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Published on: June 2, 2022
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.
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.
Abstract:
The microbiota-gut-brain axis (MGBA) is a central pathway through which gut microbial communities influence neurodevelopment via immune, metabolic, and neural signalling. Early life, spanning preconception through infancy, represents a particularly sensitive window during which parental microbiomes exert disproportionate influence on offspring gut colonization, immune education, and neurodevelopmental programming. This review synthesizes current evidence on how maternal and paternal microbiomes shape pediatric neurodevelopment through coordinated microbial, metabolic, immune, and epigenetic pathways. We examine pregnancy-associated remodeling of maternal microbiomes across gut, vaginal, oral, skin, and milk niches, highlighting how hormonal, metabolic, and immune adaptations drive site-specific microbial shifts with downstream consequences for fetal and infant brain development. Core microbial mechanisms are discussed, including short-chain fatty acids (SCFAs), tryptophan-derived metabolites, bile-acid signaling, and immune mediators that link microbial metabolism with immune and neurodevelopmental processes. These mechanisms are integrated with key transmission routes, including placental metabolite transfer, mode-of-delivery-dependent microbial seeding, breast milk-mediated signaling, and early environmental exposures that further shape the developing MGBA. We also incorporate emerging evidence on paternal microbiome contributions via preconception programming, sperm epigenetic remodeling, and germline-microbiome interactions, expanding the traditional maternal-centric view of intergenerational microbial inheritance. Finally, we evaluate modifiable factors, including diet, metabolic status, stress, antibiotic exposure, and microbiome-targeted interventions, and discuss their translational relevance. While associations between the microbiome and neurodevelopment are increasingly supported by human studies, many mechanistic insights remain derived from animal models, and causal relationships are not yet fully established. By integrating mechanistic, clinical, and systems-level perspectives, this review positions the MGBA as a promising but still evolving framework for understanding and potentially modulating early-life brain development.
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