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Published on: June 11, 2017
Early-Life Nutrition and Neurodevelopment: Use of the Piglet as a Translational Model
Austin T Mudd1,2, Ryan N Dilger3,2,4,5
1Piglet Nutrition and Cognition Laboratory.
Insights
Optimal early nutrition is crucial for infant development. Research in piglets, a translational model, highlights how nutrients like fatty acids and choline impact neurodevelopment, using advanced analytical techniques.
Area of Science:
- Pediatric Nutrition and Neuroscience
- Translational Research Models
Background:
- Early life nutrition significantly impacts infant organ system development, with a growing focus on neurodevelopment.
- Human milk is the gold standard, prompting research into its bioactive components' effects on development.
- The piglet model offers valuable insights due to similar nutritional needs and brain development patterns to humans.
Purpose of the Study:
- To review the use of the piglet as a translational model for studying early-life nutrition's impact on neurodevelopment.
- To highlight key nutrients and bioactive components influencing neurodevelopment in piglets.
- To discuss advanced analytical methods for assessing nutritional effects on brain maturation.
Main Methods:
- Utilizing the piglet as a translational model for nutritional neuroscience studies.
- Assessing the effects of various dietary components, including fatty acids, choline, iron, cholesterol, gangliosides, and sialic acid.
- Employing novel analytical techniques such as MRI, behavioral assessments, and molecular quantification.
Main Results:
- The piglet model is increasingly used to study neurodevelopmental outcomes influenced by pediatric nutrition.
- Dietary fatty acids and other components like choline and iron significantly affect piglet neurodevelopment.
- Advanced analytical methods provide a comprehensive understanding of nutrition's role in neurodevelopmental trajectories.
Conclusions:
- The piglet model is a powerful tool for investigating early-life nutrition and its effects on neurodevelopment.
- A range of nutrients and bioactive compounds are critical for optimal brain maturation.
- Combining nutritional interventions with innovative analytical techniques enhances our understanding of neonatal neurodevelopment.
Abstract:
Optimal nutrition early in life is critical to ensure proper structural and functional development of infant organ systems. Although pediatric nutrition historically has emphasized research on the relation between nutrition, growth rates, and gastrointestinal maturation, efforts increasingly have focused on how nutrition influences neurodevelopment. The provision of human milk is considered the gold standard in pediatric nutrition; thus, there is interest in understanding how functional nutrients and bioactive components in milk may modulate developmental processes. The piglet has emerged as an important translational model for studying neurodevelopmental outcomes influenced by pediatric nutrition. Given the comparable nutritional requirements and strikingly similar brain developmental patterns between young pigs and humans, the piglet is being used increasingly in developmental nutritional neuroscience studies. The piglet primarily has been used to assess the effects of dietary fatty acids and their accretion in the brain throughout neurodevelopment. However, recent research indicates that other dietary components, including choline, iron, cholesterol, gangliosides, and sialic acid, among other compounds, also affect neurodevelopment in the pig model. Moreover, novel analytical techniques, including but not limited to MRI, behavioral assessments, and molecular quantification, allow for a more holistic understanding of how nutrition affects neurodevelopmental patterns. By combining early-life nutritional interventions with innovative analytical approaches, opportunities abound to quantify factors affecting neurodevelopmental trajectories in the neonate. This review discusses research using the translational pig model with primary emphasis on early-life nutrition interventions assessing neurodevelopment outcomes, while also discussing nutritionally-sensitive methods to characterize brain maturation.

