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Studying Brain Function in Children Using Magnetoencephalography
Published on: April 8, 2019
Approaches for Reducing the Risk of Early-Life Iron Deficiency-Induced Brain Dysfunction in Children
Sarah E Cusick1,2, Michael K Georgieff3,4, Raghavendra Rao5,6
1Division of Global Pediatrics, Department of Pediatrics, and Center for Neurobehavioral Development, University of Minnesota, Minneapolis, MN 55455, USA. scusick@umn.edu.
Insights
Iron deficiency impacts brain development before anemia onset, causing lasting neurobehavioral deficits. Early detection of brain iron deficiency, not just anemia, is crucial for preventing cognitive impairment in vulnerable populations.
Area of Science:
- Neuroscience
- Nutritional Science
- Public Health
Background:
- Iron deficiency is a global health issue, particularly affecting women and children.
- Prenatal and early postnatal iron deficiency can cause irreversible neurodevelopmental problems.
- Current screening focuses on anemia, missing early brain iron deficits.
Purpose of the Study:
- To highlight the critical need for early diagnosis of brain iron deficiency.
- To emphasize that brain iron deficiency precedes anemia.
- To explore potential biomarkers for pre-anemic brain dysfunction.
Main Methods:
- Review of current understanding of iron metabolism and neurodevelopment.
- Analysis of the limitations of anemia-based screening.
- Consideration of findings from non-human primate models.
Main Results:
- The brain accumulates iron deficits before anemia develops.
- Anemia is an end-stage indicator, insufficient for preventing neurological damage.
- Hematological indices lack sensitivity for detecting early brain iron deficiency.
Conclusions:
- Early detection and intervention for brain iron deficiency are essential to prevent long-term neurological deficits.
- Novel biomarkers, potentially from proteomic and metabolomic analyses, are needed.
- Iron supplementation strategies require careful consideration due to potential risks.
Abstract:
Iron deficiency is the most common micronutrient deficiency in the world. Women of reproductive age and young children are particularly vulnerable. Iron deficiency in late prenatal and early postnatal periods can lead to long-term neurobehavioral deficits, despite iron treatment. This may occur because screening and treatment of iron deficiency in children is currently focused on detection of anemia and not neurodevelopment. Anemia is the end-stage state of iron deficiency. The brain becomes iron deficient before the onset of anemia due to prioritization of the available iron to the red blood cells (RBCs) over other organs. Brain iron deficiency, independent of anemia, is responsible for the adverse neurological effects. Early diagnosis and treatment of impending brain dysfunction in the pre-anemic stage is necessary to prevent neurological deficits. The currently available hematological indices are not sensitive biomarkers of brain iron deficiency and dysfunction. Studies in non-human primate models suggest that serum proteomic and metabolomic analyses may be superior for this purpose. Maternal iron supplementation, delayed clamping or milking of the umbilical cord, and early iron supplementation improve the iron status of at-risk infants. Whether these strategies prevent iron deficiency-induced brain dysfunction has yet to be determined. The potential for oxidant stress, altered gastrointestinal microbiome and other adverse effects associated with iron supplementation cautions against indiscriminate iron supplementation of children in malaria-endemic regions and iron-sufficient populations.
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