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Updated: Jul 9, 2025

A Neonatal Imaging Model of Gram-Negative Bacterial Sepsis
Published on: August 12, 2020
The importance of the timing of microbial signals for perinatal immune system development
Dale Archer1, Maria Elisa Perez-Muñoz2, Stephanie Tollenaar2
1Department of Biological Sciences, University of Alberta, Edmonton, Alberta T6G 2R3, Canada.
Insights
The early postnatal period is more critical than prenatal for gut microbes to shape immune development in mice. Targeted microbial treatments can correct immune deficits from delayed gut microbiome acquisition.
Area of Science:
- Immunology
- Microbiome Research
- Developmental Biology
Background:
- Immune system development and maturation occur from gestation through the neonatal period.
- Both maternal and neonatal gut microbiomes impact immune development, but their relative importance is not fully understood.
Purpose of the Study:
- To investigate the differential impact of prenatal versus postnatal gut microbiome colonization on immune system development in mice.
- To determine the critical window for microbial influence on immune cell populations.
Main Methods:
- Utilized gnotobiotic methodology in mice to precisely control the timing of microbiome colonization.
- Characterized splenic immune cell populations in mice with early (birth) versus delayed (4 weeks) conventionalization.
Main Results:
- Delayed conventionalization significantly altered seven splenic immune cell populations, including dendritic cells and regulatory T cells (Tregs), explaining 29.01% of immune phenotype variation.
- Early life treatment with *Limosilactobacillus reuteri* in delayed mice restored dendritic cells and Tregs, with strain-specific effects on other immune cells.
Conclusions:
- The early postnatal period is relatively more crucial than the prenatal period for microbial signals to influence murine immune development.
- Targeted microbial interventions in early life can mitigate adverse immune effects resulting from delayed neonatal gut microbiome acquisition.
Abstract:
Background: Development and maturation of the immune system begin in utero and continue throughout the neonatal period. Both the maternal and neonatal gut microbiome influence immune development, but the relative importance of the prenatal and postnatal periods is unclear. Methods: In the present study, we characterized immune cell populations in mice in which the timing of microbiome colonization was strictly controlled using gnotobiotic methodology. Results: Compared to conventional (CONV) mice, germ-free (GF) mice conventionalized at birth (EC mice) showed few differences in immune cell populations in adulthood, explaining only 2.36% of the variation in immune phenotypes. In contrast, delaying conventionalization to the fourth week of life (DC mice) affected seven splenic immune cell populations in adulthood, including dendritic cells and regulatory T cells (Tregs), explaining 29.01% of the variation in immune phenotypes. Early life treatment of DC mice with Limosilactobacillus reuteri restored splenic dendritic cells and Tregs to levels observed in EC mice, and there were strain-specific effects on splenic CD4+ T cells, CD8+ T cells, and CD11c+ F4/80+ mononuclear phagocytes. Conclusion: This work demonstrates that the early postnatal period, compared to the prenatal period, is relatively more important for microbial signals to influence immune development in mice. Our findings further show that targeted microbial treatments in early life can redress adverse effects on immune development caused by the delayed acquisition of the neonatal gut microbiome.
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