Parental microbiome programming of early-life neurodevelopment: multi-niche contributions through the

Jurga Skrabulyte-Barbulescu1, Lidya K Yassin2, Saif Almazrouei2

  • 1The Institute of Psychiatry, Psychology and Neuroscience (IoPPN), King´s College London, London, United Kingdom.

Gut Microbes
|May 14, 2026
PubMed

Insights

Parental microbiomes significantly impact infant neurodevelopment through the microbiota-gut-brain axis (MGBA). This review explores maternal and paternal influences on early brain development via microbial, metabolic, and immune pathways.

Area of Science:

  • Microbiome research
  • Neurodevelopmental science
  • Maternal-fetal medicine

Background:

  • The microbiota-gut-brain axis (MGBA) is crucial for neurodevelopment, with early life being a sensitive window.
  • Parental microbiomes profoundly influence offspring's gut colonization, immune system, and neurodevelopmental programming.
  • Existing research often focuses on maternal contributions, with emerging evidence highlighting paternal roles.

Purpose of the Study:

  • To review and synthesize current evidence on how maternal and paternal microbiomes shape pediatric neurodevelopment.
  • To explore the coordinated microbial, metabolic, immune, and epigenetic pathways involved.
  • To integrate findings on transmission routes and modifiable factors impacting the developing MGBA.

Main Methods:

  • Literature review synthesizing current evidence on parental microbiome influence on pediatric neurodevelopment.
  • Examination of pregnancy-associated maternal microbiome remodeling across various niches (gut, vaginal, oral, skin, milk).
  • Integration of core microbial mechanisms (SCFAs, metabolites, bile acids, immune mediators) and transmission routes (placental, delivery mode, breast milk, environment).

Main Results:

  • Maternal microbiome shifts during pregnancy impact fetal and infant brain development through various signaling pathways.
  • Paternal microbiome contributions, including preconception programming and sperm epigenetics, are increasingly recognized.
  • Key microbial mechanisms and transmission routes are identified, linking parental microbiomes to offspring neurodevelopment.
  • Modifiable factors like diet, stress, and antibiotic use can influence the MGBA and neurodevelopment.

Conclusions:

  • The parental microbiome is a critical determinant of early-life neurodevelopment via the MGBA.
  • Both maternal and paternal contributions are essential, expanding the understanding beyond a maternal-centric view.
  • While associations are strong, further research is needed to establish causal relationships and leverage findings for interventions.

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