Acute high folic acid treatment in SH-SY5Y cells with and without MTHFR function leads to gene expression changes in epigenetic modifying enzymes, changes in epigenetic marks, and changes in dendritic spine densities

PLoS One. 2021 Jan 7;16(1):e0245005. doi: 10.1371/journal.pone.0245005. eCollection 2021.

Abstract

Epigenetics are known to be involved in various disorders, including neurobiological disorders like autism. Dietary factors such as folic acid can affect epigenetic marks using methylenetetrahydrofolate reductase (MTHFR) to metabolize folic acid to a one-carbon methyl group. As MTHFR mutations are frequent, it is curious as to whether excess folic acid, with or without functioning MTHFR, could affect gene expression, epigenetics, and neuromorphology. Here, we investigated gene expression and activity of epigenetic modifying enzymes, genome-wide DNA methylation, histone 3 modifications, and dendritic spine densities in SH-SY5Y cells with or without a knockdown of MTHFR and with or without an excess of folic acid. We found alterations to gene expression of epigenetic modifying enzymes, including those associated with disorders like autism. Grouping the epigenetic modifying enzymes by function indicated that gene expression was widely affected for genes that code for enzymes affecting DNA methylation, histone acetylation, histone methylation, histone phosphorylation, and histone ubiquitination when excess folic acid treatment occurred with or without the knockdown of MTHFR. MTHFR was significantly reduced upon excess folic acid treatment whether MTHFR was knocked-down or not. Further, methyl-CpG binding protein 2 expression was significantly decreased with excess folic acid treatment with and without proper MTHFR expression. Global DNA methylation decreased due to the knockdown alone while global hydroxymethylated DNA increased due to the knockdown alone. TET2 expression significantly increased with the MTHFR knockdown alone. Excess folic acid alone induced a decrease in TET3 expression. Excess folic acid induced an increase in dendritic spines without the MTHFR knockdown, but folic acid induced a decrease in dendritic spines when MTHFR was knocked-down. The knockdown alone also increased the dendritic spines significantly. Histone 3 acetylation at lysine 18 was significantly increased when excess folic acid was applied to cells with the MTHFR knockdown, as was histone 3 phosphorylation at serine 10. Broadly, our results indicate that excess folic acid, even with functioning MTHFR, could have detrimental effects on cells.

MeSH terms

  • DNA Methylation*
  • Dendritic Spines / metabolism
  • Dendritic Spines / pathology*
  • Epigenesis, Genetic*
  • Folic Acid / pharmacology*
  • Gene Expression Regulation, Neoplastic / drug effects*
  • Histone Code
  • Humans
  • Methylenetetrahydrofolate Reductase (NADPH2) / genetics
  • Methylenetetrahydrofolate Reductase (NADPH2) / metabolism*
  • Neuroblastoma / genetics
  • Neuroblastoma / metabolism
  • Neuroblastoma / pathology*
  • Tumor Cells, Cultured
  • Vitamin B Complex / pharmacology

Substances

  • Vitamin B Complex
  • Folic Acid
  • MTHFR protein, human
  • Methylenetetrahydrofolate Reductase (NADPH2)

Grants and funding

Magellan Scholar Grant (Undergraduate Research Office/Vice President for Research at University of South Carolina; https://www.sc.edu/about/offices_and_divisions/undergraduate_research/index.php) to R. S. Magellan Mentor Grant (Office of Sponsored Awards and Research Support at the University of South Carolina Upstate; https://www.uscupstate.edu/research/sponsored-awards-and-research-support/contact-sars/) to K. S. Research Assistantship (Office of Sponsored Awards and Research Support at the University of South Carolina Upstate; https://www.uscupstate.edu/research/sponsored-awards-and-research-support/contact-sars/) to D. C. and K. S. Lab funds in the Natural Sciences and Engineering Division at the University of South Carolina Upstate (https://www.uscupstate.edu/) to K.S.