., methionine, choline, betaine, folate), deficiency or supplementation of these methyl nutrients can directly change epigenetic regulation of genes permanently. Although many studies have described the early programming of adult diseases by maternal and infant nutrition, this review discusses studies that have associated early dietary methyl nutrient manipulation with direct effects on epigenetic patterns that could lead to chronic diseases in adulthood. The maternal supply of methyl nutrients during gestation and lactation can alter epigenetics, but programming effects vary depending on the timing of dietary intervention, the type of methyl nutrient manipulated, and the tissue responsible for the phenotype. Moreover, the postnatal manipulation of methyl nutrients can program epigenetics, but more research is needed on whether this approach can rescue maternally programmed offspring.

Keywords: DNA methylation; betaine; choline; developmental origins of adult disease; epigenetics; folate; maternal nutrition; methionine; methyl nutrients; perinatal nutrition.

Publication types

  • Review

MeSH terms

  • Animals
  • DNA Methylation*
  • Epigenesis, Genetic*
  • Female
  • Humans
  • Maternal Nutritional Physiological Phenomena
  • Methionine / analogs & derivatives
  • Methionine / metabolism*
  • Pregnancy
  • Prenatal Exposure Delayed Effects / genetics*

Substances

  • Methionine