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Published on: October 21, 2017
Choline and choline-related nutrients in regular and preterm infant growth
Wolfgang Bernhard1, Christian F Poets2, Axel R Franz2,3
1Department of Neonatology, Children's Hospital, Faculty of Medicine, Eberhard-Karls-University, Calwer Straße 7, 72076, Tübingen, Germany. wolfgang.bernhard@med.uni-tuebingen.de.
Insights
Choline is vital for infant development. Preterm infants may have insufficient choline, impacting growth and development, necessitating a review of current intake recommendations.
Area of Science:
- Biochemistry
- Nutritional Science
- Developmental Biology
Background:
- Choline is an essential nutrient crucial for cell membranes and signaling.
- It plays key roles in neurodevelopment and fetal development via placental transfer.
- Choline metabolites like betaine also serve vital functions in methylation and osmoregulation.
Purpose of the Study:
- To investigate choline levels in preterm infants.
- To understand the impact of choline supply on infant development.
- To re-evaluate current choline intake recommendations for preterm infants.
Main Methods:
- Analysis of plasma choline concentrations in preterm infants at different postmenstrual ages.
- Comparison of choline levels between preterm infants, term infants, and pregnant women.
- Assessment of choline supply through breast milk and its impact on postnatal levels.
Main Results:
- Plasma choline concentrations are higher during fetal growth spurts (24-34 weeks) and decrease significantly after 34 weeks.
- Postnatal choline levels rapidly decrease after premature birth, indicating reduced supply.
- Breast milk choline content does not prevent this postnatal decline.
Conclusions:
- Choline deficiency in preterm infants may impair lean body mass, pulmonary, and neurocognitive development.
- Hepatic choline turnover is high and susceptible to disruption.
- Current choline supply recommendations for preterm infants may need revision.
Background:
Choline is an essential nutrient, with increased requirements during development. It forms the headgroup of phosphatidylcholine and sphingomyelin in all membranes and many secretions. Phosphatidylcholine is linked to cell signaling as a phosphocholine donor to synthesize sphingomyelin from ceramide, a trigger of apoptosis, and is the major carrier of arachidonic and docosahexaenoic acid in plasma. Acetylcholine is important for neurodevelopment and the placental storage form for fetal choline supply. Betaine, a choline metabolite, functions as osmolyte and methyl donor. Their concentrations are all tightly regulated in tissues.
Clincal Impact:
During the fetal growth spurt at 24-34-week postmenstrual age, plasma choline is higher than beyond 34 weeks, and threefold higher than in pregnant women [45 (36-60) µmol/L vs. 14 (10-17) µmol/L]. The rapid decrease in plasma choline after premature birth suggests an untimely reduction in choline supply, as cellular uptake is proportional to plasma concentration. Supply via breast milk, with phosphocholine and α-glycerophosphocholine as its major choline components, does not prevent such postnatal decrease. Moreover, high amounts of liver PC are secreted via bile, causing rapid hepatic choline turnover via the enterohepatic cycle, and deficiency in case of pancreatic phospholipase A2 deficiency or intestinal resection. Choline deficiency causes hepatic damage and choline accretion at the expense of the lungs and other tissues.
Conclusion:
Choline deficiency may contribute to the impaired lean body mass growth and pulmonary and neurocognitive development of preterm infants despite adequate macronutrient supply and weight gain. In this context, a reconsideration of current recommendations for choline supply to preterm infants is required.
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