Bioactive compounds in human milk and intestinal health and maturity in preterm newborn: an overview

C Garcia1, R D Duan2, V Brévaut-Malaty3

  • 1Aix—Marseille Université CNRS, CRMBM UMR 7339 Marseille France.

Insights

Human milk contains bioactive compounds crucial for premature infant gut development and health. These components support intestinal maturation, immune defense, and microbiota establishment, reducing infection risks and long-term health issues.

Area of Science:

  • Neonatal nutrition
  • Gastroenterology
  • Immunology

Background:

  • Premature births are a growing global concern, increasing healthcare costs and risks for newborns.
  • Immature intestinal tracts in premature infants heighten their susceptibility to infections.
  • Clinical nutrition is vital for neonatal development and mitigating complications.

Purpose of the Study:

  • To review the bioactive components in human milk.
  • To elucidate their roles in the development and health of the premature infant's intestine.
  • To explore their mechanisms of action in neonatal care.

Main Methods:

  • Literature review of scientific studies on human milk bioactive compounds.
  • Analysis of the functions of various molecules (e.g., lipids, proteins, prebiotics) in intestinal development.
  • Synthesis of evidence regarding their impact on gut barrier function, immunity, and microbiota.

Main Results:

  • Human milk contains numerous bioactive molecules with trophic, structural, immune-educating, antimicrobial, and microbiota-modulating effects.
  • Specific compounds like LC-PUFA, sphingomyelin, lactoferrin, and probiotics play key roles.
  • Synergistic actions among these components are essential for regulating intestinal maturation.

Conclusions:

  • Bioactive components in human milk are critical for promoting intestinal development and barrier function in premature infants.
  • These compounds may program long-term intestinal health from early postnatal life.
  • Optimizing neonatal nutrition with human milk components is essential for reducing morbidity and mortality.

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