Dietary choline deficiency alters global and gene‐specific DNA methylation in the developing hippocampus of mouse fetal brains

Mihai D. Niculescu, Corneliu N. Craciunescu, Steven H. Zeisel

The FASEB Journal · 2006 · 329 citations · 26 references

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TL;DR

Choline availability during fetal development influences hippocampal maturation and lifelong memory, with deficiency impairing neuronal precursor proliferation, migration, and altering cell‑cycle regulator and differentiation protein levels. Pregnant C57BL/6 mice received choline‑deficient or normal diets from embryonic days 12–17, after which fetal hippocampal cells from ventricular/subventricular zones and dentate gyrus germinal zones were isolated by laser‑capture microdissection for analysis. Choline deficiency increased Kap and p15(INK4b) proteins in ventricular/subventricular zones, raised calretinin in the dentate gyrus, reduced global DNA methylation in these regions, and decreased Cdkn3 methylation correlating with higher Kap expression, indicating methylation‑mediated regulation of a cell‑cycle regulator that may alter brain development.

Abstract

The availability of choline during critical periods of fetal development alters hippocampal development and affects memory function throughout life. Choline deficiency during fetal development reduces proliferation and migration of neuronal precursor cells in the mouse fetal hippocampus and these changes are associated with modifications in the protein levels of some cell cycle regulators and early differentiation markers. We fed C57 BL/6 mouse dams diets deficient or normal in choline content from days 12 to 17 of pregnancy, and then collected fetal brains on embryonic day 17. Using laser-capture micro-dissection we harvested cells from the ventricular and subventricular zones of Ammon's horn and from the prime germinal zone of the dentate gyrus (hippocampus). In the ventricular and subventricular zones from the choline-deficient group, we observed increased protein levels for kinase-associated phosphatase (Kap) and for p15(INK4b) (two cell cycle inhibitors). In the dentate gyrus, we observed increased levels of calretinin (an early marker of neuronal differentiation). In fetal brain from mothers fed a choline-deficient diet, DNA global methylation was decreased in the ventricular and subventricular zones of Ammon's horn. We also observed decreased gene-specific DNA methylation of the gene (Cdkn3) that encodes for Kap, correlating with increased expression of this protein. This was not the case for p15(INK4b) or calretinin (Cdkn2b and Calb2, respectively). These data suggest that choline deficiency-induced changes in gene methylation could mediate the expression of a cell cycle regulator and thereby alter brain development.

References

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