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Biology subjects

Segren, N.

Publications and source records attributed to Segren, N..

2 recordsLinked to original sources

The early-life determinant LIN28B constrains immunoglobulin light chain secondary rearrangements independent of BCR specificity

The early-life B cell repertoire is disproportionately enriched for self-reactive specificities in mice and humans, raising the question of how this ontogenic permissiveness is achieved. The predominant B cell central tolerance mechanism edits away self-reactivity by secondary rearrangements of the immunoglobulin light chain (IgL) following strong B cell receptor (BCR) engagement during the immature B cell stage. Here, we demonstrate a layer of developmental regulation, imposed by the early-life restricted RNA-binding protein LIN28B, that suppresses the incidence and capacity for IgL secondary rearrangements during ontogeny. Genetic dissection demonstrated that the underlying mechanisms operate independent of BCR specificity or pre-BCR requirement, dissociating the receptor editing fate from strict BCR instruction. We identified an adult-specific receptor editing-biased pre-B cell state marked by CD25 expression and metabolic quiescence. LIN28B subverted this state, shifting the balance from secondary rearrangements to positive selection and bone marrow egress. Together, our results demonstrate that the central tolerance threshold is an ontogenically tuned parameter, providing insights into the self-reactivity bias that characterizes the early-life B cell repertoire.

immunology↗

Maternal immunity protects offspring from enteric viral infection without negatively affecting humoral immune memory

Mother-to-offspring transfer of antibodies protects newborns during the critical phase of early life, preventing both infection and inflammation. Whether and how pre-existing passive immunity actively shapes immune memory formation in neonates remains unclear. Using a murine neonatal Rotavirus infection model in combination with cross-foster approaches and genetic models, we disentangled the contribution of maternal IgA and IgG to neonatal immune outcomes. While breastmilk antigen specific IgA is responsible for protection from Rotavirus infection, antigen specific IgG delays pup-intrinsic humoral immune induction to after weaning. Importantly, pre-existing maternal immunity delays and constrains, rather than ablates, long term humoral immunity. Together, our data move beyond a binary view of passive immunity as protective versus inhibitory, providing a more nuanced understanding in which breastmilk antibodies actively program the neonatal response for optimal immediate protection and long-term immune education in the growing organism.

immunology↗