High protein intake on later outcomes in preterm children: a systematic review and meta-analysis

Subhasish Das1,2, Thomas McClintock1, Barbara E Cormack1,3

  • 1Liggins Institute, University of Auckland, Auckland, New Zealand.

Pediatric Research
|June 10, 2024
PubMed

Insights

High protein intake for preterm infants may harm neonatal metabolism and later neurodevelopment, with limited short-term growth benefits. Protein intake of 3.5 g/kg/d or more is not recommended for these vulnerable children.

Area of Science:

  • Neonatal nutrition and developmental pediatrics.
  • Clinical trial meta-analysis and evidence synthesis.

Background:

  • Adequate protein is essential for preterm infants' growth and neurodevelopment.
  • The impact of high protein (HP) versus low protein (LP) intake on neurodevelopment, growth, and metabolic outcomes requires thorough assessment.

Purpose of the Study:

  • To evaluate the effects of high protein (HP) versus low protein (LP) intake on neurodevelopment, growth, and biochemical anomalies in preterm infants.

Main Methods:

  • A systematic review and meta-analysis of randomized and quasi-randomized trials adhering to PRISMA guidelines.
  • Inclusion of studies providing protein to preterm infants (<37 weeks gestation), with data analyzed using a random-effects model.
  • Comparison of HP (≥3.5 g/kg/d) versus LP (<3.5 g/kg/d) intake.

Main Results:

  • High protein intake showed a trend towards reduced survival without neurodisability at ≥12 months (low certainty evidence).
  • HP intake may increase the risk of cognitive impairment in toddlers (low certainty evidence) and biochemical anomalies like hypophosphatemia and hypercalcemia.
  • Short-term benefits of HP intake included higher weight and head circumference z-scores at discharge or 36 weeks, alongside reduced hyperglycemia risk.

Conclusions:

  • High protein intake in preterm infants may negatively impact neonatal metabolism and neurodevelopmental outcomes.
  • The potential harms of HP intake outweigh the limited short-term growth advantages.
  • Protein intake of ≥3.5 g/kg/d is not recommended for preterm infants due to potential risks.
Abstract

Related Concept Videos

Overview of Protein Metabolism01:21

Overview of Protein Metabolism

Proteins are broken down into amino acids during digestion. Unlike fats and carbohydrates, which are stored for later use, proteins are not. Instead, amino acids are either used to produce ATP through oxidation or contribute to the creation of new proteins for the growth and repair of the body. Any surplus amino acids from the diet are converted into glucose or triglycerides rather than excreted.
Amino acids play various roles in the body once they are absorbed into cells. They are restructured...
1.0K
Proteins: Dietary Sources and Requirements01:28

Proteins: Dietary Sources and Requirements

Consuming animal-based products offers high-quality proteins that contain optimal levels and combinations of essential amino acids, crucial for tissue repair and growth. Foods like eggs, milk, fish, and most meats are a source of complete proteins. Legumes and cereals are abundant in proteins; however, they typically lack a full range of essential amino acids. As a result, they are considered incomplete protein sources. Some plant sources like soybeans, quinoa, and amaranth do contain complete...
428
Teratogenicity01:07

Teratogenicity

The ability of a drug to produce structural deformations and functional abnormalities in the developing embryo or the fetus is called teratogenicity, and the drug producing this effect is known as a teratogen. Teratogenic effects include stillbirth, miscarriage, intrauterine growth restriction, and neurocognitive delay. A teratogen may affect the embryo at different stages of development, which is important in determining the type and extent of the damage. During blastocyst formation, the early...
2.4K
Inborn Errors of Metabolism01:20

Inborn Errors of Metabolism

Phenylketonuria (PKU) is a protein metabolism disorder characterized by high blood levels of the amino acid phenylalanine. This results from a mutation in the gene responsible for phenylalanine hydroxylase, an enzyme that converts phenylalanine into tyrosine. When this enzyme is deficient, phenylalanine builds up in the blood, leading to symptoms such as vomiting, rashes, seizures, growth deficiency, and severe mental retardation. An early diagnosis and a diet restricting phenylalanine intake...
155