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A Piglet Model of Neonatal Hypoxic-Ischemic Encephalopathy
Published on: May 16, 2015
Hydrolyzed Fat Formula Increases Brain White Matter in Small for Gestational Age and Appropriate for Gestational Age
Megan P Caputo1,2, Jennifer N Williams1,2, Jenny Drnevich3
1Division of Nutritional Sciences, University of Illinois, Urbana, IL, United States.
Insights
Hydrolyzed fat (HF) infant formula enhanced brain development in piglets by increasing brain and white matter volumes. While it improved learning in small for gestational age (SGA) piglets, long-term outcomes require further investigation.
Area of Science:
- Neonatal nutrition and brain development
- Growth restriction and neurodevelopmental outcomes
- Infant formula composition and efficacy
Background:
- Intrauterine growth restriction (IUGR) leads to small for gestational age (SGA) infants, who have impaired fat digestion and absorption.
- SGA infants face risks for impaired neurocognitive development due to nutritional deficiencies.
- Investigating specialized infant formulas is crucial for supporting SGA infant development.
Purpose of the Study:
- To evaluate if a hydrolyzed fat (HF) infant formula enhances brain development in SGA and appropriate for gestational age (AGA) piglets.
- To determine if HF formula increases essential fatty acid incorporation and white matter (WM) in the brain.
- To assess the impact of HF formula on neurocognitive performance and gene expression.
Main Methods:
- A 2x2 factorial design using sex-matched SGA and AGA piglets (N=60) fed either control (CON) or HF formula.
- Brain structure assessed via MRI, fatty acid content analyzed in cerebellum and hippocampus.
- Hippocampal RNA-sequencing and spatial learning tasks (T-maze) were conducted.
Main Results:
- HF diet increased relative brain region volumes and white matter (WM) volume in both SGA and AGA piglets.
- HF did not correct WM integrity deficits in SGA piglets or alter overall growth.
- HF increased arachidonic acid (ARA) in cerebellum and hippocampus, and improved learning accuracy in SGA piglets on reversal tasks.
Conclusions:
- Hydrolyzed fat (HF) infant formula promotes brain volume and white matter development in neonatal piglets.
- HF formula shows potential benefits for neurocognitive performance in SGA piglets.
- Further research is necessary to ascertain the long-term effects of HF formula on brain development and neurocognitive outcomes.
Abstract:
Background: Intrauterine growth restriction is a common cause of small for gestational age (SGA) infants worldwide. SGA infants are deficient in digestive enzymes required for fat digestion and absorption compared to appropriate for gestational age (AGA) infants, putting them at risk for impaired neurocognitive development. Objective: The objective was to determine if a hydrolyzed fat (HF) infant formula containing soy free fatty acids, 2-monoacylglycerolpalmitate, cholesterol, and soy lecithin could increase brain tissue incorporation of essential fatty acids or white matter to enhance brain development in SGA and AGA neonatal piglet models. Methods: Sex-matched, littermate pairs of SGA (0.5-0.9 kg) and AGA (1.2-1.8 kg) 2 days old piglets (N = 60) were randomly assigned to control (CON) or HF formula diets in a 2 × 2 factorial design. On day 14, 24 piglets were used for hippocampal RNA-sequencing; the rest began a spatial learning task. On days 26-29, brain structure was assessed by magnetic resonance imaging (MRI). Cerebellum and hippocampus were analyzed for fatty acid content. Results: SGA piglets grew more slowly than AGA piglets, with no effect of diet on daily weight gain or weight at MRI. HF diet did not affect brain weight. HF diet increased relative volumes of 7 brain regions and white matter (WM) volume in both SGA and AGA piglets. However, HF did not ameliorate SGA total WM integrity deficits. RNA sequencing revealed SGA piglets had increased gene expression of synapse and cell signaling pathways and decreased expression of ribosome pathways in the hippocampus compared to AGA. HF decreased expression of immune response related genes in the hippocampus of AGA and SGA piglets, but did not correct gene expression patterns in SGA piglets. Piglets learned the T-maze task at the same rate, but SGA HF, SGA CON, and AGA HF piglets had more accurate performance than AGA CON piglets on reversal day 2. HF increased arachidonic acid (ARA) percentage in the cerebellum and total ARA in the hippocampus. Conclusions: HF enhanced brain development in the neonatal piglet measured by brain volume and WM volume in specific brain regions; however, more studies are needed to assess long-term outcomes.
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