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Biology subjects

Silverman, M. A.

Publications and source records attributed to Silverman, M. A..

4 recordsLinked to original sources

Comparison of gnotobiotic communities reveals unexpected amino acid metabolism by the pre-weaning microbiome.

The intestinal microbiome during infancy and childhood has distinct compositions and metabolic functions to that of adults. We recently published a gnotobiotic mouse model of the pre-weaning microbiome (PedsCom), which retains a pre-weaning configuration during the transition from a milk-based diet to solid foods and leads to a stunted immune system and susceptibility to enteric infection. Here we compared the phylogenetic and metabolic relationship of the PedsCom consortium to the adult-derived gnotobiotic communities, Altered Schaedler Flora and Oligo-MM12. We find that PedsCom contains several unique functions relative to adult-derived mouse consortia. In particular, amino acid degradation metabolic modules are more prevalent among PedsCom isolates, which is in line with the ready availability of these nutrients in milk. Indeed, metabolomic analysis showed significantly lower levels of free amino acids in the intestinal contents of adult PedsCom colonized mice versus Oligo-MM12 controls. Thus, enhanced amino acid metabolism is a prominent feature of the pre-weaning microbiome that may facilitate design of early life microbiome interventions.

microbiology↗

Early-life exposures to specific commensal microbes prevent type 1 diabetes.

Early-life disruptions of the gut microbiome have long-lasting impacts on the risk of developing autoimmune diseases. How the composition of the early-life microbiota contributes to autoimmunity and whether manipulating it can prove therapeutically beneficial remains largely unexplored. Here we demonstrate that a simple consortium of nine early-life commensal bacteria (PedsCom) prevents type 1 diabetes (T1D) in diabetes-susceptible NOD mice. Remarkably, we find that this protection is completely dependent upon early-life colonization. During this critical time window of early-life colonization and immune development, specific microbes unexpectedly translocate from the gut to peripheral tissues and induce the tolerogenic responses required for T1D protection. These findings highlight how the timing and localization of microbial interactions during a pivotal stage of immune development contribute to protection from T1D. Altogether, these findings suggest an opportunity to develop microbial therapies for human infants to prevent autoimmune diseases. One sentence summaryA defined consortium of early-life microbes shapes immune development and prevents type 1 diabetes.

immunology↗

Modulation of adaptive immune responses by Akkermansia muciniphila is restricted to an early life window in NOD mice

Early life microbiota drive immune system development and influence risk for immune dysfunction later in life, including the development of type 1 diabetes (T1D). Which specific early-life microbes modulate diabetes risk and the timing of these critical interactions are not well understood. To address this gap in knowledge, we screened for microbes that induce systemic IgG1 responses in young NOD mice. We isolated a strain of Akkermansia muciniphila that potently induces systemic IgG1 antibodies and peripheral regulatory T cells (pTregs). Since this mucus-degrading commensal protects NOD mice from T1D and is associated with lower risk of developing T1D in children, we investigated how A. muciniphila impacts early-life host-commensal interactions using gnotobiotic NOD mice colonized with a defined 9-member bacterial consortium that models the early life microbiome. We find that A. muciniphila potently induces pTregs and enhances antibody responses to other commensal microbes. Remarkably, these effects only occur when A. muciniphila colonizes NOD mice prior to weaning, establishing that the specific window of exposure to A. muciniphila shapes adaptive immune system development in diabetes-susceptible NOD mice. This time dependence provides important evidence that early-life exposure may enhance microbiota-based therapies to prevent T1D. One Sentence SummaryAkkermansia muciniphila induces peripheral Tregs and enhances antibody responses to itself and other commensals during an early life window.

immunology↗

Arresting microbiome development limits immune system maturation and resistance to infection.

Disruptions to the intestinal microbiome during weaning lead to long-term negative effects on host immune function. However, the critical host-microbe interactions occurring during weaning required for healthy immune system development remain poorly understood. We find that restricting microbiome maturation during weaning leads to stunted immune system development and increased susceptibility to enteric infection. We developed a gnotobiotic mouse model of the early-life microbiome designated as Pediatric Community (PedsCom). This nine-member consortium of microbes derived from intestinal microbiomes of preweaning mice stably colonized germfree adult mice and was efficiently transmitted to offspring for multiple generations. Unexpectedly, the relative abundance of PedsCom microbes were largely unaffected by the transition from a milk-based to a fiber rich solid food diet. PedsCom mice developed less peripheral regulatory T cells and Immunoglobulin A, hallmarks of microbiota-driven immune system development. Consistent with defects in maturation, adult PedsCom mice retain high susceptibility to salmonella infection characteristic of young mice and humans. Altogether, our work illustrates how the post-weaning transition in intestinal microbiome composition contributes to normal immune maturation and protection from enteric infection. Accurate modelling of the pre-weaning microbiome provides a window into the microbial requirements of healthy immune development and suggests an opportunity to design microbial interventions at weaning to improve immune system development in human infants. One Sentence SummaryArresting microbiome development stunts immune ontogeny

immunology↗