Beneficial effects of postnatal choline supplementation on long-Term neurocognitive deficit resulting from fetal-Neonatal iron deficiency

Behav Brain Res. 2018 Jan 15:336:40-43. doi: 10.1016/j.bbr.2017.07.043. Epub 2017 Aug 12.

Abstract

Early-life iron deficiency is a common nutrient condition worldwide and can result in cognitive impairment in adulthood despite iron treatment. In rodents, prenatal choline supplementation can diminish long-term hippocampal gene dysregulation and neurocognitive deficits caused by iron deficiency. Since fetal iron status is generally unknown in humans, we determined whether postnatal choline supplementation exerts similar beneficial effects. Male rat pups were made iron deficient (ID) by providing pregnant and nursing dams an ID diet (3-6ppm Fe) from gestational day (G) 3 through postnatal day (P) 7, and an iron-sufficient (IS) diet (200ppm Fe) thereafter. Control pups were provided IS diet throughout. Choline (5ppm) was given to half the nursing dams and weanlings in each group from P11-P30. P65 rat cognitive performance was assessed by novel object recognition (NOR). Real-time PCR was performed to validate expression levels of synaptic plasticity genes known to be dysregulated by early-life iron deficiency. Postnatal choline supplementation prevented impairment of NOR memory in formerly iron-deficient (FID) adult rats but impaired NOR memory in IS controls. Gene expression analysis revealed a recovery of 4 out of 10 dysregulated genes compared to 8 of the same 10 genes that we previously demonstrated to recover following prenatal choline supplementation. Recognition memory deficits induced by early-life iron deficiency can be prevented by postnatal choline supplementation and disrupted expression of a subset of synaptic plasticity genes can be ameliorated. The positive response to postnatal choline represents a potential adjunctive therapeutic supplement to treat iron-deficient anemic children in order to spare long-term neurodevelopmental deficits.

Keywords: Choline supplementation; Gene expression; Hippocampus; Iron deficiency; Memory; Novel object recognition.

Publication types

  • Research Support, N.I.H., Extramural

MeSH terms

  • Anemia, Iron-Deficiency / metabolism*
  • Animals
  • Animals, Newborn
  • Choline / pharmacology*
  • Dietary Supplements
  • Female
  • Hippocampus / metabolism
  • Iron / metabolism
  • Male
  • Neurocognitive Disorders / metabolism*
  • Neuronal Plasticity / physiology
  • Pregnancy
  • Prenatal Exposure Delayed Effects
  • Rats
  • Rats, Sprague-Dawley

Substances

  • Iron
  • Choline